content stringlengths 1 1.04M ⌀ |
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library ieee;
use ieee.std_logic_1164.all;
use ieee.numeric_std.all;
entity issue412 is
end issue412;
architecture behavioral of issue412 is
signal clk : std_logic := '0';
signal running : boolean := true;
begin
process (clk, running)
begin
if running then
clk <= not clk after 5 ns;
end if;
end process;
process
-- Overloading the name is not the issue.
procedure wr_data(data : signed) is
begin
-- A delay here seems to be necessary to cause the issue.
wait until clk = '1';
-- wait for 10 ns;
end;
-- Calling from this function to the next seems
-- to be required for the crash.
procedure wr_data(data : integer) is
begin
wr_data(to_signed(data, 32));
end;
variable data : signed(31 downto 0);
begin
-- Loop to 2000 works with line A below.
-- for n in 1 to 2000 loop
-- Loop to 3000 does not work with line A below.
for n in 1 to 3000 loop
-- Loop to 3000000 works fine with lines B below.
-- for n in 1 to 3000000 loop
wr_data(n); -- A
-- data := to_signed(n, 32); -- B
-- wr_data(data); -- B
end loop;
assert false report "Test OK" severity note;
running <= false;
wait;
end process;
end behavioral;
|
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fUQ+EjA=
`protect end_protected
|
------------------------------------------------------------------------------
-- Clock generator for VGA/TMDS video output.
-- Modified by Joris van Rantwijk to support Digilent Atlys board.
--
------------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2003 - 2008, Gaisler Research
-- Copyright (C) 2008 - 2012, Aeroflex Gaisler
--
-- This program is free software; you can redistribute it and/or modify
-- it under the terms of the GNU General Public License as published by
-- the Free Software Foundation; either version 2 of the License, or
-- (at your option) any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program; if not, write to the Free Software
-- Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
library ieee;
use ieee.std_logic_1164.all;
library techmap;
use techmap.gencomp.all;
use techmap.allclkgen.all;
library unisim;
use unisim.vcomponents.BUFGMUX;
use unisim.vcomponents.PLL_BASE;
entity vga_clkgen is
port (
resetn : in std_logic;
clk100 : in std_logic;
sel : in std_logic_vector(1 downto 0);
vgaclk : out std_logic;
fastclk : out std_logic
);
end;
architecture struct of vga_clkgen is
signal s_resetp : std_logic;
signal s_clkfb : std_logic;
signal s_clk25 : std_logic;
signal s_clk40 : std_logic;
signal s_clk125 : std_logic;
signal s_clk200 : std_logic;
begin
s_resetp <= not resetn;
-- Generate VGA pixel clock and 5x fast clock.
vgapll: PLL_BASE
generic map (
CLKFBOUT_MULT => 10,
DIVCLK_DIVIDE => 1,
CLKOUT0_DIVIDE => 40,
CLKOUT1_DIVIDE => 25,
CLKOUT2_DIVIDE => 8,
CLKOUT3_DIVIDE => 5,
CLKIN_PERIOD => 10.0,
CLK_FEEDBACK => "CLKFBOUT" )
port map (
CLKIN => clk100,
CLKFBIN => s_clkfb,
CLKFBOUT => s_clkfb,
CLKOUT0 => s_clk25,
CLKOUT1 => s_clk40,
CLKOUT2 => s_clk125,
CLKOUT3 => s_clk200,
RST => s_resetp );
-- Choose between 25 Mhz and 40 MHz for pixel clock.
bufg0 : BUFGMUX
port map ( I0 => s_clk25, I1 => s_clk40, S => sel(0), O => vgaclk );
-- Choose between 125 MHz and 200 MHz for TMDS output clock.
bufg1 : BUFGMUX
port map ( I0 => s_clk125, I1 => s_clk200, S => sel(0), O => fastclk );
end architecture;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1249.vhd,v 1.2 2001-10-26 16:30:07 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s02b00x00p04n02i01249ent IS
END c08s02b00x00p04n02i01249ent;
ARCHITECTURE c08s02b00x00p04n02i01249arch OF c08s02b00x00p04n02i01249ent IS
type SEVERITY_LEVEL is (ONE, TWO, THREE);
BEGIN
TESTING: PROCESS
BEGIN
assert FALSE
report "Report this string"
severity ONE;
assert FALSE
report "***FAILED TEST: c08s02b00x00p04n02i01249 - Severity clause must specify an expression of predifined type SEVERITY_LEVEL."
severity ERROR;
wait;
END PROCESS TESTING;
END c08s02b00x00p04n02i01249arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1249.vhd,v 1.2 2001-10-26 16:30:07 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s02b00x00p04n02i01249ent IS
END c08s02b00x00p04n02i01249ent;
ARCHITECTURE c08s02b00x00p04n02i01249arch OF c08s02b00x00p04n02i01249ent IS
type SEVERITY_LEVEL is (ONE, TWO, THREE);
BEGIN
TESTING: PROCESS
BEGIN
assert FALSE
report "Report this string"
severity ONE;
assert FALSE
report "***FAILED TEST: c08s02b00x00p04n02i01249 - Severity clause must specify an expression of predifined type SEVERITY_LEVEL."
severity ERROR;
wait;
END PROCESS TESTING;
END c08s02b00x00p04n02i01249arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1249.vhd,v 1.2 2001-10-26 16:30:07 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s02b00x00p04n02i01249ent IS
END c08s02b00x00p04n02i01249ent;
ARCHITECTURE c08s02b00x00p04n02i01249arch OF c08s02b00x00p04n02i01249ent IS
type SEVERITY_LEVEL is (ONE, TWO, THREE);
BEGIN
TESTING: PROCESS
BEGIN
assert FALSE
report "Report this string"
severity ONE;
assert FALSE
report "***FAILED TEST: c08s02b00x00p04n02i01249 - Severity clause must specify an expression of predifined type SEVERITY_LEVEL."
severity ERROR;
wait;
END PROCESS TESTING;
END c08s02b00x00p04n02i01249arch;
|
library ieee;
use ieee.std_logic_1164.all;
library ieee;
use ieee.numeric_std.all;
entity add_235 is
port (
result : out std_logic_vector(26 downto 0);
in_a : in std_logic_vector(26 downto 0);
in_b : in std_logic_vector(26 downto 0)
);
end add_235;
architecture augh of add_235 is
signal carry_inA : std_logic_vector(28 downto 0);
signal carry_inB : std_logic_vector(28 downto 0);
signal carry_res : std_logic_vector(28 downto 0);
begin
-- To handle the CI input, the operation is '1' + CI
-- If CI is not present, the operation is '1' + '0'
carry_inA <= '0' & in_a & '1';
carry_inB <= '0' & in_b & '0';
-- Compute the result
carry_res <= std_logic_vector(unsigned(carry_inA) + unsigned(carry_inB));
-- Set the outputs
result <= carry_res(27 downto 1);
end architecture;
|
library ieee;
use ieee.std_logic_1164.all;
library ieee;
use ieee.numeric_std.all;
entity add_235 is
port (
result : out std_logic_vector(26 downto 0);
in_a : in std_logic_vector(26 downto 0);
in_b : in std_logic_vector(26 downto 0)
);
end add_235;
architecture augh of add_235 is
signal carry_inA : std_logic_vector(28 downto 0);
signal carry_inB : std_logic_vector(28 downto 0);
signal carry_res : std_logic_vector(28 downto 0);
begin
-- To handle the CI input, the operation is '1' + CI
-- If CI is not present, the operation is '1' + '0'
carry_inA <= '0' & in_a & '1';
carry_inB <= '0' & in_b & '0';
-- Compute the result
carry_res <= std_logic_vector(unsigned(carry_inA) + unsigned(carry_inB));
-- Set the outputs
result <= carry_res(27 downto 1);
end architecture;
|
----------------------------------------------------------------------------------
-- Company:
-- Engineer:
--
-- Create Date: 20:27:07 12/15/2015
-- Design Name:
-- Module Name: IDE_control_unit - Behavioral
-- Project Name:
-- Target Devices:
-- Tool versions:
-- Description:
--
-- Dependencies:
--
-- Revision:
-- Revision 0.01 - File Created
-- Additional Comments:
--
----------------------------------------------------------------------------------
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
use IEEE.STD_LOGIC_UNSIGNED.ALL;
-- Uncomment the following library declaration if using
-- arithmetic functions with Signed or Unsigned values
use IEEE.NUMERIC_STD.ALL;
-- Uncomment the following library declaration if instantiating
-- any Xilinx primitives in this code.
--library UNISIM;
--use UNISIM.VComponents.all;
entity IDE_control_unit is
Port ( R : in STD_LOGIC;
W : in STD_LOGIC;
Re : out STD_LOGIC;
CS : in STD_LOGIC;
enables : out STD_LOGIC_VECTOR (2 downto 0);
data_select : out STD_LOGIC;
clk : in STD_LOGIC;
reset : in STD_LOGIC;
w_select: out STD_LOGIC;
wr_prev: out STD_LOGIC_VECTOR (1 downto 0);
data_enable: out STD_LOGIC);
end IDE_control_unit;
architecture Behavioral of IDE_control_unit is
signal cycle_counter : std_logic_vector(2 downto 0) := "000";
signal prev_W : STD_LOGIC := '0';
signal prev_R : STD_LOGIC := '0';
signal i_ready : STD_LOGIC := '0';
begin
--Process to count and reset at required locations
process(clk, reset, R, W)
begin
if rising_edge(clk) and CS = '0' then
if prev_W = '1' and W = '0' then
cycle_counter <= cycle_counter + '1';
if cycle_counter = "100" then
cycle_counter <= "000";
end if;
elsif prev_R = '1' and R = '0' then
cycle_counter <= cycle_counter + '1';
if cycle_counter = "100" then
cycle_counter <= "000";
i_ready <= '0';
end if;
elsif prev_R = '0' and R = '1' then
if cycle_counter = "011" then
i_ready <= '1';
end if;
end if;
prev_W <= W;
prev_R <= R;
wr_prev <= prev_W & prev_R;
end if;
if reset = '1' then
cycle_counter <= "000";
end if;
end process;
--Combinational enable signals based on the table of signals on Google Drive
enables <= "001" when cycle_counter = "000" else
"010" when cycle_counter = "001" else
"100" when cycle_counter = "010" else
"000";
w_select <= '0' when cycle_counter = "011" else
'1';
data_select <= '0' when cycle_counter = "011" else
'1';
Re <= '1';
data_enable <= '1' when (cycle_counter = "011" AND i_ready = '1') OR
(cycle_counter = "100" AND i_ready = '1') else
'0';
end Behavioral;
|
-------------------------------------------------------------------------------
-- Title : Unconstrained multiplier
-- Project :
-------------------------------------------------------------------------------
-- File : unc_mult.vhd
-- Author : Aylons <concordic@aylons.com>
-- Company :
-- Created : 2014-05-03
-- Last update: 2014-05-04
-- Platform :
-- Standard : VHDL'93/02/08
-------------------------------------------------------------------------------
-- Description: Generic multiplier which accepts signed vectors of any size
-- for both inputs and the resulting output. The output width must be smaller
-- than the summed width of the inputs. For outputs smaller than a_width +
-- b_width - 1, there will be one sign bit followed by as results MSBs.
--
-- This multiplier expects the synthesizer to infer multiplier logic from the * operator.
-------------------------------------------------------------------------------
-- This file is part of Concordic.
--
-- Concordic is free software: you can redistribute it and/or modify
-- it under the terms of the GNU General Public License as published by
-- the Free Software Foundation, either version 3 of the License, or
-- (at your option) any later version.
--
-- Concordic is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with Foobar. If not, see <http://www.gnu.org/licenses/>.
-- Copyright (c) 2014
-------------------------------------------------------------------------------
-- Revisions :
-- Date Version Author Description
-- 2014-05-03 1.0 aylons Created
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.numeric_std.all;
entity unc_mult is
port(
a_i : in signed;
b_i : in signed;
result_o : out signed;
clk_i : in std_logic);
end unc_mult;
architecture behavioural of unc_mult is
begin
assert result_o'length < a_i'length + b_i'length
report "result_o width bigger than summed widths of a_i and b_i"
severity error;
process(clk_i) is
variable full_res : signed(a_i'length + b_i'length - 1 downto 0);
begin
if(rising_edge(clk_i)) then
full_res := a_i * b_i;
result_o <= full_res(full_res'left-1 downto full_res'left-1-result_o'length);
end if;
end process;
end architecture behavioural;
|
-- The Potato Processor - A simple processor for FPGAs
-- (c) Kristian Klomsten Skordal 2014 - 2015 <kristian.skordal@wafflemail.net>
-- Report bugs and issues on <https://github.com/skordal/potato/issues>
library ieee;
use ieee.std_logic_1164.all;
use ieee.numeric_std.all;
use work.pp_types.all;
use work.pp_csr.all;
use work.pp_utilities.all;
entity pp_execute is
port(
clk : in std_logic;
reset : in std_logic;
stall, flush : in std_logic;
-- Interrupt inputs:
irq : in std_logic_vector(7 downto 0);
software_interrupt, timer_interrupt : in std_logic;
-- Data memory outputs:
dmem_address : out std_logic_vector(31 downto 0);
dmem_data_out : out std_logic_vector(31 downto 0);
dmem_data_size : out std_logic_vector( 1 downto 0);
dmem_read_req : out std_logic;
dmem_write_req : out std_logic;
-- Register addresses:
rs1_addr_in, rs2_addr_in, rd_addr_in : in register_address;
rd_addr_out : out register_address;
-- Register values:
rs1_data_in, rs2_data_in : in std_logic_vector(31 downto 0);
rd_data_out : out std_logic_vector(31 downto 0);
-- Constant values:
shamt_in : in std_logic_vector(4 downto 0);
immediate_in : in std_logic_vector(31 downto 0);
-- Instruction address:
pc_in : in std_logic_vector(31 downto 0);
pc_out : out std_logic_vector(31 downto 0);
-- Funct3 value from the instruction, used to choose which comparison
-- is used when branching:
funct3_in : in std_logic_vector(2 downto 0);
-- CSR signals:
csr_addr_in : in csr_address;
csr_addr_out : out csr_address;
csr_write_in : in csr_write_mode;
csr_write_out : out csr_write_mode;
csr_value_in : in std_logic_vector(31 downto 0);
csr_value_out : out std_logic_vector(31 downto 0);
csr_use_immediate_in : in std_logic;
-- Control signals:
alu_op_in : in alu_operation;
alu_x_src_in : in alu_operand_source;
alu_y_src_in : in alu_operand_source;
rd_write_in : in std_logic;
rd_write_out : out std_logic;
branch_in : in branch_type;
branch_out : out branch_type;
-- Memory control signals:
mem_op_in : in memory_operation_type;
mem_op_out : out memory_operation_type;
mem_size_in : in memory_operation_size;
mem_size_out : out memory_operation_size;
-- Whether the instruction should be counted:
count_instruction_in : in std_logic;
count_instruction_out : out std_logic;
-- Exception control registers:
ie_in, ie1_in : in std_logic;
mie_in : in std_logic_vector(31 downto 0);
mtvec_in : in std_logic_vector(31 downto 0);
mtvec_out : out std_logic_vector(31 downto 0);
--mepc_in : in std_logic_vector(31 downto 0);
-- Exception signals:
decode_exception_in : in std_logic;
decode_exception_cause_in : in csr_exception_cause;
-- Exception outputs:
exception_out : out std_logic;
exception_context_out : out csr_exception_context;
-- Control outputs:
jump_out : out std_logic;
jump_target_out : out std_logic_vector(31 downto 0);
-- Inputs to the forwarding logic from the MEM stage:
mem_rd_write : in std_logic;
mem_rd_addr : in register_address;
mem_rd_value : in std_logic_vector(31 downto 0);
mem_csr_addr : in csr_address;
mem_csr_write : in csr_write_mode;
mem_exception : in std_logic;
-- Inputs to the forwarding logic from the WB stage:
wb_rd_write : in std_logic;
wb_rd_addr : in register_address;
wb_rd_value : in std_logic_vector(31 downto 0);
wb_csr_addr : in csr_address;
wb_csr_write : in csr_write_mode;
wb_exception : in std_logic;
-- Hazard detection unit signals:
mem_mem_op : in memory_operation_type;
hazard_detected : out std_logic
);
end entity pp_execute;
architecture behaviour of pp_execute is
signal alu_op : alu_operation;
signal alu_x_src, alu_y_src : alu_operand_source;
signal alu_x, alu_y, alu_result : std_logic_vector(31 downto 0);
signal rs1_addr, rs2_addr : register_address;
signal rs1_data, rs2_data : std_logic_vector(31 downto 0);
signal mem_op : memory_operation_type;
signal mem_size : memory_operation_size;
signal pc : std_logic_vector(31 downto 0);
signal immediate : std_logic_vector(31 downto 0);
signal shamt : std_logic_vector( 4 downto 0);
signal funct3 : std_logic_vector( 2 downto 0);
signal rs1_forwarded, rs2_forwarded : std_logic_vector(31 downto 0);
signal branch : branch_type;
signal branch_condition : std_logic;
signal do_jump : std_logic;
signal jump_target : std_logic_vector(31 downto 0);
signal mie, mtvec : std_logic_vector(31 downto 0);
signal csr_write : csr_write_mode;
signal csr_addr : csr_address;
signal csr_use_immediate : std_logic;
signal csr_value : std_logic_vector(31 downto 0);
signal decode_exception : std_logic;
signal decode_exception_cause : csr_exception_cause;
signal exception_taken : std_logic;
signal exception_cause : csr_exception_cause;
signal exception_addr : std_logic_vector(31 downto 0);
signal data_misaligned, instr_misaligned : std_logic;
signal irq_asserted : std_logic;
signal irq_asserted_num : std_logic_vector(3 downto 0);
signal load_hazard_detected, csr_hazard_detected : std_logic;
begin
-- Register values should not be latched in by a clocked process,
-- this is already done in the register files.
csr_value <= csr_value_in;
rd_data_out <= alu_result;
branch_out <= branch;
mem_op_out <= mem_op;
mem_size_out <= mem_size;
csr_write_out <= csr_write;
csr_addr_out <= csr_addr;
pc_out <= pc;
hazard_detected <= load_hazard_detected or csr_hazard_detected;
exception_out <= exception_taken;
exception_context_out <= (
ie => ie_in,
ie1 => ie1_in,
cause => exception_cause,
badaddr => exception_addr);
do_jump <= (to_std_logic(branch = BRANCH_JUMP or branch = BRANCH_JUMP_INDIRECT)
or (to_std_logic(branch = BRANCH_CONDITIONAL) and branch_condition)
or to_std_logic(branch = BRANCH_SRET)) and not stall;
jump_out <= do_jump;
jump_target_out <= jump_target;
mtvec_out <= std_logic_vector(unsigned(mtvec));
exception_taken <= not stall and (decode_exception or to_std_logic(exception_cause /= CSR_CAUSE_NONE));
irq_asserted <= to_std_logic(ie_in = '1' and (irq and mie(31 downto 24)) /= x"00");
rs1_data <= rs1_data_in;
rs2_data <= rs2_data_in;
dmem_address <= alu_result when (mem_op /= MEMOP_TYPE_NONE and mem_op /= MEMOP_TYPE_INVALID) and exception_taken = '0'
else (others => '0');
dmem_data_out <= rs2_forwarded;
dmem_write_req <= '1' when mem_op = MEMOP_TYPE_STORE and exception_taken = '0' else '0';
dmem_read_req <= '1' when memop_is_load(mem_op) and exception_taken = '0' else '0';
pipeline_register: process(clk)
begin
if rising_edge(clk) then
if reset = '1' or flush = '1' then
rd_write_out <= '0';
branch <= BRANCH_NONE;
csr_write <= CSR_WRITE_NONE;
mem_op <= MEMOP_TYPE_NONE;
decode_exception <= '0';
count_instruction_out <= '0';
elsif stall = '1' then
csr_write <= CSR_WRITE_NONE;
elsif stall = '0' then
pc <= pc_in;
count_instruction_out <= count_instruction_in;
-- Register signals:
rd_write_out <= rd_write_in;
rd_addr_out <= rd_addr_in;
rs1_addr <= rs1_addr_in;
rs2_addr <= rs2_addr_in;
-- ALU signals:
alu_op <= alu_op_in;
alu_x_src <= alu_x_src_in;
alu_y_src <= alu_y_src_in;
-- Control signals:
branch <= branch_in;
mem_op <= mem_op_in;
mem_size <= mem_size_in;
-- Constant values:
immediate <= immediate_in;
shamt <= shamt_in;
funct3 <= funct3_in;
-- CSR signals:
csr_write <= csr_write_in;
csr_addr <= csr_addr_in;
csr_use_immediate <= csr_use_immediate_in;
-- Exception vector base:
mtvec <= mtvec_in;
mie <= mie_in;
-- Instruction decoder exceptions:
decode_exception <= decode_exception_in;
decode_exception_cause <= decode_exception_cause_in;
end if;
end if;
end process pipeline_register;
set_data_size: process(mem_size)
begin
case mem_size is
when MEMOP_SIZE_BYTE =>
dmem_data_size <= b"01";
when MEMOP_SIZE_HALFWORD =>
dmem_data_size <= b"10";
when MEMOP_SIZE_WORD =>
dmem_data_size <= b"00";
when others =>
dmem_data_size <= b"11";
end case;
end process set_data_size;
get_irq_num: process(irq, mie)
variable temp : std_logic_vector(3 downto 0);
begin
temp := (others => '0');
for i in 0 to 7 loop
if irq(i) = '1' and mie(24 + i) = '1' then
temp := std_logic_vector(to_unsigned(i, temp'length));
exit;
end if;
end loop;
irq_asserted_num <= temp;
end process get_irq_num;
data_misalign_check: process(mem_size, alu_result)
begin
case mem_size is
when MEMOP_SIZE_HALFWORD =>
if alu_result(0) /= '0' then
data_misaligned <= '1';
else
data_misaligned <= '0';
end if;
when MEMOP_SIZE_WORD =>
if alu_result(1 downto 0) /= b"00" then
data_misaligned <= '1';
else
data_misaligned <= '0';
end if;
when others =>
data_misaligned <= '0';
end case;
end process data_misalign_check;
instr_misalign_check: process(jump_target, branch, branch_condition, do_jump)
begin
if jump_target(1 downto 0) /= b"00" and do_jump = '1' then
instr_misaligned <= '1';
else
instr_misaligned <= '0';
end if;
end process instr_misalign_check;
find_exception_cause: process(decode_exception, decode_exception_cause, mem_op,
data_misaligned, instr_misaligned, irq_asserted, irq_asserted_num, mie,
software_interrupt, timer_interrupt, ie_in)
begin
if irq_asserted = '1' then
exception_cause <= std_logic_vector(unsigned(CSR_CAUSE_IRQ_BASE) + unsigned(irq_asserted_num));
elsif software_interrupt = '1' and mie(CSR_MIE_MSIE) = '1' and ie_in = '1' then
exception_cause <= CSR_CAUSE_SOFTWARE_INT;
elsif timer_interrupt = '1' and mie(CSR_MIE_MTIE) = '1' and ie_in = '1' then
exception_cause <= CSR_CAUSE_TIMER_INT;
elsif decode_exception = '1' then
exception_cause <= decode_exception_cause;
elsif mem_op = MEMOP_TYPE_INVALID then
exception_cause <= CSR_CAUSE_INVALID_INSTR;
elsif instr_misaligned = '1' then
exception_cause <= CSR_CAUSE_INSTR_MISALIGN;
elsif data_misaligned = '1' and mem_op = MEMOP_TYPE_STORE then
exception_cause <= CSR_CAUSE_STORE_MISALIGN;
elsif data_misaligned = '1' and memop_is_load(mem_op) then
exception_cause <= CSR_CAUSE_LOAD_MISALIGN;
else
exception_cause <= CSR_CAUSE_NONE;
end if;
end process find_exception_cause;
find_exception_addr: process(instr_misaligned, data_misaligned, jump_target, alu_result)
begin
if instr_misaligned = '1' then
exception_addr <= jump_target;
elsif data_misaligned = '1' then
exception_addr <= alu_result;
else
exception_addr <= (others => '0');
end if;
end process find_exception_addr;
calc_jump_tgt: process(branch, pc, rs1_forwarded, immediate, csr_value)
begin
case branch is
when BRANCH_JUMP | BRANCH_CONDITIONAL =>
jump_target <= std_logic_vector(unsigned(pc) + unsigned(immediate));
when BRANCH_JUMP_INDIRECT =>
jump_target <= std_logic_vector(unsigned(rs1_forwarded) + unsigned(immediate));
when BRANCH_SRET =>
jump_target <= csr_value;
when others =>
jump_target <= (others => '0');
end case;
end process calc_jump_tgt;
alu_x_mux: entity work.pp_alu_mux
port map(
source => alu_x_src,
register_value => rs1_forwarded,
immediate_value => immediate,
shamt_value => shamt,
pc_value => pc,
csr_value => csr_value,
output => alu_x
);
alu_y_mux: entity work.pp_alu_mux
port map(
source => alu_y_src,
register_value => rs2_forwarded,
immediate_value => immediate,
shamt_value => shamt,
pc_value => pc,
csr_value => csr_value,
output => alu_y
);
alu_x_forward: process(mem_rd_write, mem_rd_value, mem_rd_addr, rs1_addr,
rs1_data, wb_rd_write, wb_rd_addr, wb_rd_value)
begin
if mem_rd_write = '1' and mem_rd_addr = rs1_addr and mem_rd_addr /= b"00000" then
rs1_forwarded <= mem_rd_value;
elsif wb_rd_write = '1' and wb_rd_addr = rs1_addr and wb_rd_addr /= b"00000" then
rs1_forwarded <= wb_rd_value;
else
rs1_forwarded <= rs1_data;
end if;
end process alu_x_forward;
alu_y_forward: process(mem_rd_write, mem_rd_value, mem_rd_addr, rs2_addr,
rs2_data, wb_rd_write, wb_rd_addr, wb_rd_value)
begin
if mem_rd_write = '1' and mem_rd_addr = rs2_addr and mem_rd_addr /= b"00000" then
rs2_forwarded <= mem_rd_value;
elsif wb_rd_write = '1' and wb_rd_addr = rs2_addr and wb_rd_addr /= b"00000" then
rs2_forwarded <= wb_rd_value;
else
rs2_forwarded <= rs2_data;
end if;
end process alu_y_forward;
detect_csr_hazard: process(mem_csr_write, wb_csr_write, mem_exception, wb_exception)
begin
if mem_csr_write /= CSR_WRITE_NONE or wb_csr_write /= CSR_WRITE_NONE
or mem_exception = '1' or wb_exception = '1' then
csr_hazard_detected <= '1';
else
csr_hazard_detected <= '0';
end if;
end process detect_csr_hazard;
detect_load_hazard: process(mem_mem_op, mem_rd_addr, rs1_addr, rs2_addr,
alu_x_src, alu_y_src)
begin
if (mem_mem_op = MEMOP_TYPE_LOAD or mem_mem_op = MEMOP_TYPE_LOAD_UNSIGNED) and
((alu_x_src = ALU_SRC_REG and mem_rd_addr = rs1_addr and rs1_addr /= b"00000")
or
(alu_y_src = ALU_SRC_REG and mem_rd_addr = rs2_addr and rs2_addr /= b"00000"))
then
load_hazard_detected <= '1';
else
load_hazard_detected <= '0';
end if;
end process detect_load_hazard;
branch_comparator: entity work.pp_comparator
port map(
funct3 => funct3,
rs1 => rs1_forwarded,
rs2 => rs2_forwarded,
result => branch_condition
);
alu_instance: entity work.pp_alu
port map(
result => alu_result,
x => alu_x,
y => alu_y,
operation => alu_op
);
csr_alu_instance: entity work.pp_csr_alu
port map(
x => csr_value,
y => rs1_forwarded,
result => csr_value_out,
immediate => rs1_addr,
use_immediate => csr_use_immediate,
write_mode => csr_write
);
end architecture behaviour;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2090.vhd,v 1.2 2001-10-26 16:29:45 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c07s02b04x00p20n01i02090ent IS
END c07s02b04x00p20n01i02090ent;
ARCHITECTURE c07s02b04x00p20n01i02090arch OF c07s02b04x00p20n01i02090ent IS
TYPE boolean_v is array (integer range <>) of boolean;
SUBTYPE boolean_8 is boolean_v (1 to 8);
SUBTYPE boolean_4 is boolean_v (1 to 4);
BEGIN
TESTING: PROCESS
variable result : boolean_4;
variable l_operand : boolean_4 := (true,false,true,false);
variable r_operand : boolean_4 := (false,false,true,true);
alias l_alias : boolean_v (1 to 2) is l_operand (2 to 3);
alias r_alias : boolean_v (1 to 2) is r_operand (3 to 4);
BEGIN
result := l_alias & r_alias;
wait for 5 ns;
assert NOT((result = (false,true,true,true)) and (result(1) = false))
report "***PASSED TEST: c07s02b04x00p20n01i02090"
severity NOTE;
assert ((result = (false,true,true,true)) and (result(1) = false))
report "***FAILED TEST: c07s02b04x00p20n01i02090 - Concatenation of two BOOLEAN aliases failed."
severity ERROR;
wait;
END PROCESS TESTING;
END c07s02b04x00p20n01i02090arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2090.vhd,v 1.2 2001-10-26 16:29:45 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c07s02b04x00p20n01i02090ent IS
END c07s02b04x00p20n01i02090ent;
ARCHITECTURE c07s02b04x00p20n01i02090arch OF c07s02b04x00p20n01i02090ent IS
TYPE boolean_v is array (integer range <>) of boolean;
SUBTYPE boolean_8 is boolean_v (1 to 8);
SUBTYPE boolean_4 is boolean_v (1 to 4);
BEGIN
TESTING: PROCESS
variable result : boolean_4;
variable l_operand : boolean_4 := (true,false,true,false);
variable r_operand : boolean_4 := (false,false,true,true);
alias l_alias : boolean_v (1 to 2) is l_operand (2 to 3);
alias r_alias : boolean_v (1 to 2) is r_operand (3 to 4);
BEGIN
result := l_alias & r_alias;
wait for 5 ns;
assert NOT((result = (false,true,true,true)) and (result(1) = false))
report "***PASSED TEST: c07s02b04x00p20n01i02090"
severity NOTE;
assert ((result = (false,true,true,true)) and (result(1) = false))
report "***FAILED TEST: c07s02b04x00p20n01i02090 - Concatenation of two BOOLEAN aliases failed."
severity ERROR;
wait;
END PROCESS TESTING;
END c07s02b04x00p20n01i02090arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2090.vhd,v 1.2 2001-10-26 16:29:45 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c07s02b04x00p20n01i02090ent IS
END c07s02b04x00p20n01i02090ent;
ARCHITECTURE c07s02b04x00p20n01i02090arch OF c07s02b04x00p20n01i02090ent IS
TYPE boolean_v is array (integer range <>) of boolean;
SUBTYPE boolean_8 is boolean_v (1 to 8);
SUBTYPE boolean_4 is boolean_v (1 to 4);
BEGIN
TESTING: PROCESS
variable result : boolean_4;
variable l_operand : boolean_4 := (true,false,true,false);
variable r_operand : boolean_4 := (false,false,true,true);
alias l_alias : boolean_v (1 to 2) is l_operand (2 to 3);
alias r_alias : boolean_v (1 to 2) is r_operand (3 to 4);
BEGIN
result := l_alias & r_alias;
wait for 5 ns;
assert NOT((result = (false,true,true,true)) and (result(1) = false))
report "***PASSED TEST: c07s02b04x00p20n01i02090"
severity NOTE;
assert ((result = (false,true,true,true)) and (result(1) = false))
report "***FAILED TEST: c07s02b04x00p20n01i02090 - Concatenation of two BOOLEAN aliases failed."
severity ERROR;
wait;
END PROCESS TESTING;
END c07s02b04x00p20n01i02090arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1427.vhd,v 1.2 2001-10-26 16:30:09 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s06b00x00p06n01i01427ent IS
END c08s06b00x00p06n01i01427ent;
ARCHITECTURE c08s06b00x00p06n01i01427arch OF c08s06b00x00p06n01i01427ent IS
procedure check(x : in integer; y : in boolean) is
begin
end;
signal k : real;
signal q : boolean;
BEGIN
TESTING: PROCESS
BEGIN
L1 : check(k,q);
assert FALSE
report "***FAILED TEST: c08s06b00x00p06n01i01427 - The parameters in the procedure declaration and the corresponding arguments in the procedure call are not of the same type."
severity ERROR;
wait;
END PROCESS TESTING;
END c08s06b00x00p06n01i01427arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1427.vhd,v 1.2 2001-10-26 16:30:09 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s06b00x00p06n01i01427ent IS
END c08s06b00x00p06n01i01427ent;
ARCHITECTURE c08s06b00x00p06n01i01427arch OF c08s06b00x00p06n01i01427ent IS
procedure check(x : in integer; y : in boolean) is
begin
end;
signal k : real;
signal q : boolean;
BEGIN
TESTING: PROCESS
BEGIN
L1 : check(k,q);
assert FALSE
report "***FAILED TEST: c08s06b00x00p06n01i01427 - The parameters in the procedure declaration and the corresponding arguments in the procedure call are not of the same type."
severity ERROR;
wait;
END PROCESS TESTING;
END c08s06b00x00p06n01i01427arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1427.vhd,v 1.2 2001-10-26 16:30:09 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s06b00x00p06n01i01427ent IS
END c08s06b00x00p06n01i01427ent;
ARCHITECTURE c08s06b00x00p06n01i01427arch OF c08s06b00x00p06n01i01427ent IS
procedure check(x : in integer; y : in boolean) is
begin
end;
signal k : real;
signal q : boolean;
BEGIN
TESTING: PROCESS
BEGIN
L1 : check(k,q);
assert FALSE
report "***FAILED TEST: c08s06b00x00p06n01i01427 - The parameters in the procedure declaration and the corresponding arguments in the procedure call are not of the same type."
severity ERROR;
wait;
END PROCESS TESTING;
END c08s06b00x00p06n01i01427arch;
|
-- Copyright (C) 1996 Morgan Kaufmann Publishers, Inc
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: ch_05_ch_05_17.vhd,v 1.1.1.1 2001-08-22 18:20:47 paw Exp $
-- $Revision: 1.1.1.1 $
--
-- ---------------------------------------------------------------------
entity ch_05_17 is
end entity ch_05_17;
----------------------------------------------------------------
architecture test of ch_05_17 is
signal s, r, q, q_n : bit := '0';
begin
q <= '1' when s = '1' else
'0' when r = '1';
q_n <= '0' when s = '1' else
'1' when r = '1';
-- code from book:
check : process is
begin
assert not (s = '1' and r = '1')
report "Incorrect use of S_R_flip_flop: s and r both '1'";
wait on s, r;
end process check;
-- end of code from book
stimulus : process is
begin
wait for 10 ns;
s <= '1'; wait for 10 ns;
s <= '0'; wait for 10 ns;
r <= '1'; wait for 10 ns;
r <= '0'; wait for 10 ns;
s <= '1'; wait for 10 ns;
r <= '1'; wait for 10 ns;
s <= '0'; wait for 10 ns;
r <= '0'; wait for 10 ns;
wait;
end process stimulus;
end architecture test;
|
-- Copyright (C) 1996 Morgan Kaufmann Publishers, Inc
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: ch_05_ch_05_17.vhd,v 1.1.1.1 2001-08-22 18:20:47 paw Exp $
-- $Revision: 1.1.1.1 $
--
-- ---------------------------------------------------------------------
entity ch_05_17 is
end entity ch_05_17;
----------------------------------------------------------------
architecture test of ch_05_17 is
signal s, r, q, q_n : bit := '0';
begin
q <= '1' when s = '1' else
'0' when r = '1';
q_n <= '0' when s = '1' else
'1' when r = '1';
-- code from book:
check : process is
begin
assert not (s = '1' and r = '1')
report "Incorrect use of S_R_flip_flop: s and r both '1'";
wait on s, r;
end process check;
-- end of code from book
stimulus : process is
begin
wait for 10 ns;
s <= '1'; wait for 10 ns;
s <= '0'; wait for 10 ns;
r <= '1'; wait for 10 ns;
r <= '0'; wait for 10 ns;
s <= '1'; wait for 10 ns;
r <= '1'; wait for 10 ns;
s <= '0'; wait for 10 ns;
r <= '0'; wait for 10 ns;
wait;
end process stimulus;
end architecture test;
|
-- Copyright (C) 1996 Morgan Kaufmann Publishers, Inc
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: ch_05_ch_05_17.vhd,v 1.1.1.1 2001-08-22 18:20:47 paw Exp $
-- $Revision: 1.1.1.1 $
--
-- ---------------------------------------------------------------------
entity ch_05_17 is
end entity ch_05_17;
----------------------------------------------------------------
architecture test of ch_05_17 is
signal s, r, q, q_n : bit := '0';
begin
q <= '1' when s = '1' else
'0' when r = '1';
q_n <= '0' when s = '1' else
'1' when r = '1';
-- code from book:
check : process is
begin
assert not (s = '1' and r = '1')
report "Incorrect use of S_R_flip_flop: s and r both '1'";
wait on s, r;
end process check;
-- end of code from book
stimulus : process is
begin
wait for 10 ns;
s <= '1'; wait for 10 ns;
s <= '0'; wait for 10 ns;
r <= '1'; wait for 10 ns;
r <= '0'; wait for 10 ns;
s <= '1'; wait for 10 ns;
r <= '1'; wait for 10 ns;
s <= '0'; wait for 10 ns;
r <= '0'; wait for 10 ns;
wait;
end process stimulus;
end architecture test;
|
-------------------------------------------------------------------------------
-- axi_datamover_wr_sf.vhd
-------------------------------------------------------------------------------
--
-- *************************************************************************
--
-- (c) Copyright 2010-2011 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
--
-- *************************************************************************
--
-------------------------------------------------------------------------------
-- Filename: axi_datamover_wr_sf.vhd
--
-- Description:
-- This file implements the AXI DataMover Write (S2MM) Store and Forward module.
-- The design utilizes the AXI DataMover's new address pipelining
-- control function. This module buffers write data and provides status and
-- control features such that the DataMover Write Master is only allowed
-- to post AXI WRite Requests if the associated write data needed to complete
-- the Write Data transfer is present in the Data FIFO. In addition, the Write
-- side logic is such that Write transfer requests can be pipelined to the
-- AXI4 bus based on the Data FIFO contents but ahead of the actual Write Data
-- transfers.
--
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-------------------------------------------------------------------------------
library IEEE;
use IEEE.std_logic_1164.all;
use IEEE.numeric_std.all;
library lib_pkg_v1_0_2;
library lib_srl_fifo_v1_0_2;
use lib_pkg_v1_0_2.lib_pkg.all;
use lib_pkg_v1_0_2.lib_pkg.clog2;
use lib_srl_fifo_v1_0_2.srl_fifo_f;
library axi_datamover_v5_1_9;
use axi_datamover_v5_1_9.axi_datamover_sfifo_autord;
-------------------------------------------------------------------------------
entity axi_datamover_wr_sf is
generic (
C_WR_ADDR_PIPE_DEPTH : Integer range 1 to 30 := 4;
-- This parameter indicates the depth of the DataMover
-- write address pipelining queues for the Main data transport
-- channels. The effective address pipelining on the AXI4
-- Write Address Channel will be the value assigned plus 2.
C_SF_FIFO_DEPTH : Integer range 128 to 8192 := 512;
-- Sets the desired depth of the internal Data FIFO.
-- C_MAX_BURST_LEN : Integer range 16 to 256 := 16;
-- -- Indicates the max burst length being used by the external
-- -- AXI4 Master for each AXI4 transfer request.
-- C_DRE_IS_USED : Integer range 0 to 1 := 0;
-- -- Indicates if the external Master is utilizing a DRE on
-- -- the stream input to this module.
C_MMAP_DWIDTH : Integer range 32 to 1024 := 64;
-- Sets the AXI4 Memory Mapped Bus Data Width
C_STREAM_DWIDTH : Integer range 8 to 1024 := 16;
-- Sets the Stream Data Width for the Input and Output
-- Data streams.
C_STRT_OFFSET_WIDTH : Integer range 1 to 7 := 2;
-- Sets the bit width of the starting address offset port
-- This should be set to log2(C_MMAP_DWIDTH/C_STREAM_DWIDTH)
C_FAMILY : String := "virtex7"
-- Indicates the target FPGA Family.
);
port (
-- Clock and Reset inputs -----------------------------------------------
--
aclk : in std_logic; --
-- Primary synchronization clock for the Master side --
-- interface and internal logic. It is also used --
-- for the User interface synchronization when --
-- C_STSCMD_IS_ASYNC = 0. --
--
-- Reset input --
reset : in std_logic; --
-- Reset used for the internal syncronization logic --
-------------------------------------------------------------------------
-- Slave Stream Input ------------------------------------------------------------
--
sf2sin_tready : Out Std_logic; --
-- DRE Stream READY input --
--
sin2sf_tvalid : In std_logic; --
-- DRE Stream VALID Output --
--
sin2sf_tdata : In std_logic_vector(C_STREAM_DWIDTH-1 downto 0); --
-- DRE Stream DATA input --
--
sin2sf_tkeep : In std_logic_vector((C_STREAM_DWIDTH/8)-1 downto 0); --
-- DRE Stream STRB input --
--
sin2sf_tlast : In std_logic; --
-- DRE Xfer LAST input --
--
sin2sf_error : In std_logic; --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
-- Starting Address Offset Input -------------------------------------------------
--
sin2sf_strt_addr_offset : In std_logic_vector(C_STRT_OFFSET_WIDTH-1 downto 0); --
-- Used by Packing logic to set the initial data slice position for the --
-- packing operation. Packing is only needed if the MMap and Stream Data --
-- widths do not match. --
-----------------------------------------------------------------------------------
-- DataMover Write Side Address Pipelining Control Interface ----------------------
--
ok_to_post_wr_addr : Out Std_logic; --
-- Indicates that the internal FIFO has enough data --
-- physically present to supply one more max length --
-- burst transfer or a completion burst --
-- (tlast asserted) --
--
wr_addr_posted : In std_logic; --
-- Indication that a write address has been posted to AXI4 --
--
--
wr_xfer_cmplt : In Std_logic; --
-- Indicates that the Datamover has completed a Write Data --
-- transfer on the AXI4 --
--
--
wr_ld_nxt_len : in std_logic; --
-- Active high pulse indicating a new transfer LEN qualifier --
-- has been queued to the DataMover Write Data Controller --
--
wr_len : in std_logic_vector(7 downto 0); --
-- The actual LEN qualifier value that has been queued to the --
-- DataMover Write Data Controller --
-----------------------------------------------------------------------------------
-- Write Side Stream Out to DataMover S2MM ----------------------------------------
--
sout2sf_tready : In std_logic; --
-- Write READY input from the Stream Master --
--
sf2sout_tvalid : Out std_logic; --
-- Write VALID output to the Stream Master --
--
sf2sout_tdata : Out std_logic_vector(C_MMAP_DWIDTH-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tkeep : Out std_logic_vector((C_MMAP_DWIDTH/8)-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tlast : Out std_logic; --
-- Write LAST output to the Stream Master --
--
sf2sout_error : Out std_logic --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
);
end entity axi_datamover_wr_sf;
architecture implementation of axi_datamover_wr_sf is
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of implementation : architecture is "yes";
-- Functions ---------------------------------------------------------------------------
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_pwr2_depth
--
-- Function Description:
-- Rounds up to the next power of 2 depth value in an input
-- range of 1 to 8192
--
-------------------------------------------------------------------
function funct_get_pwr2_depth (min_depth : integer) return integer is
Variable var_temp_depth : Integer := 16;
begin
if (min_depth = 1) then
var_temp_depth := 1;
elsif (min_depth = 2) then
var_temp_depth := 2;
elsif (min_depth <= 4) then
var_temp_depth := 4;
elsif (min_depth <= 8) then
var_temp_depth := 8;
elsif (min_depth <= 16) then
var_temp_depth := 16;
elsif (min_depth <= 32) then
var_temp_depth := 32;
elsif (min_depth <= 64) then
var_temp_depth := 64;
elsif (min_depth <= 128) then
var_temp_depth := 128;
elsif (min_depth <= 256) then
var_temp_depth := 256;
elsif (min_depth <= 512) then
var_temp_depth := 512;
elsif (min_depth <= 1024) then
var_temp_depth := 1024;
elsif (min_depth <= 2048) then
var_temp_depth := 2048;
elsif (min_depth <= 4096) then
var_temp_depth := 4096;
else -- assume 8192 depth
var_temp_depth := 8192;
end if;
Return (var_temp_depth);
end function funct_get_pwr2_depth;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_fifo_cnt_width
--
-- Function Description:
-- simple function to set the width of the data fifo read
-- and write count outputs.
-------------------------------------------------------------------
function funct_get_fifo_cnt_width (fifo_depth : integer)
return integer is
Variable temp_width : integer := 8;
begin
if (fifo_depth = 1) then
temp_width := 1;
elsif (fifo_depth = 2) then
temp_width := 2;
elsif (fifo_depth <= 4) then
temp_width := 3;
elsif (fifo_depth <= 8) then
temp_width := 4;
elsif (fifo_depth <= 16) then
temp_width := 5;
elsif (fifo_depth <= 32) then
temp_width := 6;
elsif (fifo_depth <= 64) then
temp_width := 7;
elsif (fifo_depth <= 128) then
temp_width := 8;
elsif (fifo_depth <= 256) then
temp_width := 9;
elsif (fifo_depth <= 512) then
temp_width := 10;
elsif (fifo_depth <= 1024) then
temp_width := 11;
elsif (fifo_depth <= 2048) then
temp_width := 12;
elsif (fifo_depth <= 4096) then
temp_width := 13;
else -- assume 8192 depth
temp_width := 14;
end if;
Return (temp_width);
end function funct_get_fifo_cnt_width;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_cntr_width
--
-- Function Description:
-- This function calculates the needed counter bit width from the
-- number of count sates needed (input).
--
-------------------------------------------------------------------
function funct_get_cntr_width (num_cnt_values : integer) return integer is
Variable temp_cnt_width : Integer := 0;
begin
if (num_cnt_values <= 2) then
temp_cnt_width := 1;
elsif (num_cnt_values <= 4) then
temp_cnt_width := 2;
elsif (num_cnt_values <= 8) then
temp_cnt_width := 3;
elsif (num_cnt_values <= 16) then
temp_cnt_width := 4;
elsif (num_cnt_values <= 32) then
temp_cnt_width := 5;
elsif (num_cnt_values <= 64) then
temp_cnt_width := 6;
elsif (num_cnt_values <= 128) then
temp_cnt_width := 7;
else
temp_cnt_width := 8;
end if;
Return (temp_cnt_width);
end function funct_get_cntr_width;
-- Constants ---------------------------------------------------------------------------
Constant LOGIC_LOW : std_logic := '0';
Constant LOGIC_HIGH : std_logic := '1';
Constant BLK_MEM_FIFO : integer := 1;
Constant SRL_FIFO : integer := 0;
Constant NOT_NEEDED : integer := 0;
Constant WSTB_WIDTH : integer := C_MMAP_DWIDTH/8; -- bits
Constant TLAST_WIDTH : integer := 1; -- bits
Constant EOP_ERR_WIDTH : integer := 1; -- bits
Constant DATA_FIFO_DEPTH : integer := C_SF_FIFO_DEPTH;
Constant DATA_FIFO_CNT_WIDTH : integer := funct_get_fifo_cnt_width(DATA_FIFO_DEPTH);
-- Constant DF_WRCNT_RIP_LS_INDEX : integer := funct_get_wrcnt_lsrip(C_MAX_BURST_LEN);
Constant DATA_FIFO_WIDTH : integer := C_MMAP_DWIDTH +
--WSTB_WIDTH +
TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant DATA_OUT_MSB_INDEX : integer := C_MMAP_DWIDTH-1;
Constant DATA_OUT_LSB_INDEX : integer := 0;
-- Constant TSTRB_OUT_LSB_INDEX : integer := DATA_OUT_MSB_INDEX+1;
-- Constant TSTRB_OUT_MSB_INDEX : integer := (TSTRB_OUT_LSB_INDEX+WSTB_WIDTH)-1;
-- Constant TLAST_OUT_INDEX : integer := TSTRB_OUT_MSB_INDEX+1;
Constant TLAST_OUT_INDEX : integer := DATA_OUT_MSB_INDEX+1;
Constant EOP_ERR_OUT_INDEX : integer := TLAST_OUT_INDEX+1;
Constant WR_LEN_FIFO_DWIDTH : integer := 8;
Constant WR_LEN_FIFO_DEPTH : integer := funct_get_pwr2_depth(C_WR_ADDR_PIPE_DEPTH + 2);
Constant LEN_CNTR_WIDTH : integer := 8;
Constant LEN_CNT_ZERO : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, LEN_CNTR_WIDTH);
Constant LEN_CNT_ONE : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, LEN_CNTR_WIDTH);
Constant WR_XFER_CNTR_WIDTH : integer := 8;
Constant WR_XFER_CNT_ZERO : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, WR_XFER_CNTR_WIDTH);
Constant WR_XFER_CNT_ONE : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, WR_XFER_CNTR_WIDTH);
Constant UNCOM_WRCNT_1 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, DATA_FIFO_CNT_WIDTH);
Constant UNCOM_WRCNT_0 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, DATA_FIFO_CNT_WIDTH);
-- Signals ---------------------------------------------------------------------------
signal sig_good_sin_strm_dbeat : std_logic := '0';
signal sig_strm_sin_ready : std_logic := '0';
signal sig_sout2sf_tready : std_logic := '0';
signal sig_sf2sout_tvalid : std_logic := '0';
signal sig_sf2sout_tdata : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tkeep : std_logic_vector(WSTB_WIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tlast : std_logic := '0';
signal sig_push_data_fifo : std_logic := '0';
signal sig_pop_data_fifo : std_logic := '0';
signal sig_data_fifo_full : std_logic := '0';
signal sig_data_fifo_data_in : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_data_fifo_dvalid : std_logic := '0';
signal sig_data_fifo_data_out : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_ok_to_post_wr_addr : std_logic := '0';
signal sig_wr_addr_posted : std_logic := '0';
signal sig_wr_xfer_cmplt : std_logic := '0';
signal sig_wr_ld_nxt_len : std_logic := '0';
signal sig_push_len_fifo : std_logic := '0';
signal sig_pop_len_fifo : std_logic := '0';
signal sig_len_fifo_full : std_logic := '0';
signal sig_len_fifo_empty : std_logic := '0';
signal sig_len_fifo_data_in : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_data_out : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_len_out_un : unsigned(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_uncom_wrcnt : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_sub_len_uncom_wrcnt : std_logic := '0';
signal sig_incr_uncom_wrcnt : std_logic := '0';
signal sig_resized_fifo_len : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_num_wr_dbeats_needed : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_enough_dbeats_rcvd : std_logic := '0';
signal sig_sf2sout_eop_err_out : std_logic := '0';
signal sig_good_fifo_write : std_logic := '0';
begin --(architecture implementation)
-- Write Side (S2MM) Control Flags port connections
ok_to_post_wr_addr <= sig_ok_to_post_wr_addr ;
sig_wr_addr_posted <= wr_addr_posted ;
sig_wr_xfer_cmplt <= wr_xfer_cmplt ;
sig_wr_ld_nxt_len <= wr_ld_nxt_len ;
sig_len_fifo_data_in <= wr_len ;
-- Output Stream Port connections
sig_sout2sf_tready <= sout2sf_tready ;
sf2sout_tvalid <= sig_sf2sout_tvalid ;
sf2sout_tdata <= sig_sf2sout_tdata ;
sf2sout_tkeep <= sig_sf2sout_tkeep ;
sf2sout_tlast <= sig_sf2sout_tlast and
sig_sf2sout_tvalid ;
sf2sout_error <= sig_sf2sout_eop_err_out ;
-- Input Stream port connections
sf2sin_tready <= sig_strm_sin_ready;
sig_good_sin_strm_dbeat <= sin2sf_tvalid and
sig_strm_sin_ready;
----------------------------------------------------------------
-- Packing Logic ------------------------------------------
----------------------------------------------------------------
------------------------------------------------------------
-- If Generate
--
-- Label: OMIT_PACKING
--
-- If Generate Description:
-- Omits any packing logic in the Store and Forward module.
-- The Stream and MMap data widths are the same.
--
------------------------------------------------------------
OMIT_PACKING : if (C_MMAP_DWIDTH = C_STREAM_DWIDTH) generate
begin
sig_good_fifo_write <= sig_good_sin_strm_dbeat;
sig_strm_sin_ready <= not(sig_data_fifo_full);
sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- Concatonate the Stream inputs into the single FIFO data in value
sig_data_fifo_data_in <= sin2sf_error &
sin2sf_tlast &
-- sin2sf_tkeep &
sin2sf_tdata;
end generate OMIT_PACKING;
------------------------------------------------------------
-- If Generate
--
-- Label: INCLUDE_PACKING
--
-- If Generate Description:
-- Includes packing logic in the Store and Forward module.
-- The MMap Data bus is wider than the Stream width.
--
------------------------------------------------------------
INCLUDE_PACKING : if (C_MMAP_DWIDTH > C_STREAM_DWIDTH) generate
Constant MMAP2STRM_WIDTH_RATO : integer := C_MMAP_DWIDTH/C_STREAM_DWIDTH;
Constant DATA_SLICE_WIDTH : integer := C_STREAM_DWIDTH;
Constant FLAG_SLICE_WIDTH : integer := TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant OFFSET_CNTR_WIDTH : integer := funct_get_cntr_width(MMAP2STRM_WIDTH_RATO);
Constant OFFSET_CNT_ONE : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, OFFSET_CNTR_WIDTH);
Constant OFFSET_CNT_MAX : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(MMAP2STRM_WIDTH_RATO-1, OFFSET_CNTR_WIDTH);
-- Types -----------------------------------------------------------------------------
type lsig_data_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(DATA_SLICE_WIDTH-1 downto 0);
type lsig_flag_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(FLAG_SLICE_WIDTH-1 downto 0);
-- local signals
signal lsig_data_slice_reg : lsig_data_slice_type;
signal lsig_flag_slice_reg : lsig_flag_slice_type;
signal lsig_reg_segment : std_logic_vector(DATA_SLICE_WIDTH-1 downto 0) := (others => '0');
signal lsig_segment_ld : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_segment_clr : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_0ffset_to_to_use : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_0ffset_cntr : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_ld_offset : std_logic := '0';
signal lsig_incr_offset : std_logic := '0';
signal lsig_offset_cntr_eq_max : std_logic := '0';
signal lsig_combined_data : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal lsig_tlast_or : std_logic := '0';
signal lsig_eop_err_or : std_logic := '0';
signal lsig_partial_tlast_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_partial_eop_err_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_packer_full : std_logic := '0';
signal lsig_packer_empty : std_logic := '0';
signal lsig_set_packer_full : std_logic := '0';
signal lsig_good_push2fifo : std_logic := '0';
signal lsig_first_dbeat : std_logic := '0';
begin
-- Assign the flag indicating that a fifo write is going
-- to occur at the next rising clock edge.
sig_good_fifo_write <= lsig_good_push2fifo;
-- Generate the stream ready
sig_strm_sin_ready <= not(lsig_packer_full) or
lsig_good_push2fifo ;
-- Format the FIFO input data
sig_data_fifo_data_in <= lsig_eop_err_or & -- MS Bit
lsig_tlast_or &
lsig_combined_data ; -- LS Bits
-- Generate a write to the Data FIFO input
sig_push_data_fifo <= lsig_packer_full;
-- Generate a flag indicating a write to the DataFIFO
-- is going to complete
lsig_good_push2fifo <= lsig_packer_full and
not(sig_data_fifo_full);
-- Generate the control that loads the starting address
-- offset for the next input packet
lsig_ld_offset <= lsig_first_dbeat and
sig_good_sin_strm_dbeat;
-- Generate the control for incrementing the offset counter
lsig_incr_offset <= sig_good_sin_strm_dbeat;
-- Generate a flag indicating the packer input register
-- array is full or has loaded the last data beat of
-- the input paket
lsig_set_packer_full <= sig_good_sin_strm_dbeat and
(sin2sf_tlast or
lsig_offset_cntr_eq_max);
-- Check to see if the offset counter has reached its max
-- value
lsig_offset_cntr_eq_max <= '1'
--when (lsig_0ffset_cntr = OFFSET_CNT_MAX)
when (lsig_0ffset_to_to_use = OFFSET_CNT_MAX)
Else '0';
-- Mux between the input start offset and the offset counter
-- output to use for the packer slice load control.
lsig_0ffset_to_to_use <= UNSIGNED(sin2sf_strt_addr_offset)
when (lsig_first_dbeat = '1')
Else lsig_0ffset_cntr;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_LD_MARKER
--
-- Process Description:
-- Implements the flop indicating the first databeat of
-- an input data packet.
--
-------------------------------------------------------------
IMP_OFFSET_LD_MARKER : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_first_dbeat <= '1';
elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '0') then
lsig_first_dbeat <= '0';
Elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '1') Then
lsig_first_dbeat <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_LD_MARKER;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_CNTR
--
-- Process Description:
-- Implements the address offset counter that is used to
-- steer the data loads into the packer register slices.
-- Note that the counter has to be loaded with the starting
-- offset plus one to sync up with the data input.
-------------------------------------------------------------
IMP_OFFSET_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_0ffset_cntr <= (others => '0');
Elsif (lsig_ld_offset = '1') Then
lsig_0ffset_cntr <= UNSIGNED(sin2sf_strt_addr_offset) + OFFSET_CNT_ONE;
elsif (lsig_incr_offset = '1') then
lsig_0ffset_cntr <= lsig_0ffset_cntr + OFFSET_CNT_ONE;
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_PACK_REG_FULL
--
-- Process Description:
-- Implements the Packer Register full/empty flags
--
-------------------------------------------------------------
IMP_PACK_REG_FULL : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
Elsif (lsig_set_packer_full = '1' and
lsig_packer_full = '0') Then
lsig_packer_full <= '1';
lsig_packer_empty <= '0';
elsif (lsig_set_packer_full = '0' and
lsig_good_push2fifo = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_PACK_REG_FULL;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_REG_SLICES
--
-- For Generate Description:
--
-- Implements the Packng Register Slices
--
--
------------------------------------------------------------
DO_REG_SLICES : for slice_index in 0 to MMAP2STRM_WIDTH_RATO-1 generate
begin
-- generate the register load enable for each slice segment based
-- on the address offset count value
lsig_segment_ld(slice_index) <= '1'
when (sig_good_sin_strm_dbeat = '1' and
TO_INTEGER(lsig_0ffset_to_to_use) = slice_index)
Else '0';
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_DATA_SLICE
--
-- Process Description:
-- Implement a data register slice for the packer.
--
-------------------------------------------------------------
IMP_DATA_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_data_slice_reg(slice_index) <= sin2sf_tdata;
-- optional clear of slice reg
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_DATA_SLICE;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_FLAG_SLICE
--
-- Process Description:
-- Implement a flag register slice for the packer.
--
-------------------------------------------------------------
IMP_FLAG_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_flag_slice_reg(slice_index) <= sin2sf_tlast & -- bit 1
sin2sf_error; -- bit 0
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_FLAG_SLICE;
end generate DO_REG_SLICES;
-- Do the OR functions of the Flags -------------------------------------
lsig_tlast_or <= lsig_partial_tlast_or(MMAP2STRM_WIDTH_RATO-1) ;
lsig_eop_err_or <= lsig_partial_eop_err_or(MMAP2STRM_WIDTH_RATO-1);
lsig_partial_tlast_or(0) <= lsig_flag_slice_reg(0)(1);
lsig_partial_eop_err_or(0) <= lsig_flag_slice_reg(0)(0);
------------------------------------------------------------
-- For Generate
--
-- Label: DO_FLAG_OR
--
-- For Generate Description:
-- Implement the OR of the TLAST and EOP Error flags.
--
--
--
------------------------------------------------------------
DO_FLAG_OR : for slice_index in 1 to MMAP2STRM_WIDTH_RATO-1 generate
begin
lsig_partial_tlast_or(slice_index) <= lsig_partial_tlast_or(slice_index-1) or
--lsig_partial_tlast_or(slice_index);
lsig_flag_slice_reg(slice_index)(1);
lsig_partial_eop_err_or(slice_index) <= lsig_partial_eop_err_or(slice_index-1) or
--lsig_partial_eop_err_or(slice_index);
lsig_flag_slice_reg(slice_index)(0);
end generate DO_FLAG_OR;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_DATA_COMBINER
--
-- For Generate Description:
-- Combines the Data Slice register outputs into a single
-- vector for input to the Data FIFO.
--
--
------------------------------------------------------------
DO_DATA_COMBINER : for slice_index in 1 to MMAP2STRM_WIDTH_RATO generate
begin
lsig_combined_data((slice_index*DATA_SLICE_WIDTH)-1 downto
(slice_index-1)*DATA_SLICE_WIDTH) <=
lsig_data_slice_reg(slice_index-1);
end generate DO_DATA_COMBINER;
end generate INCLUDE_PACKING;
----------------------------------------------------------------
-- Data FIFO Logic ------------------------------------------
----------------------------------------------------------------
-- FIFO Input attachments
-- sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- -- Concatonate the Stream inputs into the single FIFO data in value
-- sig_data_fifo_data_in <= sin2sf_error &
-- sin2sf_tlast &
-- sin2sf_tkeep &
-- sin2sf_tdata;
-- FIFO Output to output stream attachments
sig_sf2sout_tvalid <= sig_data_fifo_dvalid ;
sig_sf2sout_tdata <= sig_data_fifo_data_out(DATA_OUT_MSB_INDEX downto
DATA_OUT_LSB_INDEX);
-- sig_sf2sout_tkeep <= sig_data_fifo_data_out(TSTRB_OUT_MSB_INDEX downto
-- TSTRB_OUT_LSB_INDEX);
-- When this Store and Forward is enabled, the Write Data Controller ignores the
-- TKEEP input so this is not sent through the FIFO.
sig_sf2sout_tkeep <= (others => '1');
sig_sf2sout_tlast <= sig_data_fifo_data_out(TLAST_OUT_INDEX) ;
sig_sf2sout_eop_err_out <= sig_data_fifo_data_out(EOP_ERR_OUT_INDEX) ;
-- FIFO Rd/WR Controls
sig_pop_data_fifo <= sig_sout2sf_tready and
sig_data_fifo_dvalid;
------------------------------------------------------------
-- Instance: I_DATA_FIFO
--
-- Description:
-- Implements the Store and Forward data FIFO (synchronous)
--
------------------------------------------------------------
I_DATA_FIFO : entity axi_datamover_v5_1_9.axi_datamover_sfifo_autord
generic map (
C_DWIDTH => DATA_FIFO_WIDTH ,
C_DEPTH => DATA_FIFO_DEPTH ,
C_DATA_CNT_WIDTH => DATA_FIFO_CNT_WIDTH ,
C_NEED_ALMOST_EMPTY => NOT_NEEDED ,
C_NEED_ALMOST_FULL => NOT_NEEDED ,
C_USE_BLKMEM => BLK_MEM_FIFO ,
C_FAMILY => C_FAMILY
)
port map (
-- Inputs
SFIFO_Sinit => reset ,
SFIFO_Clk => aclk ,
SFIFO_Wr_en => sig_push_data_fifo ,
SFIFO_Din => sig_data_fifo_data_in ,
SFIFO_Rd_en => sig_pop_data_fifo ,
SFIFO_Clr_Rd_Data_Valid => LOGIC_LOW ,
-- Outputs
SFIFO_DValid => sig_data_fifo_dvalid ,
SFIFO_Dout => sig_data_fifo_data_out ,
SFIFO_Full => sig_data_fifo_full ,
SFIFO_Empty => open ,
SFIFO_Almost_full => open ,
SFIFO_Almost_empty => open ,
SFIFO_Rd_count => open ,
SFIFO_Rd_count_minus1 => open ,
SFIFO_Wr_count => open ,
SFIFO_Rd_ack => open
);
--------------------------------------------------------------------
-- Write Side Control Logic
--------------------------------------------------------------------
-- Convert the LEN fifo data output to unsigned
sig_len_fifo_len_out_un <= unsigned(sig_len_fifo_data_out);
-- Resize the unsigned LEN output to the Data FIFO writecount width
sig_resized_fifo_len <= RESIZE(sig_len_fifo_len_out_un , DATA_FIFO_CNT_WIDTH);
-- The actual number of databeats needed for the queued write transfer
-- is the current LEN fifo output plus 1.
sig_num_wr_dbeats_needed <= sig_resized_fifo_len + UNCOM_WRCNT_1;
-- Compare the uncommited receved data beat count to that needed
-- for the next queued write request.
sig_enough_dbeats_rcvd <= '1'
When (sig_num_wr_dbeats_needed <= sig_uncom_wrcnt)
else '0';
-- Increment the uncommited databeat counter on a good input
-- stream databeat (Read Side of SF)
-- sig_incr_uncom_wrcnt <= sig_good_sin_strm_dbeat;
sig_incr_uncom_wrcnt <= sig_good_fifo_write;
-- Subtract the current number of databeats needed from the
-- uncommited databeat counter when the associated transfer
-- address/qualifiers have been posted to the AXI Write
-- Address Channel
sig_sub_len_uncom_wrcnt <= sig_wr_addr_posted;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_UNCOM_DBEAT_CNTR
--
-- Process Description:
-- Implements the counter that keeps track of the received read
-- data beat count that has not been commited to a transfer on
-- the write side with a Write Address posting.
--
-------------------------------------------------------------
IMP_UNCOM_DBEAT_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
sig_uncom_wrcnt <= UNCOM_WRCNT_0;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_resized_fifo_len;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '0') then
sig_uncom_wrcnt <= sig_uncom_wrcnt + UNCOM_WRCNT_1;
elsif (sig_incr_uncom_wrcnt = '0' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_num_wr_dbeats_needed;
else
null; -- hold current value
end if;
end if;
end process IMP_UNCOM_DBEAT_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_WR_ADDR_POST_FLAG
--
-- Process Description:
-- Implements the flag indicating that the pending write
-- transfer's data beat count has been received on the input
-- side of the Data FIFO. This means the Write side can post
-- the associated write address to the AXI4 bus and the
-- associated write data transfer can complete without CDMA
-- throttling the Write Data Channel.
--
-- The flag is cleared immediately after an address is posted
-- to prohibit a second unauthorized posting while the control
-- logic stabilizes to the next LEN FIFO value
--.
-------------------------------------------------------------
IMP_WR_ADDR_POST_FLAG : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1' or
sig_wr_addr_posted = '1') then
sig_ok_to_post_wr_addr <= '0';
else
sig_ok_to_post_wr_addr <= not(sig_len_fifo_empty) and
sig_enough_dbeats_rcvd;
end if;
end if;
end process IMP_WR_ADDR_POST_FLAG;
-------------------------------------------------------------
-- LEN FIFO logic
-- The LEN FIFO stores the xfer lengths needed for each queued
-- write transfer in the DataMover S2MM Write Data Controller.
sig_push_len_fifo <= sig_wr_ld_nxt_len and
not(sig_len_fifo_full);
sig_pop_len_fifo <= wr_addr_posted and
not(sig_len_fifo_empty);
------------------------------------------------------------
-- Instance: I_WR_LEN_FIFO
--
-- Description:
-- Implement the LEN FIFO using SRL FIFO elements
--
------------------------------------------------------------
I_WR_LEN_FIFO : entity lib_srl_fifo_v1_0_2.srl_fifo_f
generic map (
C_DWIDTH => WR_LEN_FIFO_DWIDTH ,
C_DEPTH => WR_LEN_FIFO_DEPTH ,
C_FAMILY => C_FAMILY
)
port map (
Clk => aclk ,
Reset => reset ,
FIFO_Write => sig_push_len_fifo ,
Data_In => sig_len_fifo_data_in ,
FIFO_Read => sig_pop_len_fifo ,
Data_Out => sig_len_fifo_data_out ,
FIFO_Empty => sig_len_fifo_empty ,
FIFO_Full => sig_len_fifo_full ,
Addr => open
);
end implementation;
|
-------------------------------------------------------------------------------
-- axi_datamover_wr_sf.vhd
-------------------------------------------------------------------------------
--
-- *************************************************************************
--
-- (c) Copyright 2010-2011 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
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-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
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-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
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--
-------------------------------------------------------------------------------
-- Filename: axi_datamover_wr_sf.vhd
--
-- Description:
-- This file implements the AXI DataMover Write (S2MM) Store and Forward module.
-- The design utilizes the AXI DataMover's new address pipelining
-- control function. This module buffers write data and provides status and
-- control features such that the DataMover Write Master is only allowed
-- to post AXI WRite Requests if the associated write data needed to complete
-- the Write Data transfer is present in the Data FIFO. In addition, the Write
-- side logic is such that Write transfer requests can be pipelined to the
-- AXI4 bus based on the Data FIFO contents but ahead of the actual Write Data
-- transfers.
--
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-------------------------------------------------------------------------------
library IEEE;
use IEEE.std_logic_1164.all;
use IEEE.numeric_std.all;
library lib_pkg_v1_0_2;
library lib_srl_fifo_v1_0_2;
use lib_pkg_v1_0_2.lib_pkg.all;
use lib_pkg_v1_0_2.lib_pkg.clog2;
use lib_srl_fifo_v1_0_2.srl_fifo_f;
library axi_datamover_v5_1_9;
use axi_datamover_v5_1_9.axi_datamover_sfifo_autord;
-------------------------------------------------------------------------------
entity axi_datamover_wr_sf is
generic (
C_WR_ADDR_PIPE_DEPTH : Integer range 1 to 30 := 4;
-- This parameter indicates the depth of the DataMover
-- write address pipelining queues for the Main data transport
-- channels. The effective address pipelining on the AXI4
-- Write Address Channel will be the value assigned plus 2.
C_SF_FIFO_DEPTH : Integer range 128 to 8192 := 512;
-- Sets the desired depth of the internal Data FIFO.
-- C_MAX_BURST_LEN : Integer range 16 to 256 := 16;
-- -- Indicates the max burst length being used by the external
-- -- AXI4 Master for each AXI4 transfer request.
-- C_DRE_IS_USED : Integer range 0 to 1 := 0;
-- -- Indicates if the external Master is utilizing a DRE on
-- -- the stream input to this module.
C_MMAP_DWIDTH : Integer range 32 to 1024 := 64;
-- Sets the AXI4 Memory Mapped Bus Data Width
C_STREAM_DWIDTH : Integer range 8 to 1024 := 16;
-- Sets the Stream Data Width for the Input and Output
-- Data streams.
C_STRT_OFFSET_WIDTH : Integer range 1 to 7 := 2;
-- Sets the bit width of the starting address offset port
-- This should be set to log2(C_MMAP_DWIDTH/C_STREAM_DWIDTH)
C_FAMILY : String := "virtex7"
-- Indicates the target FPGA Family.
);
port (
-- Clock and Reset inputs -----------------------------------------------
--
aclk : in std_logic; --
-- Primary synchronization clock for the Master side --
-- interface and internal logic. It is also used --
-- for the User interface synchronization when --
-- C_STSCMD_IS_ASYNC = 0. --
--
-- Reset input --
reset : in std_logic; --
-- Reset used for the internal syncronization logic --
-------------------------------------------------------------------------
-- Slave Stream Input ------------------------------------------------------------
--
sf2sin_tready : Out Std_logic; --
-- DRE Stream READY input --
--
sin2sf_tvalid : In std_logic; --
-- DRE Stream VALID Output --
--
sin2sf_tdata : In std_logic_vector(C_STREAM_DWIDTH-1 downto 0); --
-- DRE Stream DATA input --
--
sin2sf_tkeep : In std_logic_vector((C_STREAM_DWIDTH/8)-1 downto 0); --
-- DRE Stream STRB input --
--
sin2sf_tlast : In std_logic; --
-- DRE Xfer LAST input --
--
sin2sf_error : In std_logic; --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
-- Starting Address Offset Input -------------------------------------------------
--
sin2sf_strt_addr_offset : In std_logic_vector(C_STRT_OFFSET_WIDTH-1 downto 0); --
-- Used by Packing logic to set the initial data slice position for the --
-- packing operation. Packing is only needed if the MMap and Stream Data --
-- widths do not match. --
-----------------------------------------------------------------------------------
-- DataMover Write Side Address Pipelining Control Interface ----------------------
--
ok_to_post_wr_addr : Out Std_logic; --
-- Indicates that the internal FIFO has enough data --
-- physically present to supply one more max length --
-- burst transfer or a completion burst --
-- (tlast asserted) --
--
wr_addr_posted : In std_logic; --
-- Indication that a write address has been posted to AXI4 --
--
--
wr_xfer_cmplt : In Std_logic; --
-- Indicates that the Datamover has completed a Write Data --
-- transfer on the AXI4 --
--
--
wr_ld_nxt_len : in std_logic; --
-- Active high pulse indicating a new transfer LEN qualifier --
-- has been queued to the DataMover Write Data Controller --
--
wr_len : in std_logic_vector(7 downto 0); --
-- The actual LEN qualifier value that has been queued to the --
-- DataMover Write Data Controller --
-----------------------------------------------------------------------------------
-- Write Side Stream Out to DataMover S2MM ----------------------------------------
--
sout2sf_tready : In std_logic; --
-- Write READY input from the Stream Master --
--
sf2sout_tvalid : Out std_logic; --
-- Write VALID output to the Stream Master --
--
sf2sout_tdata : Out std_logic_vector(C_MMAP_DWIDTH-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tkeep : Out std_logic_vector((C_MMAP_DWIDTH/8)-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tlast : Out std_logic; --
-- Write LAST output to the Stream Master --
--
sf2sout_error : Out std_logic --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
);
end entity axi_datamover_wr_sf;
architecture implementation of axi_datamover_wr_sf is
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of implementation : architecture is "yes";
-- Functions ---------------------------------------------------------------------------
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_pwr2_depth
--
-- Function Description:
-- Rounds up to the next power of 2 depth value in an input
-- range of 1 to 8192
--
-------------------------------------------------------------------
function funct_get_pwr2_depth (min_depth : integer) return integer is
Variable var_temp_depth : Integer := 16;
begin
if (min_depth = 1) then
var_temp_depth := 1;
elsif (min_depth = 2) then
var_temp_depth := 2;
elsif (min_depth <= 4) then
var_temp_depth := 4;
elsif (min_depth <= 8) then
var_temp_depth := 8;
elsif (min_depth <= 16) then
var_temp_depth := 16;
elsif (min_depth <= 32) then
var_temp_depth := 32;
elsif (min_depth <= 64) then
var_temp_depth := 64;
elsif (min_depth <= 128) then
var_temp_depth := 128;
elsif (min_depth <= 256) then
var_temp_depth := 256;
elsif (min_depth <= 512) then
var_temp_depth := 512;
elsif (min_depth <= 1024) then
var_temp_depth := 1024;
elsif (min_depth <= 2048) then
var_temp_depth := 2048;
elsif (min_depth <= 4096) then
var_temp_depth := 4096;
else -- assume 8192 depth
var_temp_depth := 8192;
end if;
Return (var_temp_depth);
end function funct_get_pwr2_depth;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_fifo_cnt_width
--
-- Function Description:
-- simple function to set the width of the data fifo read
-- and write count outputs.
-------------------------------------------------------------------
function funct_get_fifo_cnt_width (fifo_depth : integer)
return integer is
Variable temp_width : integer := 8;
begin
if (fifo_depth = 1) then
temp_width := 1;
elsif (fifo_depth = 2) then
temp_width := 2;
elsif (fifo_depth <= 4) then
temp_width := 3;
elsif (fifo_depth <= 8) then
temp_width := 4;
elsif (fifo_depth <= 16) then
temp_width := 5;
elsif (fifo_depth <= 32) then
temp_width := 6;
elsif (fifo_depth <= 64) then
temp_width := 7;
elsif (fifo_depth <= 128) then
temp_width := 8;
elsif (fifo_depth <= 256) then
temp_width := 9;
elsif (fifo_depth <= 512) then
temp_width := 10;
elsif (fifo_depth <= 1024) then
temp_width := 11;
elsif (fifo_depth <= 2048) then
temp_width := 12;
elsif (fifo_depth <= 4096) then
temp_width := 13;
else -- assume 8192 depth
temp_width := 14;
end if;
Return (temp_width);
end function funct_get_fifo_cnt_width;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_cntr_width
--
-- Function Description:
-- This function calculates the needed counter bit width from the
-- number of count sates needed (input).
--
-------------------------------------------------------------------
function funct_get_cntr_width (num_cnt_values : integer) return integer is
Variable temp_cnt_width : Integer := 0;
begin
if (num_cnt_values <= 2) then
temp_cnt_width := 1;
elsif (num_cnt_values <= 4) then
temp_cnt_width := 2;
elsif (num_cnt_values <= 8) then
temp_cnt_width := 3;
elsif (num_cnt_values <= 16) then
temp_cnt_width := 4;
elsif (num_cnt_values <= 32) then
temp_cnt_width := 5;
elsif (num_cnt_values <= 64) then
temp_cnt_width := 6;
elsif (num_cnt_values <= 128) then
temp_cnt_width := 7;
else
temp_cnt_width := 8;
end if;
Return (temp_cnt_width);
end function funct_get_cntr_width;
-- Constants ---------------------------------------------------------------------------
Constant LOGIC_LOW : std_logic := '0';
Constant LOGIC_HIGH : std_logic := '1';
Constant BLK_MEM_FIFO : integer := 1;
Constant SRL_FIFO : integer := 0;
Constant NOT_NEEDED : integer := 0;
Constant WSTB_WIDTH : integer := C_MMAP_DWIDTH/8; -- bits
Constant TLAST_WIDTH : integer := 1; -- bits
Constant EOP_ERR_WIDTH : integer := 1; -- bits
Constant DATA_FIFO_DEPTH : integer := C_SF_FIFO_DEPTH;
Constant DATA_FIFO_CNT_WIDTH : integer := funct_get_fifo_cnt_width(DATA_FIFO_DEPTH);
-- Constant DF_WRCNT_RIP_LS_INDEX : integer := funct_get_wrcnt_lsrip(C_MAX_BURST_LEN);
Constant DATA_FIFO_WIDTH : integer := C_MMAP_DWIDTH +
--WSTB_WIDTH +
TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant DATA_OUT_MSB_INDEX : integer := C_MMAP_DWIDTH-1;
Constant DATA_OUT_LSB_INDEX : integer := 0;
-- Constant TSTRB_OUT_LSB_INDEX : integer := DATA_OUT_MSB_INDEX+1;
-- Constant TSTRB_OUT_MSB_INDEX : integer := (TSTRB_OUT_LSB_INDEX+WSTB_WIDTH)-1;
-- Constant TLAST_OUT_INDEX : integer := TSTRB_OUT_MSB_INDEX+1;
Constant TLAST_OUT_INDEX : integer := DATA_OUT_MSB_INDEX+1;
Constant EOP_ERR_OUT_INDEX : integer := TLAST_OUT_INDEX+1;
Constant WR_LEN_FIFO_DWIDTH : integer := 8;
Constant WR_LEN_FIFO_DEPTH : integer := funct_get_pwr2_depth(C_WR_ADDR_PIPE_DEPTH + 2);
Constant LEN_CNTR_WIDTH : integer := 8;
Constant LEN_CNT_ZERO : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, LEN_CNTR_WIDTH);
Constant LEN_CNT_ONE : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, LEN_CNTR_WIDTH);
Constant WR_XFER_CNTR_WIDTH : integer := 8;
Constant WR_XFER_CNT_ZERO : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, WR_XFER_CNTR_WIDTH);
Constant WR_XFER_CNT_ONE : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, WR_XFER_CNTR_WIDTH);
Constant UNCOM_WRCNT_1 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, DATA_FIFO_CNT_WIDTH);
Constant UNCOM_WRCNT_0 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, DATA_FIFO_CNT_WIDTH);
-- Signals ---------------------------------------------------------------------------
signal sig_good_sin_strm_dbeat : std_logic := '0';
signal sig_strm_sin_ready : std_logic := '0';
signal sig_sout2sf_tready : std_logic := '0';
signal sig_sf2sout_tvalid : std_logic := '0';
signal sig_sf2sout_tdata : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tkeep : std_logic_vector(WSTB_WIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tlast : std_logic := '0';
signal sig_push_data_fifo : std_logic := '0';
signal sig_pop_data_fifo : std_logic := '0';
signal sig_data_fifo_full : std_logic := '0';
signal sig_data_fifo_data_in : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_data_fifo_dvalid : std_logic := '0';
signal sig_data_fifo_data_out : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_ok_to_post_wr_addr : std_logic := '0';
signal sig_wr_addr_posted : std_logic := '0';
signal sig_wr_xfer_cmplt : std_logic := '0';
signal sig_wr_ld_nxt_len : std_logic := '0';
signal sig_push_len_fifo : std_logic := '0';
signal sig_pop_len_fifo : std_logic := '0';
signal sig_len_fifo_full : std_logic := '0';
signal sig_len_fifo_empty : std_logic := '0';
signal sig_len_fifo_data_in : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_data_out : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_len_out_un : unsigned(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_uncom_wrcnt : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_sub_len_uncom_wrcnt : std_logic := '0';
signal sig_incr_uncom_wrcnt : std_logic := '0';
signal sig_resized_fifo_len : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_num_wr_dbeats_needed : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_enough_dbeats_rcvd : std_logic := '0';
signal sig_sf2sout_eop_err_out : std_logic := '0';
signal sig_good_fifo_write : std_logic := '0';
begin --(architecture implementation)
-- Write Side (S2MM) Control Flags port connections
ok_to_post_wr_addr <= sig_ok_to_post_wr_addr ;
sig_wr_addr_posted <= wr_addr_posted ;
sig_wr_xfer_cmplt <= wr_xfer_cmplt ;
sig_wr_ld_nxt_len <= wr_ld_nxt_len ;
sig_len_fifo_data_in <= wr_len ;
-- Output Stream Port connections
sig_sout2sf_tready <= sout2sf_tready ;
sf2sout_tvalid <= sig_sf2sout_tvalid ;
sf2sout_tdata <= sig_sf2sout_tdata ;
sf2sout_tkeep <= sig_sf2sout_tkeep ;
sf2sout_tlast <= sig_sf2sout_tlast and
sig_sf2sout_tvalid ;
sf2sout_error <= sig_sf2sout_eop_err_out ;
-- Input Stream port connections
sf2sin_tready <= sig_strm_sin_ready;
sig_good_sin_strm_dbeat <= sin2sf_tvalid and
sig_strm_sin_ready;
----------------------------------------------------------------
-- Packing Logic ------------------------------------------
----------------------------------------------------------------
------------------------------------------------------------
-- If Generate
--
-- Label: OMIT_PACKING
--
-- If Generate Description:
-- Omits any packing logic in the Store and Forward module.
-- The Stream and MMap data widths are the same.
--
------------------------------------------------------------
OMIT_PACKING : if (C_MMAP_DWIDTH = C_STREAM_DWIDTH) generate
begin
sig_good_fifo_write <= sig_good_sin_strm_dbeat;
sig_strm_sin_ready <= not(sig_data_fifo_full);
sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- Concatonate the Stream inputs into the single FIFO data in value
sig_data_fifo_data_in <= sin2sf_error &
sin2sf_tlast &
-- sin2sf_tkeep &
sin2sf_tdata;
end generate OMIT_PACKING;
------------------------------------------------------------
-- If Generate
--
-- Label: INCLUDE_PACKING
--
-- If Generate Description:
-- Includes packing logic in the Store and Forward module.
-- The MMap Data bus is wider than the Stream width.
--
------------------------------------------------------------
INCLUDE_PACKING : if (C_MMAP_DWIDTH > C_STREAM_DWIDTH) generate
Constant MMAP2STRM_WIDTH_RATO : integer := C_MMAP_DWIDTH/C_STREAM_DWIDTH;
Constant DATA_SLICE_WIDTH : integer := C_STREAM_DWIDTH;
Constant FLAG_SLICE_WIDTH : integer := TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant OFFSET_CNTR_WIDTH : integer := funct_get_cntr_width(MMAP2STRM_WIDTH_RATO);
Constant OFFSET_CNT_ONE : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, OFFSET_CNTR_WIDTH);
Constant OFFSET_CNT_MAX : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(MMAP2STRM_WIDTH_RATO-1, OFFSET_CNTR_WIDTH);
-- Types -----------------------------------------------------------------------------
type lsig_data_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(DATA_SLICE_WIDTH-1 downto 0);
type lsig_flag_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(FLAG_SLICE_WIDTH-1 downto 0);
-- local signals
signal lsig_data_slice_reg : lsig_data_slice_type;
signal lsig_flag_slice_reg : lsig_flag_slice_type;
signal lsig_reg_segment : std_logic_vector(DATA_SLICE_WIDTH-1 downto 0) := (others => '0');
signal lsig_segment_ld : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_segment_clr : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_0ffset_to_to_use : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_0ffset_cntr : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_ld_offset : std_logic := '0';
signal lsig_incr_offset : std_logic := '0';
signal lsig_offset_cntr_eq_max : std_logic := '0';
signal lsig_combined_data : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal lsig_tlast_or : std_logic := '0';
signal lsig_eop_err_or : std_logic := '0';
signal lsig_partial_tlast_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_partial_eop_err_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_packer_full : std_logic := '0';
signal lsig_packer_empty : std_logic := '0';
signal lsig_set_packer_full : std_logic := '0';
signal lsig_good_push2fifo : std_logic := '0';
signal lsig_first_dbeat : std_logic := '0';
begin
-- Assign the flag indicating that a fifo write is going
-- to occur at the next rising clock edge.
sig_good_fifo_write <= lsig_good_push2fifo;
-- Generate the stream ready
sig_strm_sin_ready <= not(lsig_packer_full) or
lsig_good_push2fifo ;
-- Format the FIFO input data
sig_data_fifo_data_in <= lsig_eop_err_or & -- MS Bit
lsig_tlast_or &
lsig_combined_data ; -- LS Bits
-- Generate a write to the Data FIFO input
sig_push_data_fifo <= lsig_packer_full;
-- Generate a flag indicating a write to the DataFIFO
-- is going to complete
lsig_good_push2fifo <= lsig_packer_full and
not(sig_data_fifo_full);
-- Generate the control that loads the starting address
-- offset for the next input packet
lsig_ld_offset <= lsig_first_dbeat and
sig_good_sin_strm_dbeat;
-- Generate the control for incrementing the offset counter
lsig_incr_offset <= sig_good_sin_strm_dbeat;
-- Generate a flag indicating the packer input register
-- array is full or has loaded the last data beat of
-- the input paket
lsig_set_packer_full <= sig_good_sin_strm_dbeat and
(sin2sf_tlast or
lsig_offset_cntr_eq_max);
-- Check to see if the offset counter has reached its max
-- value
lsig_offset_cntr_eq_max <= '1'
--when (lsig_0ffset_cntr = OFFSET_CNT_MAX)
when (lsig_0ffset_to_to_use = OFFSET_CNT_MAX)
Else '0';
-- Mux between the input start offset and the offset counter
-- output to use for the packer slice load control.
lsig_0ffset_to_to_use <= UNSIGNED(sin2sf_strt_addr_offset)
when (lsig_first_dbeat = '1')
Else lsig_0ffset_cntr;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_LD_MARKER
--
-- Process Description:
-- Implements the flop indicating the first databeat of
-- an input data packet.
--
-------------------------------------------------------------
IMP_OFFSET_LD_MARKER : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_first_dbeat <= '1';
elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '0') then
lsig_first_dbeat <= '0';
Elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '1') Then
lsig_first_dbeat <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_LD_MARKER;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_CNTR
--
-- Process Description:
-- Implements the address offset counter that is used to
-- steer the data loads into the packer register slices.
-- Note that the counter has to be loaded with the starting
-- offset plus one to sync up with the data input.
-------------------------------------------------------------
IMP_OFFSET_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_0ffset_cntr <= (others => '0');
Elsif (lsig_ld_offset = '1') Then
lsig_0ffset_cntr <= UNSIGNED(sin2sf_strt_addr_offset) + OFFSET_CNT_ONE;
elsif (lsig_incr_offset = '1') then
lsig_0ffset_cntr <= lsig_0ffset_cntr + OFFSET_CNT_ONE;
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_PACK_REG_FULL
--
-- Process Description:
-- Implements the Packer Register full/empty flags
--
-------------------------------------------------------------
IMP_PACK_REG_FULL : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
Elsif (lsig_set_packer_full = '1' and
lsig_packer_full = '0') Then
lsig_packer_full <= '1';
lsig_packer_empty <= '0';
elsif (lsig_set_packer_full = '0' and
lsig_good_push2fifo = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_PACK_REG_FULL;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_REG_SLICES
--
-- For Generate Description:
--
-- Implements the Packng Register Slices
--
--
------------------------------------------------------------
DO_REG_SLICES : for slice_index in 0 to MMAP2STRM_WIDTH_RATO-1 generate
begin
-- generate the register load enable for each slice segment based
-- on the address offset count value
lsig_segment_ld(slice_index) <= '1'
when (sig_good_sin_strm_dbeat = '1' and
TO_INTEGER(lsig_0ffset_to_to_use) = slice_index)
Else '0';
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_DATA_SLICE
--
-- Process Description:
-- Implement a data register slice for the packer.
--
-------------------------------------------------------------
IMP_DATA_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_data_slice_reg(slice_index) <= sin2sf_tdata;
-- optional clear of slice reg
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_DATA_SLICE;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_FLAG_SLICE
--
-- Process Description:
-- Implement a flag register slice for the packer.
--
-------------------------------------------------------------
IMP_FLAG_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_flag_slice_reg(slice_index) <= sin2sf_tlast & -- bit 1
sin2sf_error; -- bit 0
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_FLAG_SLICE;
end generate DO_REG_SLICES;
-- Do the OR functions of the Flags -------------------------------------
lsig_tlast_or <= lsig_partial_tlast_or(MMAP2STRM_WIDTH_RATO-1) ;
lsig_eop_err_or <= lsig_partial_eop_err_or(MMAP2STRM_WIDTH_RATO-1);
lsig_partial_tlast_or(0) <= lsig_flag_slice_reg(0)(1);
lsig_partial_eop_err_or(0) <= lsig_flag_slice_reg(0)(0);
------------------------------------------------------------
-- For Generate
--
-- Label: DO_FLAG_OR
--
-- For Generate Description:
-- Implement the OR of the TLAST and EOP Error flags.
--
--
--
------------------------------------------------------------
DO_FLAG_OR : for slice_index in 1 to MMAP2STRM_WIDTH_RATO-1 generate
begin
lsig_partial_tlast_or(slice_index) <= lsig_partial_tlast_or(slice_index-1) or
--lsig_partial_tlast_or(slice_index);
lsig_flag_slice_reg(slice_index)(1);
lsig_partial_eop_err_or(slice_index) <= lsig_partial_eop_err_or(slice_index-1) or
--lsig_partial_eop_err_or(slice_index);
lsig_flag_slice_reg(slice_index)(0);
end generate DO_FLAG_OR;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_DATA_COMBINER
--
-- For Generate Description:
-- Combines the Data Slice register outputs into a single
-- vector for input to the Data FIFO.
--
--
------------------------------------------------------------
DO_DATA_COMBINER : for slice_index in 1 to MMAP2STRM_WIDTH_RATO generate
begin
lsig_combined_data((slice_index*DATA_SLICE_WIDTH)-1 downto
(slice_index-1)*DATA_SLICE_WIDTH) <=
lsig_data_slice_reg(slice_index-1);
end generate DO_DATA_COMBINER;
end generate INCLUDE_PACKING;
----------------------------------------------------------------
-- Data FIFO Logic ------------------------------------------
----------------------------------------------------------------
-- FIFO Input attachments
-- sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- -- Concatonate the Stream inputs into the single FIFO data in value
-- sig_data_fifo_data_in <= sin2sf_error &
-- sin2sf_tlast &
-- sin2sf_tkeep &
-- sin2sf_tdata;
-- FIFO Output to output stream attachments
sig_sf2sout_tvalid <= sig_data_fifo_dvalid ;
sig_sf2sout_tdata <= sig_data_fifo_data_out(DATA_OUT_MSB_INDEX downto
DATA_OUT_LSB_INDEX);
-- sig_sf2sout_tkeep <= sig_data_fifo_data_out(TSTRB_OUT_MSB_INDEX downto
-- TSTRB_OUT_LSB_INDEX);
-- When this Store and Forward is enabled, the Write Data Controller ignores the
-- TKEEP input so this is not sent through the FIFO.
sig_sf2sout_tkeep <= (others => '1');
sig_sf2sout_tlast <= sig_data_fifo_data_out(TLAST_OUT_INDEX) ;
sig_sf2sout_eop_err_out <= sig_data_fifo_data_out(EOP_ERR_OUT_INDEX) ;
-- FIFO Rd/WR Controls
sig_pop_data_fifo <= sig_sout2sf_tready and
sig_data_fifo_dvalid;
------------------------------------------------------------
-- Instance: I_DATA_FIFO
--
-- Description:
-- Implements the Store and Forward data FIFO (synchronous)
--
------------------------------------------------------------
I_DATA_FIFO : entity axi_datamover_v5_1_9.axi_datamover_sfifo_autord
generic map (
C_DWIDTH => DATA_FIFO_WIDTH ,
C_DEPTH => DATA_FIFO_DEPTH ,
C_DATA_CNT_WIDTH => DATA_FIFO_CNT_WIDTH ,
C_NEED_ALMOST_EMPTY => NOT_NEEDED ,
C_NEED_ALMOST_FULL => NOT_NEEDED ,
C_USE_BLKMEM => BLK_MEM_FIFO ,
C_FAMILY => C_FAMILY
)
port map (
-- Inputs
SFIFO_Sinit => reset ,
SFIFO_Clk => aclk ,
SFIFO_Wr_en => sig_push_data_fifo ,
SFIFO_Din => sig_data_fifo_data_in ,
SFIFO_Rd_en => sig_pop_data_fifo ,
SFIFO_Clr_Rd_Data_Valid => LOGIC_LOW ,
-- Outputs
SFIFO_DValid => sig_data_fifo_dvalid ,
SFIFO_Dout => sig_data_fifo_data_out ,
SFIFO_Full => sig_data_fifo_full ,
SFIFO_Empty => open ,
SFIFO_Almost_full => open ,
SFIFO_Almost_empty => open ,
SFIFO_Rd_count => open ,
SFIFO_Rd_count_minus1 => open ,
SFIFO_Wr_count => open ,
SFIFO_Rd_ack => open
);
--------------------------------------------------------------------
-- Write Side Control Logic
--------------------------------------------------------------------
-- Convert the LEN fifo data output to unsigned
sig_len_fifo_len_out_un <= unsigned(sig_len_fifo_data_out);
-- Resize the unsigned LEN output to the Data FIFO writecount width
sig_resized_fifo_len <= RESIZE(sig_len_fifo_len_out_un , DATA_FIFO_CNT_WIDTH);
-- The actual number of databeats needed for the queued write transfer
-- is the current LEN fifo output plus 1.
sig_num_wr_dbeats_needed <= sig_resized_fifo_len + UNCOM_WRCNT_1;
-- Compare the uncommited receved data beat count to that needed
-- for the next queued write request.
sig_enough_dbeats_rcvd <= '1'
When (sig_num_wr_dbeats_needed <= sig_uncom_wrcnt)
else '0';
-- Increment the uncommited databeat counter on a good input
-- stream databeat (Read Side of SF)
-- sig_incr_uncom_wrcnt <= sig_good_sin_strm_dbeat;
sig_incr_uncom_wrcnt <= sig_good_fifo_write;
-- Subtract the current number of databeats needed from the
-- uncommited databeat counter when the associated transfer
-- address/qualifiers have been posted to the AXI Write
-- Address Channel
sig_sub_len_uncom_wrcnt <= sig_wr_addr_posted;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_UNCOM_DBEAT_CNTR
--
-- Process Description:
-- Implements the counter that keeps track of the received read
-- data beat count that has not been commited to a transfer on
-- the write side with a Write Address posting.
--
-------------------------------------------------------------
IMP_UNCOM_DBEAT_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
sig_uncom_wrcnt <= UNCOM_WRCNT_0;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_resized_fifo_len;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '0') then
sig_uncom_wrcnt <= sig_uncom_wrcnt + UNCOM_WRCNT_1;
elsif (sig_incr_uncom_wrcnt = '0' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_num_wr_dbeats_needed;
else
null; -- hold current value
end if;
end if;
end process IMP_UNCOM_DBEAT_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_WR_ADDR_POST_FLAG
--
-- Process Description:
-- Implements the flag indicating that the pending write
-- transfer's data beat count has been received on the input
-- side of the Data FIFO. This means the Write side can post
-- the associated write address to the AXI4 bus and the
-- associated write data transfer can complete without CDMA
-- throttling the Write Data Channel.
--
-- The flag is cleared immediately after an address is posted
-- to prohibit a second unauthorized posting while the control
-- logic stabilizes to the next LEN FIFO value
--.
-------------------------------------------------------------
IMP_WR_ADDR_POST_FLAG : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1' or
sig_wr_addr_posted = '1') then
sig_ok_to_post_wr_addr <= '0';
else
sig_ok_to_post_wr_addr <= not(sig_len_fifo_empty) and
sig_enough_dbeats_rcvd;
end if;
end if;
end process IMP_WR_ADDR_POST_FLAG;
-------------------------------------------------------------
-- LEN FIFO logic
-- The LEN FIFO stores the xfer lengths needed for each queued
-- write transfer in the DataMover S2MM Write Data Controller.
sig_push_len_fifo <= sig_wr_ld_nxt_len and
not(sig_len_fifo_full);
sig_pop_len_fifo <= wr_addr_posted and
not(sig_len_fifo_empty);
------------------------------------------------------------
-- Instance: I_WR_LEN_FIFO
--
-- Description:
-- Implement the LEN FIFO using SRL FIFO elements
--
------------------------------------------------------------
I_WR_LEN_FIFO : entity lib_srl_fifo_v1_0_2.srl_fifo_f
generic map (
C_DWIDTH => WR_LEN_FIFO_DWIDTH ,
C_DEPTH => WR_LEN_FIFO_DEPTH ,
C_FAMILY => C_FAMILY
)
port map (
Clk => aclk ,
Reset => reset ,
FIFO_Write => sig_push_len_fifo ,
Data_In => sig_len_fifo_data_in ,
FIFO_Read => sig_pop_len_fifo ,
Data_Out => sig_len_fifo_data_out ,
FIFO_Empty => sig_len_fifo_empty ,
FIFO_Full => sig_len_fifo_full ,
Addr => open
);
end implementation;
|
-------------------------------------------------------------------------------
-- axi_datamover_wr_sf.vhd
-------------------------------------------------------------------------------
--
-- *************************************************************************
--
-- (c) Copyright 2010-2011 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
--
-- *************************************************************************
--
-------------------------------------------------------------------------------
-- Filename: axi_datamover_wr_sf.vhd
--
-- Description:
-- This file implements the AXI DataMover Write (S2MM) Store and Forward module.
-- The design utilizes the AXI DataMover's new address pipelining
-- control function. This module buffers write data and provides status and
-- control features such that the DataMover Write Master is only allowed
-- to post AXI WRite Requests if the associated write data needed to complete
-- the Write Data transfer is present in the Data FIFO. In addition, the Write
-- side logic is such that Write transfer requests can be pipelined to the
-- AXI4 bus based on the Data FIFO contents but ahead of the actual Write Data
-- transfers.
--
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-------------------------------------------------------------------------------
library IEEE;
use IEEE.std_logic_1164.all;
use IEEE.numeric_std.all;
library lib_pkg_v1_0_2;
library lib_srl_fifo_v1_0_2;
use lib_pkg_v1_0_2.lib_pkg.all;
use lib_pkg_v1_0_2.lib_pkg.clog2;
use lib_srl_fifo_v1_0_2.srl_fifo_f;
library axi_datamover_v5_1_9;
use axi_datamover_v5_1_9.axi_datamover_sfifo_autord;
-------------------------------------------------------------------------------
entity axi_datamover_wr_sf is
generic (
C_WR_ADDR_PIPE_DEPTH : Integer range 1 to 30 := 4;
-- This parameter indicates the depth of the DataMover
-- write address pipelining queues for the Main data transport
-- channels. The effective address pipelining on the AXI4
-- Write Address Channel will be the value assigned plus 2.
C_SF_FIFO_DEPTH : Integer range 128 to 8192 := 512;
-- Sets the desired depth of the internal Data FIFO.
-- C_MAX_BURST_LEN : Integer range 16 to 256 := 16;
-- -- Indicates the max burst length being used by the external
-- -- AXI4 Master for each AXI4 transfer request.
-- C_DRE_IS_USED : Integer range 0 to 1 := 0;
-- -- Indicates if the external Master is utilizing a DRE on
-- -- the stream input to this module.
C_MMAP_DWIDTH : Integer range 32 to 1024 := 64;
-- Sets the AXI4 Memory Mapped Bus Data Width
C_STREAM_DWIDTH : Integer range 8 to 1024 := 16;
-- Sets the Stream Data Width for the Input and Output
-- Data streams.
C_STRT_OFFSET_WIDTH : Integer range 1 to 7 := 2;
-- Sets the bit width of the starting address offset port
-- This should be set to log2(C_MMAP_DWIDTH/C_STREAM_DWIDTH)
C_FAMILY : String := "virtex7"
-- Indicates the target FPGA Family.
);
port (
-- Clock and Reset inputs -----------------------------------------------
--
aclk : in std_logic; --
-- Primary synchronization clock for the Master side --
-- interface and internal logic. It is also used --
-- for the User interface synchronization when --
-- C_STSCMD_IS_ASYNC = 0. --
--
-- Reset input --
reset : in std_logic; --
-- Reset used for the internal syncronization logic --
-------------------------------------------------------------------------
-- Slave Stream Input ------------------------------------------------------------
--
sf2sin_tready : Out Std_logic; --
-- DRE Stream READY input --
--
sin2sf_tvalid : In std_logic; --
-- DRE Stream VALID Output --
--
sin2sf_tdata : In std_logic_vector(C_STREAM_DWIDTH-1 downto 0); --
-- DRE Stream DATA input --
--
sin2sf_tkeep : In std_logic_vector((C_STREAM_DWIDTH/8)-1 downto 0); --
-- DRE Stream STRB input --
--
sin2sf_tlast : In std_logic; --
-- DRE Xfer LAST input --
--
sin2sf_error : In std_logic; --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
-- Starting Address Offset Input -------------------------------------------------
--
sin2sf_strt_addr_offset : In std_logic_vector(C_STRT_OFFSET_WIDTH-1 downto 0); --
-- Used by Packing logic to set the initial data slice position for the --
-- packing operation. Packing is only needed if the MMap and Stream Data --
-- widths do not match. --
-----------------------------------------------------------------------------------
-- DataMover Write Side Address Pipelining Control Interface ----------------------
--
ok_to_post_wr_addr : Out Std_logic; --
-- Indicates that the internal FIFO has enough data --
-- physically present to supply one more max length --
-- burst transfer or a completion burst --
-- (tlast asserted) --
--
wr_addr_posted : In std_logic; --
-- Indication that a write address has been posted to AXI4 --
--
--
wr_xfer_cmplt : In Std_logic; --
-- Indicates that the Datamover has completed a Write Data --
-- transfer on the AXI4 --
--
--
wr_ld_nxt_len : in std_logic; --
-- Active high pulse indicating a new transfer LEN qualifier --
-- has been queued to the DataMover Write Data Controller --
--
wr_len : in std_logic_vector(7 downto 0); --
-- The actual LEN qualifier value that has been queued to the --
-- DataMover Write Data Controller --
-----------------------------------------------------------------------------------
-- Write Side Stream Out to DataMover S2MM ----------------------------------------
--
sout2sf_tready : In std_logic; --
-- Write READY input from the Stream Master --
--
sf2sout_tvalid : Out std_logic; --
-- Write VALID output to the Stream Master --
--
sf2sout_tdata : Out std_logic_vector(C_MMAP_DWIDTH-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tkeep : Out std_logic_vector((C_MMAP_DWIDTH/8)-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tlast : Out std_logic; --
-- Write LAST output to the Stream Master --
--
sf2sout_error : Out std_logic --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
);
end entity axi_datamover_wr_sf;
architecture implementation of axi_datamover_wr_sf is
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of implementation : architecture is "yes";
-- Functions ---------------------------------------------------------------------------
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_pwr2_depth
--
-- Function Description:
-- Rounds up to the next power of 2 depth value in an input
-- range of 1 to 8192
--
-------------------------------------------------------------------
function funct_get_pwr2_depth (min_depth : integer) return integer is
Variable var_temp_depth : Integer := 16;
begin
if (min_depth = 1) then
var_temp_depth := 1;
elsif (min_depth = 2) then
var_temp_depth := 2;
elsif (min_depth <= 4) then
var_temp_depth := 4;
elsif (min_depth <= 8) then
var_temp_depth := 8;
elsif (min_depth <= 16) then
var_temp_depth := 16;
elsif (min_depth <= 32) then
var_temp_depth := 32;
elsif (min_depth <= 64) then
var_temp_depth := 64;
elsif (min_depth <= 128) then
var_temp_depth := 128;
elsif (min_depth <= 256) then
var_temp_depth := 256;
elsif (min_depth <= 512) then
var_temp_depth := 512;
elsif (min_depth <= 1024) then
var_temp_depth := 1024;
elsif (min_depth <= 2048) then
var_temp_depth := 2048;
elsif (min_depth <= 4096) then
var_temp_depth := 4096;
else -- assume 8192 depth
var_temp_depth := 8192;
end if;
Return (var_temp_depth);
end function funct_get_pwr2_depth;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_fifo_cnt_width
--
-- Function Description:
-- simple function to set the width of the data fifo read
-- and write count outputs.
-------------------------------------------------------------------
function funct_get_fifo_cnt_width (fifo_depth : integer)
return integer is
Variable temp_width : integer := 8;
begin
if (fifo_depth = 1) then
temp_width := 1;
elsif (fifo_depth = 2) then
temp_width := 2;
elsif (fifo_depth <= 4) then
temp_width := 3;
elsif (fifo_depth <= 8) then
temp_width := 4;
elsif (fifo_depth <= 16) then
temp_width := 5;
elsif (fifo_depth <= 32) then
temp_width := 6;
elsif (fifo_depth <= 64) then
temp_width := 7;
elsif (fifo_depth <= 128) then
temp_width := 8;
elsif (fifo_depth <= 256) then
temp_width := 9;
elsif (fifo_depth <= 512) then
temp_width := 10;
elsif (fifo_depth <= 1024) then
temp_width := 11;
elsif (fifo_depth <= 2048) then
temp_width := 12;
elsif (fifo_depth <= 4096) then
temp_width := 13;
else -- assume 8192 depth
temp_width := 14;
end if;
Return (temp_width);
end function funct_get_fifo_cnt_width;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_cntr_width
--
-- Function Description:
-- This function calculates the needed counter bit width from the
-- number of count sates needed (input).
--
-------------------------------------------------------------------
function funct_get_cntr_width (num_cnt_values : integer) return integer is
Variable temp_cnt_width : Integer := 0;
begin
if (num_cnt_values <= 2) then
temp_cnt_width := 1;
elsif (num_cnt_values <= 4) then
temp_cnt_width := 2;
elsif (num_cnt_values <= 8) then
temp_cnt_width := 3;
elsif (num_cnt_values <= 16) then
temp_cnt_width := 4;
elsif (num_cnt_values <= 32) then
temp_cnt_width := 5;
elsif (num_cnt_values <= 64) then
temp_cnt_width := 6;
elsif (num_cnt_values <= 128) then
temp_cnt_width := 7;
else
temp_cnt_width := 8;
end if;
Return (temp_cnt_width);
end function funct_get_cntr_width;
-- Constants ---------------------------------------------------------------------------
Constant LOGIC_LOW : std_logic := '0';
Constant LOGIC_HIGH : std_logic := '1';
Constant BLK_MEM_FIFO : integer := 1;
Constant SRL_FIFO : integer := 0;
Constant NOT_NEEDED : integer := 0;
Constant WSTB_WIDTH : integer := C_MMAP_DWIDTH/8; -- bits
Constant TLAST_WIDTH : integer := 1; -- bits
Constant EOP_ERR_WIDTH : integer := 1; -- bits
Constant DATA_FIFO_DEPTH : integer := C_SF_FIFO_DEPTH;
Constant DATA_FIFO_CNT_WIDTH : integer := funct_get_fifo_cnt_width(DATA_FIFO_DEPTH);
-- Constant DF_WRCNT_RIP_LS_INDEX : integer := funct_get_wrcnt_lsrip(C_MAX_BURST_LEN);
Constant DATA_FIFO_WIDTH : integer := C_MMAP_DWIDTH +
--WSTB_WIDTH +
TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant DATA_OUT_MSB_INDEX : integer := C_MMAP_DWIDTH-1;
Constant DATA_OUT_LSB_INDEX : integer := 0;
-- Constant TSTRB_OUT_LSB_INDEX : integer := DATA_OUT_MSB_INDEX+1;
-- Constant TSTRB_OUT_MSB_INDEX : integer := (TSTRB_OUT_LSB_INDEX+WSTB_WIDTH)-1;
-- Constant TLAST_OUT_INDEX : integer := TSTRB_OUT_MSB_INDEX+1;
Constant TLAST_OUT_INDEX : integer := DATA_OUT_MSB_INDEX+1;
Constant EOP_ERR_OUT_INDEX : integer := TLAST_OUT_INDEX+1;
Constant WR_LEN_FIFO_DWIDTH : integer := 8;
Constant WR_LEN_FIFO_DEPTH : integer := funct_get_pwr2_depth(C_WR_ADDR_PIPE_DEPTH + 2);
Constant LEN_CNTR_WIDTH : integer := 8;
Constant LEN_CNT_ZERO : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, LEN_CNTR_WIDTH);
Constant LEN_CNT_ONE : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, LEN_CNTR_WIDTH);
Constant WR_XFER_CNTR_WIDTH : integer := 8;
Constant WR_XFER_CNT_ZERO : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, WR_XFER_CNTR_WIDTH);
Constant WR_XFER_CNT_ONE : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, WR_XFER_CNTR_WIDTH);
Constant UNCOM_WRCNT_1 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, DATA_FIFO_CNT_WIDTH);
Constant UNCOM_WRCNT_0 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, DATA_FIFO_CNT_WIDTH);
-- Signals ---------------------------------------------------------------------------
signal sig_good_sin_strm_dbeat : std_logic := '0';
signal sig_strm_sin_ready : std_logic := '0';
signal sig_sout2sf_tready : std_logic := '0';
signal sig_sf2sout_tvalid : std_logic := '0';
signal sig_sf2sout_tdata : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tkeep : std_logic_vector(WSTB_WIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tlast : std_logic := '0';
signal sig_push_data_fifo : std_logic := '0';
signal sig_pop_data_fifo : std_logic := '0';
signal sig_data_fifo_full : std_logic := '0';
signal sig_data_fifo_data_in : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_data_fifo_dvalid : std_logic := '0';
signal sig_data_fifo_data_out : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_ok_to_post_wr_addr : std_logic := '0';
signal sig_wr_addr_posted : std_logic := '0';
signal sig_wr_xfer_cmplt : std_logic := '0';
signal sig_wr_ld_nxt_len : std_logic := '0';
signal sig_push_len_fifo : std_logic := '0';
signal sig_pop_len_fifo : std_logic := '0';
signal sig_len_fifo_full : std_logic := '0';
signal sig_len_fifo_empty : std_logic := '0';
signal sig_len_fifo_data_in : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_data_out : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_len_out_un : unsigned(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_uncom_wrcnt : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_sub_len_uncom_wrcnt : std_logic := '0';
signal sig_incr_uncom_wrcnt : std_logic := '0';
signal sig_resized_fifo_len : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_num_wr_dbeats_needed : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_enough_dbeats_rcvd : std_logic := '0';
signal sig_sf2sout_eop_err_out : std_logic := '0';
signal sig_good_fifo_write : std_logic := '0';
begin --(architecture implementation)
-- Write Side (S2MM) Control Flags port connections
ok_to_post_wr_addr <= sig_ok_to_post_wr_addr ;
sig_wr_addr_posted <= wr_addr_posted ;
sig_wr_xfer_cmplt <= wr_xfer_cmplt ;
sig_wr_ld_nxt_len <= wr_ld_nxt_len ;
sig_len_fifo_data_in <= wr_len ;
-- Output Stream Port connections
sig_sout2sf_tready <= sout2sf_tready ;
sf2sout_tvalid <= sig_sf2sout_tvalid ;
sf2sout_tdata <= sig_sf2sout_tdata ;
sf2sout_tkeep <= sig_sf2sout_tkeep ;
sf2sout_tlast <= sig_sf2sout_tlast and
sig_sf2sout_tvalid ;
sf2sout_error <= sig_sf2sout_eop_err_out ;
-- Input Stream port connections
sf2sin_tready <= sig_strm_sin_ready;
sig_good_sin_strm_dbeat <= sin2sf_tvalid and
sig_strm_sin_ready;
----------------------------------------------------------------
-- Packing Logic ------------------------------------------
----------------------------------------------------------------
------------------------------------------------------------
-- If Generate
--
-- Label: OMIT_PACKING
--
-- If Generate Description:
-- Omits any packing logic in the Store and Forward module.
-- The Stream and MMap data widths are the same.
--
------------------------------------------------------------
OMIT_PACKING : if (C_MMAP_DWIDTH = C_STREAM_DWIDTH) generate
begin
sig_good_fifo_write <= sig_good_sin_strm_dbeat;
sig_strm_sin_ready <= not(sig_data_fifo_full);
sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- Concatonate the Stream inputs into the single FIFO data in value
sig_data_fifo_data_in <= sin2sf_error &
sin2sf_tlast &
-- sin2sf_tkeep &
sin2sf_tdata;
end generate OMIT_PACKING;
------------------------------------------------------------
-- If Generate
--
-- Label: INCLUDE_PACKING
--
-- If Generate Description:
-- Includes packing logic in the Store and Forward module.
-- The MMap Data bus is wider than the Stream width.
--
------------------------------------------------------------
INCLUDE_PACKING : if (C_MMAP_DWIDTH > C_STREAM_DWIDTH) generate
Constant MMAP2STRM_WIDTH_RATO : integer := C_MMAP_DWIDTH/C_STREAM_DWIDTH;
Constant DATA_SLICE_WIDTH : integer := C_STREAM_DWIDTH;
Constant FLAG_SLICE_WIDTH : integer := TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant OFFSET_CNTR_WIDTH : integer := funct_get_cntr_width(MMAP2STRM_WIDTH_RATO);
Constant OFFSET_CNT_ONE : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, OFFSET_CNTR_WIDTH);
Constant OFFSET_CNT_MAX : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(MMAP2STRM_WIDTH_RATO-1, OFFSET_CNTR_WIDTH);
-- Types -----------------------------------------------------------------------------
type lsig_data_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(DATA_SLICE_WIDTH-1 downto 0);
type lsig_flag_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(FLAG_SLICE_WIDTH-1 downto 0);
-- local signals
signal lsig_data_slice_reg : lsig_data_slice_type;
signal lsig_flag_slice_reg : lsig_flag_slice_type;
signal lsig_reg_segment : std_logic_vector(DATA_SLICE_WIDTH-1 downto 0) := (others => '0');
signal lsig_segment_ld : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_segment_clr : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_0ffset_to_to_use : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_0ffset_cntr : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_ld_offset : std_logic := '0';
signal lsig_incr_offset : std_logic := '0';
signal lsig_offset_cntr_eq_max : std_logic := '0';
signal lsig_combined_data : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal lsig_tlast_or : std_logic := '0';
signal lsig_eop_err_or : std_logic := '0';
signal lsig_partial_tlast_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_partial_eop_err_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_packer_full : std_logic := '0';
signal lsig_packer_empty : std_logic := '0';
signal lsig_set_packer_full : std_logic := '0';
signal lsig_good_push2fifo : std_logic := '0';
signal lsig_first_dbeat : std_logic := '0';
begin
-- Assign the flag indicating that a fifo write is going
-- to occur at the next rising clock edge.
sig_good_fifo_write <= lsig_good_push2fifo;
-- Generate the stream ready
sig_strm_sin_ready <= not(lsig_packer_full) or
lsig_good_push2fifo ;
-- Format the FIFO input data
sig_data_fifo_data_in <= lsig_eop_err_or & -- MS Bit
lsig_tlast_or &
lsig_combined_data ; -- LS Bits
-- Generate a write to the Data FIFO input
sig_push_data_fifo <= lsig_packer_full;
-- Generate a flag indicating a write to the DataFIFO
-- is going to complete
lsig_good_push2fifo <= lsig_packer_full and
not(sig_data_fifo_full);
-- Generate the control that loads the starting address
-- offset for the next input packet
lsig_ld_offset <= lsig_first_dbeat and
sig_good_sin_strm_dbeat;
-- Generate the control for incrementing the offset counter
lsig_incr_offset <= sig_good_sin_strm_dbeat;
-- Generate a flag indicating the packer input register
-- array is full or has loaded the last data beat of
-- the input paket
lsig_set_packer_full <= sig_good_sin_strm_dbeat and
(sin2sf_tlast or
lsig_offset_cntr_eq_max);
-- Check to see if the offset counter has reached its max
-- value
lsig_offset_cntr_eq_max <= '1'
--when (lsig_0ffset_cntr = OFFSET_CNT_MAX)
when (lsig_0ffset_to_to_use = OFFSET_CNT_MAX)
Else '0';
-- Mux between the input start offset and the offset counter
-- output to use for the packer slice load control.
lsig_0ffset_to_to_use <= UNSIGNED(sin2sf_strt_addr_offset)
when (lsig_first_dbeat = '1')
Else lsig_0ffset_cntr;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_LD_MARKER
--
-- Process Description:
-- Implements the flop indicating the first databeat of
-- an input data packet.
--
-------------------------------------------------------------
IMP_OFFSET_LD_MARKER : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_first_dbeat <= '1';
elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '0') then
lsig_first_dbeat <= '0';
Elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '1') Then
lsig_first_dbeat <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_LD_MARKER;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_CNTR
--
-- Process Description:
-- Implements the address offset counter that is used to
-- steer the data loads into the packer register slices.
-- Note that the counter has to be loaded with the starting
-- offset plus one to sync up with the data input.
-------------------------------------------------------------
IMP_OFFSET_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_0ffset_cntr <= (others => '0');
Elsif (lsig_ld_offset = '1') Then
lsig_0ffset_cntr <= UNSIGNED(sin2sf_strt_addr_offset) + OFFSET_CNT_ONE;
elsif (lsig_incr_offset = '1') then
lsig_0ffset_cntr <= lsig_0ffset_cntr + OFFSET_CNT_ONE;
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_PACK_REG_FULL
--
-- Process Description:
-- Implements the Packer Register full/empty flags
--
-------------------------------------------------------------
IMP_PACK_REG_FULL : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
Elsif (lsig_set_packer_full = '1' and
lsig_packer_full = '0') Then
lsig_packer_full <= '1';
lsig_packer_empty <= '0';
elsif (lsig_set_packer_full = '0' and
lsig_good_push2fifo = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_PACK_REG_FULL;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_REG_SLICES
--
-- For Generate Description:
--
-- Implements the Packng Register Slices
--
--
------------------------------------------------------------
DO_REG_SLICES : for slice_index in 0 to MMAP2STRM_WIDTH_RATO-1 generate
begin
-- generate the register load enable for each slice segment based
-- on the address offset count value
lsig_segment_ld(slice_index) <= '1'
when (sig_good_sin_strm_dbeat = '1' and
TO_INTEGER(lsig_0ffset_to_to_use) = slice_index)
Else '0';
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_DATA_SLICE
--
-- Process Description:
-- Implement a data register slice for the packer.
--
-------------------------------------------------------------
IMP_DATA_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_data_slice_reg(slice_index) <= sin2sf_tdata;
-- optional clear of slice reg
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_DATA_SLICE;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_FLAG_SLICE
--
-- Process Description:
-- Implement a flag register slice for the packer.
--
-------------------------------------------------------------
IMP_FLAG_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_flag_slice_reg(slice_index) <= sin2sf_tlast & -- bit 1
sin2sf_error; -- bit 0
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_FLAG_SLICE;
end generate DO_REG_SLICES;
-- Do the OR functions of the Flags -------------------------------------
lsig_tlast_or <= lsig_partial_tlast_or(MMAP2STRM_WIDTH_RATO-1) ;
lsig_eop_err_or <= lsig_partial_eop_err_or(MMAP2STRM_WIDTH_RATO-1);
lsig_partial_tlast_or(0) <= lsig_flag_slice_reg(0)(1);
lsig_partial_eop_err_or(0) <= lsig_flag_slice_reg(0)(0);
------------------------------------------------------------
-- For Generate
--
-- Label: DO_FLAG_OR
--
-- For Generate Description:
-- Implement the OR of the TLAST and EOP Error flags.
--
--
--
------------------------------------------------------------
DO_FLAG_OR : for slice_index in 1 to MMAP2STRM_WIDTH_RATO-1 generate
begin
lsig_partial_tlast_or(slice_index) <= lsig_partial_tlast_or(slice_index-1) or
--lsig_partial_tlast_or(slice_index);
lsig_flag_slice_reg(slice_index)(1);
lsig_partial_eop_err_or(slice_index) <= lsig_partial_eop_err_or(slice_index-1) or
--lsig_partial_eop_err_or(slice_index);
lsig_flag_slice_reg(slice_index)(0);
end generate DO_FLAG_OR;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_DATA_COMBINER
--
-- For Generate Description:
-- Combines the Data Slice register outputs into a single
-- vector for input to the Data FIFO.
--
--
------------------------------------------------------------
DO_DATA_COMBINER : for slice_index in 1 to MMAP2STRM_WIDTH_RATO generate
begin
lsig_combined_data((slice_index*DATA_SLICE_WIDTH)-1 downto
(slice_index-1)*DATA_SLICE_WIDTH) <=
lsig_data_slice_reg(slice_index-1);
end generate DO_DATA_COMBINER;
end generate INCLUDE_PACKING;
----------------------------------------------------------------
-- Data FIFO Logic ------------------------------------------
----------------------------------------------------------------
-- FIFO Input attachments
-- sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- -- Concatonate the Stream inputs into the single FIFO data in value
-- sig_data_fifo_data_in <= sin2sf_error &
-- sin2sf_tlast &
-- sin2sf_tkeep &
-- sin2sf_tdata;
-- FIFO Output to output stream attachments
sig_sf2sout_tvalid <= sig_data_fifo_dvalid ;
sig_sf2sout_tdata <= sig_data_fifo_data_out(DATA_OUT_MSB_INDEX downto
DATA_OUT_LSB_INDEX);
-- sig_sf2sout_tkeep <= sig_data_fifo_data_out(TSTRB_OUT_MSB_INDEX downto
-- TSTRB_OUT_LSB_INDEX);
-- When this Store and Forward is enabled, the Write Data Controller ignores the
-- TKEEP input so this is not sent through the FIFO.
sig_sf2sout_tkeep <= (others => '1');
sig_sf2sout_tlast <= sig_data_fifo_data_out(TLAST_OUT_INDEX) ;
sig_sf2sout_eop_err_out <= sig_data_fifo_data_out(EOP_ERR_OUT_INDEX) ;
-- FIFO Rd/WR Controls
sig_pop_data_fifo <= sig_sout2sf_tready and
sig_data_fifo_dvalid;
------------------------------------------------------------
-- Instance: I_DATA_FIFO
--
-- Description:
-- Implements the Store and Forward data FIFO (synchronous)
--
------------------------------------------------------------
I_DATA_FIFO : entity axi_datamover_v5_1_9.axi_datamover_sfifo_autord
generic map (
C_DWIDTH => DATA_FIFO_WIDTH ,
C_DEPTH => DATA_FIFO_DEPTH ,
C_DATA_CNT_WIDTH => DATA_FIFO_CNT_WIDTH ,
C_NEED_ALMOST_EMPTY => NOT_NEEDED ,
C_NEED_ALMOST_FULL => NOT_NEEDED ,
C_USE_BLKMEM => BLK_MEM_FIFO ,
C_FAMILY => C_FAMILY
)
port map (
-- Inputs
SFIFO_Sinit => reset ,
SFIFO_Clk => aclk ,
SFIFO_Wr_en => sig_push_data_fifo ,
SFIFO_Din => sig_data_fifo_data_in ,
SFIFO_Rd_en => sig_pop_data_fifo ,
SFIFO_Clr_Rd_Data_Valid => LOGIC_LOW ,
-- Outputs
SFIFO_DValid => sig_data_fifo_dvalid ,
SFIFO_Dout => sig_data_fifo_data_out ,
SFIFO_Full => sig_data_fifo_full ,
SFIFO_Empty => open ,
SFIFO_Almost_full => open ,
SFIFO_Almost_empty => open ,
SFIFO_Rd_count => open ,
SFIFO_Rd_count_minus1 => open ,
SFIFO_Wr_count => open ,
SFIFO_Rd_ack => open
);
--------------------------------------------------------------------
-- Write Side Control Logic
--------------------------------------------------------------------
-- Convert the LEN fifo data output to unsigned
sig_len_fifo_len_out_un <= unsigned(sig_len_fifo_data_out);
-- Resize the unsigned LEN output to the Data FIFO writecount width
sig_resized_fifo_len <= RESIZE(sig_len_fifo_len_out_un , DATA_FIFO_CNT_WIDTH);
-- The actual number of databeats needed for the queued write transfer
-- is the current LEN fifo output plus 1.
sig_num_wr_dbeats_needed <= sig_resized_fifo_len + UNCOM_WRCNT_1;
-- Compare the uncommited receved data beat count to that needed
-- for the next queued write request.
sig_enough_dbeats_rcvd <= '1'
When (sig_num_wr_dbeats_needed <= sig_uncom_wrcnt)
else '0';
-- Increment the uncommited databeat counter on a good input
-- stream databeat (Read Side of SF)
-- sig_incr_uncom_wrcnt <= sig_good_sin_strm_dbeat;
sig_incr_uncom_wrcnt <= sig_good_fifo_write;
-- Subtract the current number of databeats needed from the
-- uncommited databeat counter when the associated transfer
-- address/qualifiers have been posted to the AXI Write
-- Address Channel
sig_sub_len_uncom_wrcnt <= sig_wr_addr_posted;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_UNCOM_DBEAT_CNTR
--
-- Process Description:
-- Implements the counter that keeps track of the received read
-- data beat count that has not been commited to a transfer on
-- the write side with a Write Address posting.
--
-------------------------------------------------------------
IMP_UNCOM_DBEAT_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
sig_uncom_wrcnt <= UNCOM_WRCNT_0;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_resized_fifo_len;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '0') then
sig_uncom_wrcnt <= sig_uncom_wrcnt + UNCOM_WRCNT_1;
elsif (sig_incr_uncom_wrcnt = '0' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_num_wr_dbeats_needed;
else
null; -- hold current value
end if;
end if;
end process IMP_UNCOM_DBEAT_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_WR_ADDR_POST_FLAG
--
-- Process Description:
-- Implements the flag indicating that the pending write
-- transfer's data beat count has been received on the input
-- side of the Data FIFO. This means the Write side can post
-- the associated write address to the AXI4 bus and the
-- associated write data transfer can complete without CDMA
-- throttling the Write Data Channel.
--
-- The flag is cleared immediately after an address is posted
-- to prohibit a second unauthorized posting while the control
-- logic stabilizes to the next LEN FIFO value
--.
-------------------------------------------------------------
IMP_WR_ADDR_POST_FLAG : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1' or
sig_wr_addr_posted = '1') then
sig_ok_to_post_wr_addr <= '0';
else
sig_ok_to_post_wr_addr <= not(sig_len_fifo_empty) and
sig_enough_dbeats_rcvd;
end if;
end if;
end process IMP_WR_ADDR_POST_FLAG;
-------------------------------------------------------------
-- LEN FIFO logic
-- The LEN FIFO stores the xfer lengths needed for each queued
-- write transfer in the DataMover S2MM Write Data Controller.
sig_push_len_fifo <= sig_wr_ld_nxt_len and
not(sig_len_fifo_full);
sig_pop_len_fifo <= wr_addr_posted and
not(sig_len_fifo_empty);
------------------------------------------------------------
-- Instance: I_WR_LEN_FIFO
--
-- Description:
-- Implement the LEN FIFO using SRL FIFO elements
--
------------------------------------------------------------
I_WR_LEN_FIFO : entity lib_srl_fifo_v1_0_2.srl_fifo_f
generic map (
C_DWIDTH => WR_LEN_FIFO_DWIDTH ,
C_DEPTH => WR_LEN_FIFO_DEPTH ,
C_FAMILY => C_FAMILY
)
port map (
Clk => aclk ,
Reset => reset ,
FIFO_Write => sig_push_len_fifo ,
Data_In => sig_len_fifo_data_in ,
FIFO_Read => sig_pop_len_fifo ,
Data_Out => sig_len_fifo_data_out ,
FIFO_Empty => sig_len_fifo_empty ,
FIFO_Full => sig_len_fifo_full ,
Addr => open
);
end implementation;
|
-------------------------------------------------------------------------------
-- axi_datamover_wr_sf.vhd
-------------------------------------------------------------------------------
--
-- *************************************************************************
--
-- (c) Copyright 2010-2011 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
--
-- *************************************************************************
--
-------------------------------------------------------------------------------
-- Filename: axi_datamover_wr_sf.vhd
--
-- Description:
-- This file implements the AXI DataMover Write (S2MM) Store and Forward module.
-- The design utilizes the AXI DataMover's new address pipelining
-- control function. This module buffers write data and provides status and
-- control features such that the DataMover Write Master is only allowed
-- to post AXI WRite Requests if the associated write data needed to complete
-- the Write Data transfer is present in the Data FIFO. In addition, the Write
-- side logic is such that Write transfer requests can be pipelined to the
-- AXI4 bus based on the Data FIFO contents but ahead of the actual Write Data
-- transfers.
--
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-------------------------------------------------------------------------------
library IEEE;
use IEEE.std_logic_1164.all;
use IEEE.numeric_std.all;
library lib_pkg_v1_0_2;
library lib_srl_fifo_v1_0_2;
use lib_pkg_v1_0_2.lib_pkg.all;
use lib_pkg_v1_0_2.lib_pkg.clog2;
use lib_srl_fifo_v1_0_2.srl_fifo_f;
library axi_datamover_v5_1_9;
use axi_datamover_v5_1_9.axi_datamover_sfifo_autord;
-------------------------------------------------------------------------------
entity axi_datamover_wr_sf is
generic (
C_WR_ADDR_PIPE_DEPTH : Integer range 1 to 30 := 4;
-- This parameter indicates the depth of the DataMover
-- write address pipelining queues for the Main data transport
-- channels. The effective address pipelining on the AXI4
-- Write Address Channel will be the value assigned plus 2.
C_SF_FIFO_DEPTH : Integer range 128 to 8192 := 512;
-- Sets the desired depth of the internal Data FIFO.
-- C_MAX_BURST_LEN : Integer range 16 to 256 := 16;
-- -- Indicates the max burst length being used by the external
-- -- AXI4 Master for each AXI4 transfer request.
-- C_DRE_IS_USED : Integer range 0 to 1 := 0;
-- -- Indicates if the external Master is utilizing a DRE on
-- -- the stream input to this module.
C_MMAP_DWIDTH : Integer range 32 to 1024 := 64;
-- Sets the AXI4 Memory Mapped Bus Data Width
C_STREAM_DWIDTH : Integer range 8 to 1024 := 16;
-- Sets the Stream Data Width for the Input and Output
-- Data streams.
C_STRT_OFFSET_WIDTH : Integer range 1 to 7 := 2;
-- Sets the bit width of the starting address offset port
-- This should be set to log2(C_MMAP_DWIDTH/C_STREAM_DWIDTH)
C_FAMILY : String := "virtex7"
-- Indicates the target FPGA Family.
);
port (
-- Clock and Reset inputs -----------------------------------------------
--
aclk : in std_logic; --
-- Primary synchronization clock for the Master side --
-- interface and internal logic. It is also used --
-- for the User interface synchronization when --
-- C_STSCMD_IS_ASYNC = 0. --
--
-- Reset input --
reset : in std_logic; --
-- Reset used for the internal syncronization logic --
-------------------------------------------------------------------------
-- Slave Stream Input ------------------------------------------------------------
--
sf2sin_tready : Out Std_logic; --
-- DRE Stream READY input --
--
sin2sf_tvalid : In std_logic; --
-- DRE Stream VALID Output --
--
sin2sf_tdata : In std_logic_vector(C_STREAM_DWIDTH-1 downto 0); --
-- DRE Stream DATA input --
--
sin2sf_tkeep : In std_logic_vector((C_STREAM_DWIDTH/8)-1 downto 0); --
-- DRE Stream STRB input --
--
sin2sf_tlast : In std_logic; --
-- DRE Xfer LAST input --
--
sin2sf_error : In std_logic; --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
-- Starting Address Offset Input -------------------------------------------------
--
sin2sf_strt_addr_offset : In std_logic_vector(C_STRT_OFFSET_WIDTH-1 downto 0); --
-- Used by Packing logic to set the initial data slice position for the --
-- packing operation. Packing is only needed if the MMap and Stream Data --
-- widths do not match. --
-----------------------------------------------------------------------------------
-- DataMover Write Side Address Pipelining Control Interface ----------------------
--
ok_to_post_wr_addr : Out Std_logic; --
-- Indicates that the internal FIFO has enough data --
-- physically present to supply one more max length --
-- burst transfer or a completion burst --
-- (tlast asserted) --
--
wr_addr_posted : In std_logic; --
-- Indication that a write address has been posted to AXI4 --
--
--
wr_xfer_cmplt : In Std_logic; --
-- Indicates that the Datamover has completed a Write Data --
-- transfer on the AXI4 --
--
--
wr_ld_nxt_len : in std_logic; --
-- Active high pulse indicating a new transfer LEN qualifier --
-- has been queued to the DataMover Write Data Controller --
--
wr_len : in std_logic_vector(7 downto 0); --
-- The actual LEN qualifier value that has been queued to the --
-- DataMover Write Data Controller --
-----------------------------------------------------------------------------------
-- Write Side Stream Out to DataMover S2MM ----------------------------------------
--
sout2sf_tready : In std_logic; --
-- Write READY input from the Stream Master --
--
sf2sout_tvalid : Out std_logic; --
-- Write VALID output to the Stream Master --
--
sf2sout_tdata : Out std_logic_vector(C_MMAP_DWIDTH-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tkeep : Out std_logic_vector((C_MMAP_DWIDTH/8)-1 downto 0); --
-- Write DATA output to the Stream Master --
--
sf2sout_tlast : Out std_logic; --
-- Write LAST output to the Stream Master --
--
sf2sout_error : Out std_logic --
-- Stream Underrun/Overrun error input --
-----------------------------------------------------------------------------------
);
end entity axi_datamover_wr_sf;
architecture implementation of axi_datamover_wr_sf is
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of implementation : architecture is "yes";
-- Functions ---------------------------------------------------------------------------
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_pwr2_depth
--
-- Function Description:
-- Rounds up to the next power of 2 depth value in an input
-- range of 1 to 8192
--
-------------------------------------------------------------------
function funct_get_pwr2_depth (min_depth : integer) return integer is
Variable var_temp_depth : Integer := 16;
begin
if (min_depth = 1) then
var_temp_depth := 1;
elsif (min_depth = 2) then
var_temp_depth := 2;
elsif (min_depth <= 4) then
var_temp_depth := 4;
elsif (min_depth <= 8) then
var_temp_depth := 8;
elsif (min_depth <= 16) then
var_temp_depth := 16;
elsif (min_depth <= 32) then
var_temp_depth := 32;
elsif (min_depth <= 64) then
var_temp_depth := 64;
elsif (min_depth <= 128) then
var_temp_depth := 128;
elsif (min_depth <= 256) then
var_temp_depth := 256;
elsif (min_depth <= 512) then
var_temp_depth := 512;
elsif (min_depth <= 1024) then
var_temp_depth := 1024;
elsif (min_depth <= 2048) then
var_temp_depth := 2048;
elsif (min_depth <= 4096) then
var_temp_depth := 4096;
else -- assume 8192 depth
var_temp_depth := 8192;
end if;
Return (var_temp_depth);
end function funct_get_pwr2_depth;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_fifo_cnt_width
--
-- Function Description:
-- simple function to set the width of the data fifo read
-- and write count outputs.
-------------------------------------------------------------------
function funct_get_fifo_cnt_width (fifo_depth : integer)
return integer is
Variable temp_width : integer := 8;
begin
if (fifo_depth = 1) then
temp_width := 1;
elsif (fifo_depth = 2) then
temp_width := 2;
elsif (fifo_depth <= 4) then
temp_width := 3;
elsif (fifo_depth <= 8) then
temp_width := 4;
elsif (fifo_depth <= 16) then
temp_width := 5;
elsif (fifo_depth <= 32) then
temp_width := 6;
elsif (fifo_depth <= 64) then
temp_width := 7;
elsif (fifo_depth <= 128) then
temp_width := 8;
elsif (fifo_depth <= 256) then
temp_width := 9;
elsif (fifo_depth <= 512) then
temp_width := 10;
elsif (fifo_depth <= 1024) then
temp_width := 11;
elsif (fifo_depth <= 2048) then
temp_width := 12;
elsif (fifo_depth <= 4096) then
temp_width := 13;
else -- assume 8192 depth
temp_width := 14;
end if;
Return (temp_width);
end function funct_get_fifo_cnt_width;
-------------------------------------------------------------------
-- Function
--
-- Function Name: funct_get_cntr_width
--
-- Function Description:
-- This function calculates the needed counter bit width from the
-- number of count sates needed (input).
--
-------------------------------------------------------------------
function funct_get_cntr_width (num_cnt_values : integer) return integer is
Variable temp_cnt_width : Integer := 0;
begin
if (num_cnt_values <= 2) then
temp_cnt_width := 1;
elsif (num_cnt_values <= 4) then
temp_cnt_width := 2;
elsif (num_cnt_values <= 8) then
temp_cnt_width := 3;
elsif (num_cnt_values <= 16) then
temp_cnt_width := 4;
elsif (num_cnt_values <= 32) then
temp_cnt_width := 5;
elsif (num_cnt_values <= 64) then
temp_cnt_width := 6;
elsif (num_cnt_values <= 128) then
temp_cnt_width := 7;
else
temp_cnt_width := 8;
end if;
Return (temp_cnt_width);
end function funct_get_cntr_width;
-- Constants ---------------------------------------------------------------------------
Constant LOGIC_LOW : std_logic := '0';
Constant LOGIC_HIGH : std_logic := '1';
Constant BLK_MEM_FIFO : integer := 1;
Constant SRL_FIFO : integer := 0;
Constant NOT_NEEDED : integer := 0;
Constant WSTB_WIDTH : integer := C_MMAP_DWIDTH/8; -- bits
Constant TLAST_WIDTH : integer := 1; -- bits
Constant EOP_ERR_WIDTH : integer := 1; -- bits
Constant DATA_FIFO_DEPTH : integer := C_SF_FIFO_DEPTH;
Constant DATA_FIFO_CNT_WIDTH : integer := funct_get_fifo_cnt_width(DATA_FIFO_DEPTH);
-- Constant DF_WRCNT_RIP_LS_INDEX : integer := funct_get_wrcnt_lsrip(C_MAX_BURST_LEN);
Constant DATA_FIFO_WIDTH : integer := C_MMAP_DWIDTH +
--WSTB_WIDTH +
TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant DATA_OUT_MSB_INDEX : integer := C_MMAP_DWIDTH-1;
Constant DATA_OUT_LSB_INDEX : integer := 0;
-- Constant TSTRB_OUT_LSB_INDEX : integer := DATA_OUT_MSB_INDEX+1;
-- Constant TSTRB_OUT_MSB_INDEX : integer := (TSTRB_OUT_LSB_INDEX+WSTB_WIDTH)-1;
-- Constant TLAST_OUT_INDEX : integer := TSTRB_OUT_MSB_INDEX+1;
Constant TLAST_OUT_INDEX : integer := DATA_OUT_MSB_INDEX+1;
Constant EOP_ERR_OUT_INDEX : integer := TLAST_OUT_INDEX+1;
Constant WR_LEN_FIFO_DWIDTH : integer := 8;
Constant WR_LEN_FIFO_DEPTH : integer := funct_get_pwr2_depth(C_WR_ADDR_PIPE_DEPTH + 2);
Constant LEN_CNTR_WIDTH : integer := 8;
Constant LEN_CNT_ZERO : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, LEN_CNTR_WIDTH);
Constant LEN_CNT_ONE : Unsigned(LEN_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, LEN_CNTR_WIDTH);
Constant WR_XFER_CNTR_WIDTH : integer := 8;
Constant WR_XFER_CNT_ZERO : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, WR_XFER_CNTR_WIDTH);
Constant WR_XFER_CNT_ONE : Unsigned(WR_XFER_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, WR_XFER_CNTR_WIDTH);
Constant UNCOM_WRCNT_1 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, DATA_FIFO_CNT_WIDTH);
Constant UNCOM_WRCNT_0 : Unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) :=
TO_UNSIGNED(0, DATA_FIFO_CNT_WIDTH);
-- Signals ---------------------------------------------------------------------------
signal sig_good_sin_strm_dbeat : std_logic := '0';
signal sig_strm_sin_ready : std_logic := '0';
signal sig_sout2sf_tready : std_logic := '0';
signal sig_sf2sout_tvalid : std_logic := '0';
signal sig_sf2sout_tdata : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tkeep : std_logic_vector(WSTB_WIDTH-1 downto 0) := (others => '0');
signal sig_sf2sout_tlast : std_logic := '0';
signal sig_push_data_fifo : std_logic := '0';
signal sig_pop_data_fifo : std_logic := '0';
signal sig_data_fifo_full : std_logic := '0';
signal sig_data_fifo_data_in : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_data_fifo_dvalid : std_logic := '0';
signal sig_data_fifo_data_out : std_logic_vector(DATA_FIFO_WIDTH-1 downto 0) := (others => '0');
signal sig_ok_to_post_wr_addr : std_logic := '0';
signal sig_wr_addr_posted : std_logic := '0';
signal sig_wr_xfer_cmplt : std_logic := '0';
signal sig_wr_ld_nxt_len : std_logic := '0';
signal sig_push_len_fifo : std_logic := '0';
signal sig_pop_len_fifo : std_logic := '0';
signal sig_len_fifo_full : std_logic := '0';
signal sig_len_fifo_empty : std_logic := '0';
signal sig_len_fifo_data_in : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_data_out : std_logic_vector(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_len_fifo_len_out_un : unsigned(WR_LEN_FIFO_DWIDTH-1 downto 0) := (others => '0');
signal sig_uncom_wrcnt : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_sub_len_uncom_wrcnt : std_logic := '0';
signal sig_incr_uncom_wrcnt : std_logic := '0';
signal sig_resized_fifo_len : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_num_wr_dbeats_needed : unsigned(DATA_FIFO_CNT_WIDTH-1 downto 0) := (others => '0');
signal sig_enough_dbeats_rcvd : std_logic := '0';
signal sig_sf2sout_eop_err_out : std_logic := '0';
signal sig_good_fifo_write : std_logic := '0';
begin --(architecture implementation)
-- Write Side (S2MM) Control Flags port connections
ok_to_post_wr_addr <= sig_ok_to_post_wr_addr ;
sig_wr_addr_posted <= wr_addr_posted ;
sig_wr_xfer_cmplt <= wr_xfer_cmplt ;
sig_wr_ld_nxt_len <= wr_ld_nxt_len ;
sig_len_fifo_data_in <= wr_len ;
-- Output Stream Port connections
sig_sout2sf_tready <= sout2sf_tready ;
sf2sout_tvalid <= sig_sf2sout_tvalid ;
sf2sout_tdata <= sig_sf2sout_tdata ;
sf2sout_tkeep <= sig_sf2sout_tkeep ;
sf2sout_tlast <= sig_sf2sout_tlast and
sig_sf2sout_tvalid ;
sf2sout_error <= sig_sf2sout_eop_err_out ;
-- Input Stream port connections
sf2sin_tready <= sig_strm_sin_ready;
sig_good_sin_strm_dbeat <= sin2sf_tvalid and
sig_strm_sin_ready;
----------------------------------------------------------------
-- Packing Logic ------------------------------------------
----------------------------------------------------------------
------------------------------------------------------------
-- If Generate
--
-- Label: OMIT_PACKING
--
-- If Generate Description:
-- Omits any packing logic in the Store and Forward module.
-- The Stream and MMap data widths are the same.
--
------------------------------------------------------------
OMIT_PACKING : if (C_MMAP_DWIDTH = C_STREAM_DWIDTH) generate
begin
sig_good_fifo_write <= sig_good_sin_strm_dbeat;
sig_strm_sin_ready <= not(sig_data_fifo_full);
sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- Concatonate the Stream inputs into the single FIFO data in value
sig_data_fifo_data_in <= sin2sf_error &
sin2sf_tlast &
-- sin2sf_tkeep &
sin2sf_tdata;
end generate OMIT_PACKING;
------------------------------------------------------------
-- If Generate
--
-- Label: INCLUDE_PACKING
--
-- If Generate Description:
-- Includes packing logic in the Store and Forward module.
-- The MMap Data bus is wider than the Stream width.
--
------------------------------------------------------------
INCLUDE_PACKING : if (C_MMAP_DWIDTH > C_STREAM_DWIDTH) generate
Constant MMAP2STRM_WIDTH_RATO : integer := C_MMAP_DWIDTH/C_STREAM_DWIDTH;
Constant DATA_SLICE_WIDTH : integer := C_STREAM_DWIDTH;
Constant FLAG_SLICE_WIDTH : integer := TLAST_WIDTH +
EOP_ERR_WIDTH;
Constant OFFSET_CNTR_WIDTH : integer := funct_get_cntr_width(MMAP2STRM_WIDTH_RATO);
Constant OFFSET_CNT_ONE : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(1, OFFSET_CNTR_WIDTH);
Constant OFFSET_CNT_MAX : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) :=
TO_UNSIGNED(MMAP2STRM_WIDTH_RATO-1, OFFSET_CNTR_WIDTH);
-- Types -----------------------------------------------------------------------------
type lsig_data_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(DATA_SLICE_WIDTH-1 downto 0);
type lsig_flag_slice_type is array(MMAP2STRM_WIDTH_RATO-1 downto 0) of
std_logic_vector(FLAG_SLICE_WIDTH-1 downto 0);
-- local signals
signal lsig_data_slice_reg : lsig_data_slice_type;
signal lsig_flag_slice_reg : lsig_flag_slice_type;
signal lsig_reg_segment : std_logic_vector(DATA_SLICE_WIDTH-1 downto 0) := (others => '0');
signal lsig_segment_ld : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_segment_clr : std_logic_vector(MMAP2STRM_WIDTH_RATO-1 downto 0) := (others => '0');
signal lsig_0ffset_to_to_use : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_0ffset_cntr : unsigned(OFFSET_CNTR_WIDTH-1 downto 0) := (others => '0');
signal lsig_ld_offset : std_logic := '0';
signal lsig_incr_offset : std_logic := '0';
signal lsig_offset_cntr_eq_max : std_logic := '0';
signal lsig_combined_data : std_logic_vector(C_MMAP_DWIDTH-1 downto 0) := (others => '0');
signal lsig_tlast_or : std_logic := '0';
signal lsig_eop_err_or : std_logic := '0';
signal lsig_partial_tlast_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_partial_eop_err_or : std_logic_vector(MMAP2STRM_WIDTH_RATO downto 0) := (others => '0');
signal lsig_packer_full : std_logic := '0';
signal lsig_packer_empty : std_logic := '0';
signal lsig_set_packer_full : std_logic := '0';
signal lsig_good_push2fifo : std_logic := '0';
signal lsig_first_dbeat : std_logic := '0';
begin
-- Assign the flag indicating that a fifo write is going
-- to occur at the next rising clock edge.
sig_good_fifo_write <= lsig_good_push2fifo;
-- Generate the stream ready
sig_strm_sin_ready <= not(lsig_packer_full) or
lsig_good_push2fifo ;
-- Format the FIFO input data
sig_data_fifo_data_in <= lsig_eop_err_or & -- MS Bit
lsig_tlast_or &
lsig_combined_data ; -- LS Bits
-- Generate a write to the Data FIFO input
sig_push_data_fifo <= lsig_packer_full;
-- Generate a flag indicating a write to the DataFIFO
-- is going to complete
lsig_good_push2fifo <= lsig_packer_full and
not(sig_data_fifo_full);
-- Generate the control that loads the starting address
-- offset for the next input packet
lsig_ld_offset <= lsig_first_dbeat and
sig_good_sin_strm_dbeat;
-- Generate the control for incrementing the offset counter
lsig_incr_offset <= sig_good_sin_strm_dbeat;
-- Generate a flag indicating the packer input register
-- array is full or has loaded the last data beat of
-- the input paket
lsig_set_packer_full <= sig_good_sin_strm_dbeat and
(sin2sf_tlast or
lsig_offset_cntr_eq_max);
-- Check to see if the offset counter has reached its max
-- value
lsig_offset_cntr_eq_max <= '1'
--when (lsig_0ffset_cntr = OFFSET_CNT_MAX)
when (lsig_0ffset_to_to_use = OFFSET_CNT_MAX)
Else '0';
-- Mux between the input start offset and the offset counter
-- output to use for the packer slice load control.
lsig_0ffset_to_to_use <= UNSIGNED(sin2sf_strt_addr_offset)
when (lsig_first_dbeat = '1')
Else lsig_0ffset_cntr;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_LD_MARKER
--
-- Process Description:
-- Implements the flop indicating the first databeat of
-- an input data packet.
--
-------------------------------------------------------------
IMP_OFFSET_LD_MARKER : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_first_dbeat <= '1';
elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '0') then
lsig_first_dbeat <= '0';
Elsif (sig_good_sin_strm_dbeat = '1' and
sin2sf_tlast = '1') Then
lsig_first_dbeat <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_LD_MARKER;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_OFFSET_CNTR
--
-- Process Description:
-- Implements the address offset counter that is used to
-- steer the data loads into the packer register slices.
-- Note that the counter has to be loaded with the starting
-- offset plus one to sync up with the data input.
-------------------------------------------------------------
IMP_OFFSET_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_0ffset_cntr <= (others => '0');
Elsif (lsig_ld_offset = '1') Then
lsig_0ffset_cntr <= UNSIGNED(sin2sf_strt_addr_offset) + OFFSET_CNT_ONE;
elsif (lsig_incr_offset = '1') then
lsig_0ffset_cntr <= lsig_0ffset_cntr + OFFSET_CNT_ONE;
else
null; -- Hold Current State
end if;
end if;
end process IMP_OFFSET_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_PACK_REG_FULL
--
-- Process Description:
-- Implements the Packer Register full/empty flags
--
-------------------------------------------------------------
IMP_PACK_REG_FULL : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
Elsif (lsig_set_packer_full = '1' and
lsig_packer_full = '0') Then
lsig_packer_full <= '1';
lsig_packer_empty <= '0';
elsif (lsig_set_packer_full = '0' and
lsig_good_push2fifo = '1') then
lsig_packer_full <= '0';
lsig_packer_empty <= '1';
else
null; -- Hold Current State
end if;
end if;
end process IMP_PACK_REG_FULL;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_REG_SLICES
--
-- For Generate Description:
--
-- Implements the Packng Register Slices
--
--
------------------------------------------------------------
DO_REG_SLICES : for slice_index in 0 to MMAP2STRM_WIDTH_RATO-1 generate
begin
-- generate the register load enable for each slice segment based
-- on the address offset count value
lsig_segment_ld(slice_index) <= '1'
when (sig_good_sin_strm_dbeat = '1' and
TO_INTEGER(lsig_0ffset_to_to_use) = slice_index)
Else '0';
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_DATA_SLICE
--
-- Process Description:
-- Implement a data register slice for the packer.
--
-------------------------------------------------------------
IMP_DATA_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_data_slice_reg(slice_index) <= sin2sf_tdata;
-- optional clear of slice reg
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_data_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_DATA_SLICE;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_FLAG_SLICE
--
-- Process Description:
-- Implement a flag register slice for the packer.
--
-------------------------------------------------------------
IMP_FLAG_SLICE : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
elsif (lsig_segment_ld(slice_index) = '1') then
lsig_flag_slice_reg(slice_index) <= sin2sf_tlast & -- bit 1
sin2sf_error; -- bit 0
elsif (lsig_segment_ld(slice_index) = '0' and
lsig_good_push2fifo = '1') then
lsig_flag_slice_reg(slice_index) <= (others => '0');
else
null; -- Hold Current State
end if;
end if;
end process IMP_FLAG_SLICE;
end generate DO_REG_SLICES;
-- Do the OR functions of the Flags -------------------------------------
lsig_tlast_or <= lsig_partial_tlast_or(MMAP2STRM_WIDTH_RATO-1) ;
lsig_eop_err_or <= lsig_partial_eop_err_or(MMAP2STRM_WIDTH_RATO-1);
lsig_partial_tlast_or(0) <= lsig_flag_slice_reg(0)(1);
lsig_partial_eop_err_or(0) <= lsig_flag_slice_reg(0)(0);
------------------------------------------------------------
-- For Generate
--
-- Label: DO_FLAG_OR
--
-- For Generate Description:
-- Implement the OR of the TLAST and EOP Error flags.
--
--
--
------------------------------------------------------------
DO_FLAG_OR : for slice_index in 1 to MMAP2STRM_WIDTH_RATO-1 generate
begin
lsig_partial_tlast_or(slice_index) <= lsig_partial_tlast_or(slice_index-1) or
--lsig_partial_tlast_or(slice_index);
lsig_flag_slice_reg(slice_index)(1);
lsig_partial_eop_err_or(slice_index) <= lsig_partial_eop_err_or(slice_index-1) or
--lsig_partial_eop_err_or(slice_index);
lsig_flag_slice_reg(slice_index)(0);
end generate DO_FLAG_OR;
------------------------------------------------------------
-- For Generate
--
-- Label: DO_DATA_COMBINER
--
-- For Generate Description:
-- Combines the Data Slice register outputs into a single
-- vector for input to the Data FIFO.
--
--
------------------------------------------------------------
DO_DATA_COMBINER : for slice_index in 1 to MMAP2STRM_WIDTH_RATO generate
begin
lsig_combined_data((slice_index*DATA_SLICE_WIDTH)-1 downto
(slice_index-1)*DATA_SLICE_WIDTH) <=
lsig_data_slice_reg(slice_index-1);
end generate DO_DATA_COMBINER;
end generate INCLUDE_PACKING;
----------------------------------------------------------------
-- Data FIFO Logic ------------------------------------------
----------------------------------------------------------------
-- FIFO Input attachments
-- sig_push_data_fifo <= sig_good_sin_strm_dbeat;
-- -- Concatonate the Stream inputs into the single FIFO data in value
-- sig_data_fifo_data_in <= sin2sf_error &
-- sin2sf_tlast &
-- sin2sf_tkeep &
-- sin2sf_tdata;
-- FIFO Output to output stream attachments
sig_sf2sout_tvalid <= sig_data_fifo_dvalid ;
sig_sf2sout_tdata <= sig_data_fifo_data_out(DATA_OUT_MSB_INDEX downto
DATA_OUT_LSB_INDEX);
-- sig_sf2sout_tkeep <= sig_data_fifo_data_out(TSTRB_OUT_MSB_INDEX downto
-- TSTRB_OUT_LSB_INDEX);
-- When this Store and Forward is enabled, the Write Data Controller ignores the
-- TKEEP input so this is not sent through the FIFO.
sig_sf2sout_tkeep <= (others => '1');
sig_sf2sout_tlast <= sig_data_fifo_data_out(TLAST_OUT_INDEX) ;
sig_sf2sout_eop_err_out <= sig_data_fifo_data_out(EOP_ERR_OUT_INDEX) ;
-- FIFO Rd/WR Controls
sig_pop_data_fifo <= sig_sout2sf_tready and
sig_data_fifo_dvalid;
------------------------------------------------------------
-- Instance: I_DATA_FIFO
--
-- Description:
-- Implements the Store and Forward data FIFO (synchronous)
--
------------------------------------------------------------
I_DATA_FIFO : entity axi_datamover_v5_1_9.axi_datamover_sfifo_autord
generic map (
C_DWIDTH => DATA_FIFO_WIDTH ,
C_DEPTH => DATA_FIFO_DEPTH ,
C_DATA_CNT_WIDTH => DATA_FIFO_CNT_WIDTH ,
C_NEED_ALMOST_EMPTY => NOT_NEEDED ,
C_NEED_ALMOST_FULL => NOT_NEEDED ,
C_USE_BLKMEM => BLK_MEM_FIFO ,
C_FAMILY => C_FAMILY
)
port map (
-- Inputs
SFIFO_Sinit => reset ,
SFIFO_Clk => aclk ,
SFIFO_Wr_en => sig_push_data_fifo ,
SFIFO_Din => sig_data_fifo_data_in ,
SFIFO_Rd_en => sig_pop_data_fifo ,
SFIFO_Clr_Rd_Data_Valid => LOGIC_LOW ,
-- Outputs
SFIFO_DValid => sig_data_fifo_dvalid ,
SFIFO_Dout => sig_data_fifo_data_out ,
SFIFO_Full => sig_data_fifo_full ,
SFIFO_Empty => open ,
SFIFO_Almost_full => open ,
SFIFO_Almost_empty => open ,
SFIFO_Rd_count => open ,
SFIFO_Rd_count_minus1 => open ,
SFIFO_Wr_count => open ,
SFIFO_Rd_ack => open
);
--------------------------------------------------------------------
-- Write Side Control Logic
--------------------------------------------------------------------
-- Convert the LEN fifo data output to unsigned
sig_len_fifo_len_out_un <= unsigned(sig_len_fifo_data_out);
-- Resize the unsigned LEN output to the Data FIFO writecount width
sig_resized_fifo_len <= RESIZE(sig_len_fifo_len_out_un , DATA_FIFO_CNT_WIDTH);
-- The actual number of databeats needed for the queued write transfer
-- is the current LEN fifo output plus 1.
sig_num_wr_dbeats_needed <= sig_resized_fifo_len + UNCOM_WRCNT_1;
-- Compare the uncommited receved data beat count to that needed
-- for the next queued write request.
sig_enough_dbeats_rcvd <= '1'
When (sig_num_wr_dbeats_needed <= sig_uncom_wrcnt)
else '0';
-- Increment the uncommited databeat counter on a good input
-- stream databeat (Read Side of SF)
-- sig_incr_uncom_wrcnt <= sig_good_sin_strm_dbeat;
sig_incr_uncom_wrcnt <= sig_good_fifo_write;
-- Subtract the current number of databeats needed from the
-- uncommited databeat counter when the associated transfer
-- address/qualifiers have been posted to the AXI Write
-- Address Channel
sig_sub_len_uncom_wrcnt <= sig_wr_addr_posted;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_UNCOM_DBEAT_CNTR
--
-- Process Description:
-- Implements the counter that keeps track of the received read
-- data beat count that has not been commited to a transfer on
-- the write side with a Write Address posting.
--
-------------------------------------------------------------
IMP_UNCOM_DBEAT_CNTR : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1') then
sig_uncom_wrcnt <= UNCOM_WRCNT_0;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_resized_fifo_len;
elsif (sig_incr_uncom_wrcnt = '1' and
sig_sub_len_uncom_wrcnt = '0') then
sig_uncom_wrcnt <= sig_uncom_wrcnt + UNCOM_WRCNT_1;
elsif (sig_incr_uncom_wrcnt = '0' and
sig_sub_len_uncom_wrcnt = '1') then
sig_uncom_wrcnt <= sig_uncom_wrcnt - sig_num_wr_dbeats_needed;
else
null; -- hold current value
end if;
end if;
end process IMP_UNCOM_DBEAT_CNTR;
-------------------------------------------------------------
-- Synchronous Process with Sync Reset
--
-- Label: IMP_WR_ADDR_POST_FLAG
--
-- Process Description:
-- Implements the flag indicating that the pending write
-- transfer's data beat count has been received on the input
-- side of the Data FIFO. This means the Write side can post
-- the associated write address to the AXI4 bus and the
-- associated write data transfer can complete without CDMA
-- throttling the Write Data Channel.
--
-- The flag is cleared immediately after an address is posted
-- to prohibit a second unauthorized posting while the control
-- logic stabilizes to the next LEN FIFO value
--.
-------------------------------------------------------------
IMP_WR_ADDR_POST_FLAG : process (aclk)
begin
if (aclk'event and aclk = '1') then
if (reset = '1' or
sig_wr_addr_posted = '1') then
sig_ok_to_post_wr_addr <= '0';
else
sig_ok_to_post_wr_addr <= not(sig_len_fifo_empty) and
sig_enough_dbeats_rcvd;
end if;
end if;
end process IMP_WR_ADDR_POST_FLAG;
-------------------------------------------------------------
-- LEN FIFO logic
-- The LEN FIFO stores the xfer lengths needed for each queued
-- write transfer in the DataMover S2MM Write Data Controller.
sig_push_len_fifo <= sig_wr_ld_nxt_len and
not(sig_len_fifo_full);
sig_pop_len_fifo <= wr_addr_posted and
not(sig_len_fifo_empty);
------------------------------------------------------------
-- Instance: I_WR_LEN_FIFO
--
-- Description:
-- Implement the LEN FIFO using SRL FIFO elements
--
------------------------------------------------------------
I_WR_LEN_FIFO : entity lib_srl_fifo_v1_0_2.srl_fifo_f
generic map (
C_DWIDTH => WR_LEN_FIFO_DWIDTH ,
C_DEPTH => WR_LEN_FIFO_DEPTH ,
C_FAMILY => C_FAMILY
)
port map (
Clk => aclk ,
Reset => reset ,
FIFO_Write => sig_push_len_fifo ,
Data_In => sig_len_fifo_data_in ,
FIFO_Read => sig_pop_len_fifo ,
Data_Out => sig_len_fifo_data_out ,
FIFO_Empty => sig_len_fifo_empty ,
FIFO_Full => sig_len_fifo_full ,
Addr => open
);
end implementation;
|
-- revision history:
-- 06.07.2015 Alex Schönberger created
library IEEE;
use IEEE.std_logic_1164.ALL;
use IEEE.numeric_std.ALL;
library WORK;
use WORK.cpu_pack.all;
use WORK.memory_pack.memory;
entity tb_cpu is
end entity tb_cpu;
architecture behav_tb_cpu of tb_cpu is
-- -------- SIMULATION CONSTANTS -----
constant CLK_TIME : time := 2500 ps;
constant RST_TIME : time := 15 ns;
constant INIT_RISE : time := 1 ns;
constant SIGNAl_ACTIVE : time := 2 ns;
constant FULL_MIPS_SET : string := "OF";
-- -------- CPU INTERFACE -----------------
signal clk : std_logic := '0';
signal rst : std_logic;
signal instr_addr : std_logic_vector(31 downto 0);
signal data_addr : std_logic_vector(31 downto 0);
signal rd_mask : std_logic_vector(3 downto 0);
signal wr_mask : std_logic_vector(3 downto 0);
signal instr_stall : std_logic;
signal data_stall : std_logic;
signal instr_in : std_logic_vector(31 downto 0);
signal data_to_cpu : std_logic_vector(31 downto 0);
signal data_from_cpu : std_logic_vector(31 downto 0);
-- ------ MEMORY INIT ----------------------
signal init : std_logic := '0';
-- ------ SIMULATION CONTROL ---------------
signal sim_enable : std_logic := '0';
signal sim_finish : std_logic;
signal exec_done : std_logic;
signal ff_exec_done : std_logic := '0';
-- simulation memory
for u2_memory: memory use entity WORK.memory(simulation_memory);
-- full MIPS I instruction set test memory
-- for u2_memory: memory use entity WORK.memory(behav_memory);
-- FPGA memory
-- for u2_memory: memory use entity WORK.memory(fpga_memory);
begin ---------------- BEGIN ------------------ BEGIN -------------------------
--
-- GENERAL CONTROL SIGNAL
--
clk <= not clk after CLK_TIME;
rst <= '1', '0' after RST_TIME;
-- ____ ___ _ _
-- | |__] | |
-- |___ | |__|
u1_cpu: cpu
PORT MAP(
clk => clk, rst => rst,
instr_in => instr_in, data_to_cpu => data_to_cpu,
instr_stall => instr_stall, data_stall => data_stall,
instr_addr => instr_addr, data_addr => data_addr,
rd_mask => rd_mask, wr_mask => wr_mask,
data_from_cpu => data_from_cpu
);
-- _ _ ____ _ _ ____ ____ _ _
-- |\/| |___ |\/| | | |__/ \_/
-- | | |___ | | |__| | \ |
u2_memory: memory
PORT MAP(
clk => clk, rst => rst,
wr_mask => wr_mask, rd_mask => rd_mask,
instr_stall => instr_stall, data_stall => data_stall,
prog_addr => instr_addr, data_addr => data_addr,
prog_out => instr_in, data_in => data_from_cpu,
data_out => data_to_cpu
);
-- --------------------------------------------------------------------------
-- _ _ ____ _ _ _ ___ ____ ____ ____ ____ ____ ____
-- |\/| |__| | |\ | |__] |__/ | | | |___ [__ [__
-- | | | | | | \| | | \ |__| |___ |___ ___] ___]
test_process:
process
begin
init <= '0';
sim_finish <= '0';
-- ------- INITIALISE MEMORY -----------------------
wait for INIT_RISE; init <= '1';
wait for SIGNAL_ACTIVE; init <= '0';
-- -- ------- EXECUTION RUN ---------------------------
wait until ff_exec_done = '1';
-- ------- FINISH SIMULATION ----------------------
sim_finish <= '1';
wait;
end process;
-- --------------------------------------------------------------------------
-- ____ _ _ _ _ _ _ _ ___ ____ ____ ____ ___
-- |___ | | | | |\/| | |__] [__ [__ |___ |
-- | |__| |___ |___ | | | | ___] ___] |___ |
--
-- switch on some debug output for full mips set test
--
full_mips_set_debug: if FULL_MIPS_SET = "ON" generate
component functions is
generic(
CORE : string(2 downto 1);
ADDR_LIMIT : integer
);
port(
addr : in integer
);
end component functions;
signal i_prog_addr : integer := 0;
begin
-- --------------------------------------------------------------------------
-- ____ _ _ _ _ _ _ ____ ___ _ ____ _ _ ____ ____ _ _ ___ ____ ____ _
-- [__ | |\/| | | | |__| | | | | |\ | | | | |\ | | |__/ | | |
-- ___] | | | |__| |___ | | | | |__| | \| |___ |__| | \| | | \ |__| |___
--
-- activate simulation control
--
sim_enable <= '1' after INIT_RISE;
--
-- get simulation control signals
--
exec_done <= sim_enable when i_sim_control.sim_finish /= '0' else '0';
--
-- algorithm execution done signal is synchron to enable flush
--
process(clk)
begin
if rising_edge( clk ) then
if rst = '1' then ff_exec_done <= '0';
else ff_exec_done <= exec_done;
end if;
end if;
end process;
i_prog_addr <= to_integer(unsigned(instr_addr(24 downto 0)));
fnct_unit: functions
GENERIC MAP( CORE => "00", ADDR_LIMIT => 2326528)
PORT MAP( addr => i_prog_addr);
end generate;
end architecture behav_tb_cpu;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1565.vhd,v 1.2 2001-10-26 16:29:42 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s10b00x00p03n01i01565ent IS
END c08s10b00x00p03n01i01565ent;
ARCHITECTURE c08s10b00x00p03n01i01565arch OF c08s10b00x00p03n01i01565ent IS
BEGIN
TESTING: PROCESS
variable k : integer := 0;
BEGIN
for i in 1 to 10 loop
next when i = 3;
k := k + 1;
end loop;
assert NOT( k=9 )
report "***PASSED TEST: c08s10b00x00p03n01i01565"
severity NOTE;
assert ( k=9 )
report "***FAILED TEST: c08s10b00x00p03n01i01565 - A NEXT statement must be inside a loop"
severity ERROR;
wait;
END PROCESS TESTING;
END c08s10b00x00p03n01i01565arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1565.vhd,v 1.2 2001-10-26 16:29:42 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s10b00x00p03n01i01565ent IS
END c08s10b00x00p03n01i01565ent;
ARCHITECTURE c08s10b00x00p03n01i01565arch OF c08s10b00x00p03n01i01565ent IS
BEGIN
TESTING: PROCESS
variable k : integer := 0;
BEGIN
for i in 1 to 10 loop
next when i = 3;
k := k + 1;
end loop;
assert NOT( k=9 )
report "***PASSED TEST: c08s10b00x00p03n01i01565"
severity NOTE;
assert ( k=9 )
report "***FAILED TEST: c08s10b00x00p03n01i01565 - A NEXT statement must be inside a loop"
severity ERROR;
wait;
END PROCESS TESTING;
END c08s10b00x00p03n01i01565arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc1565.vhd,v 1.2 2001-10-26 16:29:42 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c08s10b00x00p03n01i01565ent IS
END c08s10b00x00p03n01i01565ent;
ARCHITECTURE c08s10b00x00p03n01i01565arch OF c08s10b00x00p03n01i01565ent IS
BEGIN
TESTING: PROCESS
variable k : integer := 0;
BEGIN
for i in 1 to 10 loop
next when i = 3;
k := k + 1;
end loop;
assert NOT( k=9 )
report "***PASSED TEST: c08s10b00x00p03n01i01565"
severity NOTE;
assert ( k=9 )
report "***FAILED TEST: c08s10b00x00p03n01i01565 - A NEXT statement must be inside a loop"
severity ERROR;
wait;
END PROCESS TESTING;
END c08s10b00x00p03n01i01565arch;
|
-------------------------------------------------------------------------------
-- reg_interface.vhd - entity/architecture pair
-------------------------------------------------------------------------------
-- ***************************************************************************
-- ** DISCLAIMER OF LIABILITY **
-- ** **
-- ** This file contains proprietary and confidential information of **
-- ** Xilinx, Inc. ("Xilinx"), that is distributed under a license **
-- ** from Xilinx, and may be used, copied and/or disclosed only **
-- ** pursuant to the terms of a valid license agreement with Xilinx. **
-- ** **
-- ** XILINX is PROVIDING THIS DESIGN, CODE, OR INFORMATION **
-- ** ("MATERIALS") "AS is" WITHOUT WARRANTY OF ANY KIND, EITHER **
-- ** EXPRESSED, IMPLIED, OR STATUTORY, INCLUDING WITHOUT **
-- ** LIMITATION, ANY WARRANTY WITH RESPECT to NONINFRINGEMENT, **
-- ** MERCHANTABILITY OR FITNESS FOR ANY PARTICULAR PURPOSE. Xilinx **
-- ** does not warrant that functions included in the Materials will **
-- ** meet the requirements of Licensee, or that the operation of the **
-- ** Materials will be uninterrupted or error-free, or that defects **
-- ** in the Materials will be corrected. Furthermore, Xilinx does **
-- ** not warrant or make any representations regarding use, or the **
-- ** results of the use, of the Materials in terms of correctness, **
-- ** accuracy, reliability or otherwise. **
-- ** **
-- ** Xilinx products are not designed or intended to be fail-safe, **
-- ** or for use in any application requiring fail-safe performance, **
-- ** such as life-support or safety devices or systems, Class III **
-- ** medical devices, nuclear facilities, applications related to **
-- ** the deployment of airbags, or any other applications that could **
-- ** lead to death, personal injury or severe property or **
-- ** environmental damage (individually and collectively, "critical **
-- ** applications"). Customer assumes the sole risk and liability **
-- ** of any use of Xilinx products in critical applications, **
-- ** subject only to applicable laws and regulations governing **
-- ** limitations on product liability. **
-- ** **
-- ** Copyright 2011 Xilinx, Inc. **
-- ** All rights reserved. **
-- ** **
-- ** This disclaimer and copyright notice must be retained as part **
-- ** of this file at all times. **
-- ***************************************************************************
-------------------------------------------------------------------------------
-- Filename: reg_interface.vhd
-- Version: v1.01.b
-- Description:
-- This file contains the interface between the IPIF
-- and the iic controller. All registers are generated
-- here and all interrupts are processed here.
--
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-- Structure:
--
-- axi_iic.vhd
-- -- iic.vhd
-- -- axi_ipif_ssp1.vhd
-- -- axi_lite_ipif.vhd
-- -- interrupt_control.vhd
-- -- soft_reset.vhd
-- -- reg_interface.vhd
-- -- filter.vhd
-- -- debounce.vhd
-- -- iic_control.vhd
-- -- upcnt_n.vhd
-- -- shift8.vhd
-- -- dynamic_master.vhd
-- -- iic_pkg.vhd
--
-------------------------------------------------------------------------------
-- Author: USM
--
-- USM 10/15/09
-- ^^^^^^
-- - Initial release of v1.00.a
-- ~~~~~~
--
-- USM 09/06/10
-- ^^^^^^
-- - Release of v1.01.a
-- ~~~~~~
--
-- NLR 01/07/11
-- ^^^^^^
-- - Release of v1.01.b
-- ~~~~~~
--
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_misc.or_reduce;
use ieee.std_logic_arith.all;
library axi_iic_v2_0;
use axi_iic_v2_0.iic_pkg.all;
library unisim;
use unisim.all;
-------------------------------------------------------------------------------
-- Port Declaration
-------------------------------------------------------------------------------
-- Definition of Generics:
-- C_TX_FIFO_EXIST -- IIC transmit FIFO exist
-- C_TX_FIFO_BITS -- Transmit FIFO bit size
-- C_RC_FIFO_EXIST -- IIC receive FIFO exist
-- C_RC_FIFO_BITS -- Receive FIFO bit size
-- C_TEN_BIT_ADR -- 10 bit slave addressing
-- C_GPO_WIDTH -- Width of General purpose output vector
-- C_S_AXI_DATA_WIDTH -- Slave bus data width
-- C_NUM_IIC_REGS -- Number of IIC Registers
--
-- Definition of Ports:
-- Clk -- System clock
-- Rst -- System reset
-- Bus2IIC_Addr -- Bus to IIC address bus
-- Bus2IIC_Data -- Bus to IIC data bus
-- Bus2IIC_WrCE -- Bus to IIC write chip enable
-- Bus2IIC_RdCE -- Bus to IIC read chip enable
-- IIC2Bus_Data -- IIC to Bus data bus
-- IIC2Bus_IntrEvent -- IIC Interrupt events
-- Gpo -- General purpose outputs
-- Cr -- Control register
-- Msms_rst -- MSMS reset signal
-- Rsta_rst -- Repeated start reset
-- Msms_set -- MSMS set
-- DynMsmsSet -- Dynamic MSMS set signal
-- DynRstaSet -- Dynamic repeated start set signal
-- Cr_txModeSelect_set -- Sets transmit mode select
-- Cr_txModeSelect_clr -- Clears transmit mode select
-- Aas -- Addressed as slave indicator
-- Bb -- Bus busy indicator
-- Srw -- Slave read/write indicator
-- Abgc -- Addressed by general call indicator
-- Dtr -- Data transmit register
-- Rdy_new_xmt -- New data loaded in shift reg indicator
-- Dtre -- Data transmit register empty
-- Drr -- Data receive register
-- Data_i2c -- IIC data for processor
-- New_rcv_dta -- New Receive Data ready
-- Ro_prev -- Receive over run prevent
-- Adr -- IIC slave address
-- Ten_adr -- IIC slave 10 bit address
-- Al -- Arbitration lost indicator
-- Txer -- Received acknowledge indicator
-- Tx_under_prev -- DTR or Tx FIFO empty IRQ indicator
-- Tx_fifo_data -- FIFO data to transmit
-- Tx_data_exists -- next FIFO data exists
-- Tx_fifo_wr -- Decode to enable writes to FIFO
-- Tx_fifo_rd -- Decode to enable read from FIFO
-- Tx_fifo_rst -- Reset Tx FIFO on IP Reset or CR(6)
-- Tx_fifo_Full -- Transmit FIFO full indicator
-- Tx_addr -- Transmit FIFO address
-- Rc_fifo_data -- Read Fifo data for AXI
-- Rc_fifo_wr -- Write IIC data to fifo
-- Rc_fifo_rd -- AXI read from fifo
-- Rc_fifo_Full -- Read Fifo is full prevent rcv overrun
-- Rc_data_Exists -- Next FIFO data exists
-- Rc_addr -- Receive FIFO address
-------------------------------------------------------------------------------
-- Entity section
-------------------------------------------------------------------------------
entity reg_interface is
generic(
C_SCL_INERTIAL_DELAY : integer range 0 to 255 := 5;
C_S_AXI_ACLK_FREQ_HZ : integer := 100000000;
C_IIC_FREQ : integer := 100000;
C_SMBUS_PMBUS_HOST : integer := 0; -- SMBUS/PMBUS support
C_TX_FIFO_EXIST : boolean := TRUE;
C_TX_FIFO_BITS : integer := 4;
C_RC_FIFO_EXIST : boolean := TRUE;
C_RC_FIFO_BITS : integer := 4;
C_TEN_BIT_ADR : integer := 0;
C_GPO_WIDTH : integer := 0;
C_S_AXI_ADDR_WIDTH : integer := 32;
C_S_AXI_DATA_WIDTH : integer := 32;
C_SIZE : integer := 32;
C_NUM_IIC_REGS : integer;
C_DEFAULT_VALUE : std_logic_vector(7 downto 0) := X"FF"
);
port(
-- IPIF Interface Signals
Clk : in std_logic;
Rst : in std_logic;
Bus2IIC_Addr : in std_logic_vector (0 to C_S_AXI_ADDR_WIDTH-1);
Bus2IIC_Data : in std_logic_vector (0 to C_S_AXI_DATA_WIDTH - 1);
Bus2IIC_WrCE : in std_logic_vector (0 to C_NUM_IIC_REGS - 1);
Bus2IIC_RdCE : in std_logic_vector (0 to C_NUM_IIC_REGS - 1);
IIC2Bus_Data : out std_logic_vector (0 to C_S_AXI_DATA_WIDTH - 1);
IIC2Bus_IntrEvent : out std_logic_vector (0 to 7);
-- Internal iic Bus Registers
-- GPO Register Offset 124h
Gpo : out std_logic_vector(32 - C_GPO_WIDTH to
C_S_AXI_DATA_WIDTH - 1);
-- Control Register Offset 100h
Cr : out std_logic_vector(0 to 7);
Msms_rst : in std_logic;
Rsta_rst : in std_logic;
Msms_set : out std_logic;
DynMsmsSet : in std_logic;
DynRstaSet : in std_logic;
Cr_txModeSelect_set : in std_logic;
Cr_txModeSelect_clr : in std_logic;
-- Status Register Offest 04h
Aas : in std_logic;
Bb : in std_logic;
Srw : in std_logic;
Abgc : in std_logic;
-- Data Transmit Register Offset 108h
Dtr : out std_logic_vector(0 to 7);
Rdy_new_xmt : in std_logic;
Dtre : out std_logic;
-- Data Receive Register Offset 10Ch
Drr : out std_logic_vector(0 to 7);
Data_i2c : in std_logic_vector(0 to 7);
New_rcv_dta : in std_logic;
Ro_prev : out std_logic;
-- Address Register Offset 10h
Adr : out std_logic_vector(0 to 7);
-- Ten Bit Address Register Offset 1Ch
Ten_adr : out std_logic_vector(5 to 7) := (others => '0');
Al : in std_logic;
Txer : in std_logic;
Tx_under_prev : in std_logic;
-- Timing Parameters to iic_control
Timing_param_tsusta : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tsusto : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_thdsta : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tsudat : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tbuf : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_thigh : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tlow : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_thddat : out std_logic_vector(C_SIZE-1 downto 0);
-- FIFO input (fifo write) and output (fifo read)
Tx_fifo_data : in std_logic_vector(0 to 7);
Tx_data_exists : in std_logic;
Tx_fifo_wr : out std_logic;
Tx_fifo_rd : out std_logic;
Tx_fifo_rst : out std_logic;
Tx_fifo_Full : in std_logic;
Tx_addr : in std_logic_vector(0 to C_TX_FIFO_BITS - 1);
Rc_fifo_data : in std_logic_vector(0 to 7);
Rc_fifo_wr : out std_logic;
Rc_fifo_rd : out std_logic;
Rc_fifo_Full : in std_logic;
Rc_data_Exists : in std_logic;
Rc_addr : in std_logic_vector(0 to C_RC_FIFO_BITS - 1);
reg_empty : in std_logic
);
end reg_interface;
-------------------------------------------------------------------------------
-- Architecture
-------------------------------------------------------------------------------
architecture RTL of reg_interface is
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of RTL : architecture is "yes";
----------------------------------------------------------------------------
-- Constant Declarations
----------------------------------------------------------------------------
-- Calls the function from the iic_pkg.vhd
--constant C_SIZE : integer := num_ctr_bits(C_S_AXI_ACLK_FREQ_HZ, C_IIC_FREQ);
constant IIC_CNT : integer := (C_S_AXI_ACLK_FREQ_HZ/C_IIC_FREQ - 14);
-- Calls the function from the iic_pkg.vhd
--constant C_SIZE : integer := num_ctr_bits(C_S_AXI_ACLK_FREQ_HZ, C_IIC_FREQ);
-- number of SYSCLK in iic SCL High time
constant HIGH_CNT : std_logic_vector(C_SIZE-1 downto 0)
:= conv_std_logic_vector(IIC_CNT/2 - C_SCL_INERTIAL_DELAY, C_SIZE);
-- number of SYSCLK in iic SCL Low time
constant LOW_CNT : std_logic_vector(C_SIZE-1 downto 0)
:= conv_std_logic_vector(IIC_CNT/2 - C_SCL_INERTIAL_DELAY, C_SIZE);
-- half of HIGH_CNT
constant HIGH_CNT_2 : std_logic_vector(C_SIZE-1 downto 0)
:= conv_std_logic_vector(IIC_CNT/4, C_SIZE);
----------------------------------------------------------------------------
-- Function calc_tsusta
--
-- This function returns Setup time integer value for repeated start for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tsusta (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate setup time for repeated start condition depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.7 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/175438, C_SIZE);
-- Added to have 5.7 us (tr+tsu-sta)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 0.6 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1111111, C_SIZE);
-- Added to have 0.9 us (tr+tsu-sta)
else
-- Fast Mode Plus timing is 0.26 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2631579, C_SIZE);
-- Added to have 0.380 us (tr+tsu-sta)
end if;
end FUNCTION calc_tsusta;
----------------------------------------------------------------------------
-- Function calc_tsusto
--
-- This function returns Setup time integer value for stop condition for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tsusto (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate setup time for stop condition depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.0 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/200000, C_SIZE);
-- Added to have 5 us (tr+tsu-sto)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 0.6 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1111111, C_SIZE);
-- Added to have 0.9 us (tr+tsu-sto)
else
-- Fast-mode Plus timing is 0.26 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2631579, C_SIZE);
-- Added to have 0.380 us (tr+tsu-sto)
end if;
end FUNCTION calc_tsusto;
----------------------------------------------------------------------------
-- Function calc_thdsta
--
-- This function returns Hold time integer value for reapeted start for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_thdsta (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate (repeated) START hold time depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.0 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/232558, C_SIZE);
-- Added to have 4.3 us (tf+thd-sta)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 0.6 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1111111, C_SIZE);
-- Added to have 0.9 us (tf+thd-sta)
else
-- Fast-mode Plus timing is 0.26 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2631579, C_SIZE);
-- Added to have 0.380 us (tf+thd-sta)
end if;
end FUNCTION calc_thdsta;
----------------------------------------------------------------------------
-- Function calc_tsudat
--
-- This function returns Data Setup time integer value for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tsudat (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate data setup time depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 250 ns
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1818181, C_SIZE);
-- Added to have 550 ns (tf+tsu-dat)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 100 ns
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2500000, C_SIZE);
-- Added to have 400 ns (tf+tsu-dat)
else
-- Fast-mode Plus timing is 50 ns
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/5882353, C_SIZE);
-- Added to have 170 ns (tf+tsu-dat)
end if;
end FUNCTION calc_tsudat;
----------------------------------------------------------------------------
-- Function calc_tbuf
--
-- This function returns Bus free time between a STOP and START condition
-- integer value for Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tbuf (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate data setup time depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.7 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/200000, C_SIZE);
-- Added to have 5 us
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 1.3 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/625000, C_SIZE);
-- Added to have 1.6 us
else
-- Fast-mode Plus timing is 0.5 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1612904, C_SIZE);
-- Added to have 0.62 us
end if;
end FUNCTION calc_tbuf;
----------------------------------------------------------------------------
-- Function calc_thddat
--
-- This function returns the data hold time integer value for I2C and
-- SMBus/PMBus protocols.
----------------------------------------------------------------------------
FUNCTION calc_thddat (
constant C_SMBUS_PMBUS_HOST : integer;
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate data hold time depending on SMBus/PMBus compatability
if (C_SMBUS_PMBUS_HOST = 1) then
-- hold time of 300 ns for SMBus/PMBus
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/3333334, C_SIZE);
else
-- hold time of 0 ns for normal I2C
RETURN conv_std_logic_vector(1, C_SIZE);
end if;
end FUNCTION calc_thddat;
-- Set-up time for a repeated start
constant TSUSTA : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tsusta(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Set-up time for a stop
constant TSUSTO : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tsusto(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Hold time (repeated) START condition. After this period, the first clock
-- pulse is generated.
constant THDSTA : std_logic_vector(C_SIZE-1 downto 0)
:= calc_thdsta(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Data setup time.
constant TSUDAT : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tsudat(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Bus free time.
constant TBUF : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tbuf(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Data Hold time
constant THDDAT : std_logic_vector(C_SIZE-1 downto 0)
:= calc_thddat(C_SMBUS_PMBUS_HOST, C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
----------------------------------------------------------------------------
-- Signal and Type Declarations
----------------------------------------------------------------------------
signal cr_i : std_logic_vector(0 to 7); -- intrnl control reg
signal sr_i : std_logic_vector(0 to 7); -- intrnl statuss reg
signal dtr_i : std_logic_vector(0 to 7); -- intrnl dta trnsmt reg
signal drr_i : std_logic_vector(0 to 7); -- intrnl dta receive reg
signal adr_i : std_logic_vector(0 to 7); -- intrnl slave addr reg
signal rc_fifo_pirq_i : std_logic_vector(4 to 7); -- intrnl slave addr reg
signal ten_adr_i : std_logic_vector(5 to 7) := (others => '0');
-- intrnl slave addr reg
signal ro_a : std_logic; -- receive overrun SRFF
signal ro_i : std_logic; -- receive overrun SRFF
signal dtre_i : std_logic; -- data tranmit register empty register
signal new_rcv_dta_d1 : std_logic; -- delay new_rcv_dta to find rising edge
signal msms_d1 : std_logic; -- delay msms cr(5)
signal ro_prev_i : std_logic; -- internal Ro_prev
signal msms_set_i : std_logic; -- SRFF set on falling edge of msms
signal rtx_i : std_logic_vector(0 to 7);
signal rrc_i : std_logic_vector(0 to 7);
signal rtn_i : std_logic_vector(0 to 7);
signal rpq_i : std_logic_vector(0 to 7);
signal gpo_i : std_logic_vector(32 - C_GPO_WIDTH to 31); -- GPO
signal timing_param_tsusta_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tsusto_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_thdsta_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tsudat_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tbuf_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_thigh_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tlow_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_thddat_i : std_logic_vector(C_SIZE-1 downto 0);
signal rback_data : std_logic_vector(0 to 32 * C_NUM_IIC_REGS - 1)
:= (others => '0');
begin
----------------------------------------------------------------------------
-- CONTROL_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the control register is enabled.
----------------------------------------------------------------------------
CONTROL_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
cr_i <= (others => '0');
elsif -- Load Control Register with AXI
-- data if there is a write request
-- and the control register is enabled
Bus2IIC_WrCE(0) = '1' then
cr_i(0 to 7) <= Bus2IIC_Data(24 to 31);
else -- Load Control Register with iic data
cr_i(0) <= cr_i(0);
cr_i(1) <= cr_i(1);
cr_i(2) <= (cr_i(2) or DynRstaSet) and not(Rsta_rst);
cr_i(3) <= cr_i(3);
cr_i(4) <= (cr_i(4) or Cr_txModeSelect_set) and
not(Cr_txModeSelect_clr);
cr_i(5) <= (cr_i(5) or DynMsmsSet) and not (Msms_rst);
cr_i(6) <= cr_i(6);
cr_i(7) <= cr_i(7);
end if;
end if;
end process CONTROL_REGISTER_PROCESS;
Cr <= cr_i;
----------------------------------------------------------------------------
-- Delay msms by one clock to find falling edge
----------------------------------------------------------------------------
MSMS_DELAY_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
msms_d1 <= '0';
else
msms_d1 <= cr_i(5);
end if;
end if;
end process MSMS_DELAY_PROCESS;
----------------------------------------------------------------------------
-- Set when a fall edge of msms has occurred and Ro_prev is active
-- This will prevent a throttle condition when a master receiver and
-- trying to initiate a stop condition.
----------------------------------------------------------------------------
MSMS_EDGE_SET_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
msms_set_i <= '0';
elsif ro_prev_i = '1' and cr_i(5) = '0' and msms_d1 = '1' then
msms_set_i <= '1';
elsif (cr_i(5) = '1' and msms_d1 = '0') or Bb = '0' then
msms_set_i <= '0';
else
msms_set_i <= msms_set_i;
end if;
end if;
end process MSMS_EDGE_SET_PROCESS;
Msms_set <= msms_set_i;
----------------------------------------------------------------------------
-- STATUS_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process resets the status register. The status register is read only
----------------------------------------------------------------------------
STATUS_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
sr_i <= (others => '0');
else -- Load Status Register with iic data
sr_i(0) <= not Tx_data_exists;
sr_i(1) <= not Rc_data_Exists;
sr_i(2) <= Rc_fifo_Full;
sr_i(3) <= Tx_fifo_Full; -- addressed by a general call
sr_i(4) <= Srw; -- slave read/write
sr_i(5) <= Bb; -- bus busy
sr_i(6) <= Aas; -- addressed as slave
sr_i(7) <= Abgc; -- addressed by a general call
end if;
end if;
end process STATUS_REGISTER_PROCESS;
----------------------------------------------------------------------------
-- Transmit FIFO CONTROL signal GENERATION
----------------------------------------------------------------------------
-- This process allows the AXI to write data to the write FIFO and assigns
-- that data to the output port and to the internal signals for reading
----------------------------------------------------------------------------
FIFO_GEN_DTR : if C_TX_FIFO_EXIST generate
-------------------------------------------------------------------------
-- FIFO_WR_CNTL_PROCESS - Tx fifo write process
-------------------------------------------------------------------------
FIFO_WR_CNTL_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Tx_fifo_wr <= '0';
elsif
Bus2IIC_WrCE(2) = '1' then
Tx_fifo_wr <= '1';
else
Tx_fifo_wr <= '0';
end if;
end if;
end process FIFO_WR_CNTL_PROCESS;
-------------------------------------------------------------------------
-- FIFO_DTR_REG_PROCESS
-------------------------------------------------------------------------
FIFO_DTR_REG_PROCESS : process (Tx_fifo_data)
begin -- process
Dtr <= Tx_fifo_data;
dtr_i <= Tx_fifo_data;
end process FIFO_DTR_REG_PROCESS;
-------------------------------------------------------------------------
-- Tx_FIFO_RD_PROCESS
-------------------------------------------------------------------------
-- This process generates the Read from the Transmit FIFO
-------------------------------------------------------------------------
Tx_FIFO_RD_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Tx_fifo_rd <= '0';
elsif Rdy_new_xmt = '1' then
Tx_fifo_rd <= '1';
elsif Rdy_new_xmt = '0' --and Tx_data_exists = '1'
then Tx_fifo_rd <= '0';
end if;
end if;
end process Tx_FIFO_RD_PROCESS;
-------------------------------------------------------------------------
-- DTRE_PROCESS
-------------------------------------------------------------------------
-- This process generates the Data Transmit Register Empty Interrupt
-- Interrupt(2)
-------------------------------------------------------------------------
DTRE_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
dtre_i <= '0';
else
dtre_i <= not (Tx_data_exists);
end if;
end if;
end process DTRE_PROCESS;
-------------------------------------------------------------------------
-- Additional FIFO Interrupt
-------------------------------------------------------------------------
-- FIFO_Int_PROCESS generates interrupts back to the IPIF when Tx FIFO
-- exists
-------------------------------------------------------------------------
FIFO_INT_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
IIC2Bus_IntrEvent(7) <= '0';
else
IIC2Bus_IntrEvent(7) <= not Tx_addr(3); -- Tx FIFO half empty
end if;
end if;
end process FIFO_INT_PROCESS;
-------------------------------------------------------------------------
-- Tx_FIFO_RESET_PROCESS
-------------------------------------------------------------------------
-- This process generates the Data Transmit Register Empty Interrupt
-- Interrupt(2)
-------------------------------------------------------------------------
TX_FIFO_RESET_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Tx_fifo_rst <= '1';
else
Tx_fifo_rst <= cr_i(6);
end if;
end if;
end process TX_FIFO_RESET_PROCESS;
end generate FIFO_GEN_DTR;
Dtre <= dtre_i;
----------------------------------------------------------------------------
-- If a read FIFO exists then generate control signals
----------------------------------------------------------------------------
RD_FIFO_CNTRL : if (C_RC_FIFO_EXIST) generate
-------------------------------------------------------------------------
-- WRITE_TO_READ_FIFO_PROCESS
-------------------------------------------------------------------------
WRITE_TO_READ_FIFO_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Rc_fifo_wr <= '0';
-- Load iic Data When new data x-fer complete and not x-mitting
elsif
New_rcv_dta = '1' and new_rcv_dta_d1 = '0' then
Rc_fifo_wr <= '1';
else
Rc_fifo_wr <= '0';
end if;
end if;
end process WRITE_TO_READ_FIFO_PROCESS;
-------------------------------------------------------------------------
-- Assign the Receive FIFO data to the DRR so AXI can read the data
-------------------------------------------------------------------------
AXI_READ_FROM_READ_FIFO_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Rc_fifo_rd <= '0';
elsif Bus2IIC_RdCE(3) = '1' then
Rc_fifo_rd <= '1';
else
Rc_fifo_rd <= '0';
end if;
end if;
end process AXI_READ_FROM_READ_FIFO_PROCESS;
-------------------------------------------------------------------------
-- Assign the Receive FIFO data to the DRR so AXI can read the data
-------------------------------------------------------------------------
RD_FIFO_DRR_PROCESS : process (Rc_fifo_data)
begin
Drr <= Rc_fifo_data;
drr_i <= Rc_fifo_data;
end process RD_FIFO_DRR_PROCESS;
-------------------------------------------------------------------------
-- Rc_FIFO_PIRQ
-------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the Rc_FIFO_PIRQ register is enabled.
-------------------------------------------------------------------------
Rc_FIFO_PIRQ_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
rc_fifo_pirq_i <= (others => '0');
elsif -- Load Status Register with AXI
-- data if there is a write request
-- and the status register is enabled
Bus2IIC_WrCE(8) = '1' then
rc_fifo_pirq_i(4 to 7) <= Bus2IIC_Data(28 to 31);
else
rc_fifo_pirq_i(4 to 7) <= rc_fifo_pirq_i(4 to 7);
end if;
end if;
end process Rc_FIFO_PIRQ_PROCESS;
-------------------------------------------------------------------------
-- RC_FIFO_FULL_PROCESS
-------------------------------------------------------------------------
-- This process throttles the bus when receiving and the RC_FIFO_PIRQ is
-- equalto the Receive FIFO Occupancy value
-------------------------------------------------------------------------
RC_FIFO_FULL_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
ro_prev_i <= '0';
elsif msms_set_i = '1' then
ro_prev_i <= '0';
elsif (rc_fifo_pirq_i(4) = Rc_addr(3) and
rc_fifo_pirq_i(5) = Rc_addr(2) and
rc_fifo_pirq_i(6) = Rc_addr(1) and
rc_fifo_pirq_i(7) = Rc_addr(0)) and
Rc_data_Exists = '1'
then
ro_prev_i <= '1';
else
ro_prev_i <= '0';
end if;
end if;
end process RC_FIFO_FULL_PROCESS;
Ro_prev <= ro_prev_i;
end generate RD_FIFO_CNTRL;
----------------------------------------------------------------------------
-- RCV_OVRUN_PROCESS
----------------------------------------------------------------------------
-- This process determines when the data receive register has had new data
-- written to it without a read of the old data
----------------------------------------------------------------------------
NEW_RECIEVE_DATA_PROCESS : process (Clk) -- delay new_rcv_dta to find edge
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
new_rcv_dta_d1 <= '0';
else
new_rcv_dta_d1 <= New_rcv_dta;
end if;
end if;
end process NEW_RECIEVE_DATA_PROCESS;
----------------------------------------------------------------------------
-- RCV_OVRUN_PROCESS
----------------------------------------------------------------------------
RCV_OVRUN_PROCESS : process (Clk)
begin
-- SRFF set when new data is received, reset when a read of DRR occurs
-- The second SRFF is set when new data is again received before a
-- read of DRR occurs. This sets the Receive Overrun Status Bit
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
ro_a <= '0';
elsif New_rcv_dta = '1' and new_rcv_dta_d1 = '0' then
ro_a <= '1';
elsif New_rcv_dta = '0' and Bus2IIC_RdCE(3) = '1'
then ro_a <= '0';
else
ro_a <= ro_a;
end if;
end if;
end process RCV_OVRUN_PROCESS;
----------------------------------------------------------------------------
-- ADDRESS_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the address register is enabled.
----------------------------------------------------------------------------
ADDRESS_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
adr_i <= (others => '0');
elsif -- Load Status Register with AXI
-- data if there is a write request
-- and the status register is enabled
-- Bus2IIC_WrReq = '1' and Bus2IIC_WrCE(4) = '1' then
Bus2IIC_WrCE(4) = '1' then
adr_i(0 to 7) <= Bus2IIC_Data(24 to 31);
else
adr_i <= adr_i;
end if;
end if;
end process ADDRESS_REGISTER_PROCESS;
Adr <= adr_i;
--PER_BIT_0_TO_31_GEN : for i in 0 to C_S_AXI_DATA_WIDTH-1 generate
-- BIT_0_TO_31_LOOP : process (rback_data, Bus2IIC_RdCE) is
-- begin
-- if (or_reduce(Bus2IIC_RdCE) = '1') then
-- for m in 0 to C_NUM_IIC_REGS-1 loop
-- if (Bus2IIC_RdCE(m) = '1') then
-- IIC2Bus_Data(i) <= rback_data(m*32 + i);
-- else
-- IIC2Bus_Data(i) <= '0';
-- end if;
-- end loop;
-- else
-- IIC2Bus_Data(i) <= '0';
-- end if;
-- end process BIT_0_TO_31_LOOP;
--end generate PER_BIT_0_TO_31_GEN;
OUTPUT_DATA_GEN_P : process (rback_data, Bus2IIC_RdCE, Bus2IIC_Addr) is
begin
if (or_reduce(Bus2IIC_RdCE) = '1') then
--IIC2Bus_Data <= rback_data((32*TO_INTEGER(unsigned(Bus2IIC_Addr(24 to 29))))
-- to ((32*TO_INTEGER(unsigned(Bus2IIC_Addr(24 to 29))))+31)); -- CR
--case Bus2IIC_Addr(C_S_AXI_ADDR_WIDTH-8 to C_S_AXI_ADDR_WIDTH-1) is
case Bus2IIC_Addr(1 to 8) is
when X"00" => IIC2Bus_Data <= rback_data(0 to 31); -- CR
when X"04" => IIC2Bus_Data <= rback_data(32 to 63); -- SR
when X"08" => IIC2Bus_Data <= rback_data(64 to 95); -- TX_FIFO
when X"0C" => IIC2Bus_Data <= rback_data(96 to 127); -- RX_FIFO
when X"10" => IIC2Bus_Data <= rback_data(128 to 159); -- ADR
when X"14" => IIC2Bus_Data <= rback_data(160 to 191); -- TX_FIFO_OCY
when X"18" => IIC2Bus_Data <= rback_data(192 to 223); -- RX_FIFO_OCY
when X"1C" => IIC2Bus_Data <= rback_data(224 to 255); -- TEN_ADR
when X"20" => IIC2Bus_Data <= rback_data(256 to 287); -- RX_FIFO_PIRQ
when X"24" => IIC2Bus_Data <= rback_data(288 to 319); -- GPO
when X"28" => IIC2Bus_Data <= rback_data(320 to 351); -- TSUSTA
when X"2C" => IIC2Bus_Data <= rback_data(352 to 383); -- TSUSTO
when X"30" => IIC2Bus_Data <= rback_data(384 to 415); -- THDSTA
when X"34" => IIC2Bus_Data <= rback_data(416 to 447); -- TSUDAT
when X"38" => IIC2Bus_Data <= rback_data(448 to 479); -- TBUF
when X"3C" => IIC2Bus_Data <= rback_data(480 to 511); -- THIGH
when X"40" => IIC2Bus_Data <= rback_data(512 to 543); -- TLOW
when X"44" => IIC2Bus_Data <= rback_data(544 to 575); -- THDDAT
when others => IIC2Bus_Data <= (others => '0');
end case;
else
IIC2Bus_Data <= (others => '0');
end if;
end process OUTPUT_DATA_GEN_P;
----------------------------------------------------------------------------
-- READ_REGISTER_PROCESS
----------------------------------------------------------------------------
rback_data(32*1-8 to 32*1-1) <= cr_i(0 to 7);
rback_data(32*2-9 to 32*2-1) <= '0' & sr_i(0 to 7);--reg_empty & sr_i(0 to 7);
rback_data(32*3-8 to 32*3-1) <= dtr_i(0 to 7);
rback_data(32*4-8 to 32*4-1) <= drr_i(0 to 7);
rback_data(32*5-8 to 32*5-2) <= adr_i(0 to 6);
rback_data(32*6-8 to 32*6-1) <= rtx_i(0 to 7);
rback_data(32*7-8 to 32*7-1) <= rrc_i(0 to 7);
rback_data(32*8-8 to 32*8-1) <= rtn_i(0 to 7);
rback_data(32*9-8 to 32*9-1) <= rpq_i(0 to 7);
----------------------------------------------------------------------------
-- GPO_RBACK_GEN generate
----------------------------------------------------------------------------
GPO_RBACK_GEN : if C_GPO_WIDTH /= 0 generate
rback_data(32*10-C_GPO_WIDTH to 32*10-1)
<= gpo_i(32 - C_GPO_WIDTH to C_S_AXI_DATA_WIDTH - 1);
end generate GPO_RBACK_GEN;
rback_data(32*11-C_SIZE to 32*11-1) <= timing_param_tsusta_i(C_SIZE-1 downto 0);
rback_data(32*12-C_SIZE to 32*12-1) <= timing_param_tsusto_i(C_SIZE-1 downto 0);
rback_data(32*13-C_SIZE to 32*13-1) <= timing_param_thdsta_i(C_SIZE-1 downto 0);
rback_data(32*14-C_SIZE to 32*14-1) <= timing_param_tsudat_i(C_SIZE-1 downto 0);
rback_data(32*15-C_SIZE to 32*15-1) <= timing_param_tbuf_i(C_SIZE-1 downto 0);
rback_data(32*16-C_SIZE to 32*16-1) <= timing_param_thigh_i(C_SIZE-1 downto 0);
rback_data(32*17-C_SIZE to 32*17-1) <= timing_param_tlow_i(C_SIZE-1 downto 0);
rback_data(32*18-C_SIZE to 32*18-1) <= timing_param_thddat_i(C_SIZE-1 downto 0);
rtx_i(0 to 3) <= (others => '0');
rtx_i(4) <= Tx_addr(3);
rtx_i(5) <= Tx_addr(2);
rtx_i(6) <= Tx_addr(1);
rtx_i(7) <= Tx_addr(0);
rrc_i(0 to 3) <= (others => '0');
rrc_i(4) <= Rc_addr(3);
rrc_i(5) <= Rc_addr(2);
rrc_i(6) <= Rc_addr(1);
rrc_i(7) <= Rc_addr(0);
rtn_i(0 to 4) <= (others => '0');
rtn_i(5 to 7) <= ten_adr_i(5 to 7);
rpq_i(0 to 3) <= (others => '0');
rpq_i(4 to 7) <= rc_fifo_pirq_i(4 to 7);
----------------------------------------------------------------------------
-- Interrupts
----------------------------------------------------------------------------
-- Int_PROCESS generates interrupts back to the IPIF
----------------------------------------------------------------------------
INT_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
IIC2Bus_IntrEvent(0 to 6) <= (others => '0');
else
IIC2Bus_IntrEvent(0) <= Al; -- arbitration lost interrupt
IIC2Bus_IntrEvent(1) <= Txer; -- transmit error interrupt
IIC2Bus_IntrEvent(2) <= Tx_under_prev; --dtre_i;
-- Data Tx Register Empty interrupt
IIC2Bus_IntrEvent(3) <= ro_prev_i; --New_rcv_dta;
-- Data Rc Register Full interrupt
IIC2Bus_IntrEvent(4) <= not Bb;
IIC2Bus_IntrEvent(5) <= Aas;
IIC2Bus_IntrEvent(6) <= not Aas;
end if;
end if;
end process INT_PROCESS;
----------------------------------------------------------------------------
-- Ten Bit Slave Address Generate
----------------------------------------------------------------------------
-- Int_PROCESS generates interrupts back to the IPIF
----------------------------------------------------------------------------
TEN_ADR_GEN : if (C_TEN_BIT_ADR = 1) generate
-------------------------------------------------------------------------
-- TEN_ADR_REGISTER_PROCESS
-------------------------------------------------------------------------
TEN_ADR_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
ten_adr_i <= (others => '0');
elsif -- Load Status Register with AXI
-- data if there is a write request
-- and the status register is enabled
Bus2IIC_WrCE(7) = '1' then
ten_adr_i(5 to 7) <= Bus2IIC_Data(29 to 31);
else
ten_adr_i <= ten_adr_i;
end if;
end if;
end process TEN_ADR_REGISTER_PROCESS;
Ten_adr <= ten_adr_i;
end generate TEN_ADR_GEN;
----------------------------------------------------------------------------
-- General Purpose Ouput Register Generate
----------------------------------------------------------------------------
-- Generate the GPO if C_GPO_WIDTH is not equal to zero
----------------------------------------------------------------------------
GPO_GEN : if (C_GPO_WIDTH /= 0) generate
-------------------------------------------------------------------------
-- GPO_REGISTER_PROCESS
-------------------------------------------------------------------------
GPO_REGISTER_PROCESS : process (Clk)
begin -- process
if Clk'event and Clk = '1' then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
gpo_i <= C_DEFAULT_VALUE(C_GPO_WIDTH - 1 downto 0);
elsif -- Load Status Register with AXI
-- data if there is a write CE
--Bus2IIC_WrCE(C_NUM_IIC_REGS - 1) = '1' then
Bus2IIC_WrCE(9) = '1' then
gpo_i(32 - C_GPO_WIDTH to 31) <=
Bus2IIC_Data(32 - C_GPO_WIDTH to 31);
else
gpo_i <= gpo_i;
end if;
end if;
end process GPO_REGISTER_PROCESS;
Gpo <= gpo_i;
end generate GPO_GEN;
----------------------------------------------------------------------------
-- TSUSTA_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the tsusta register is enabled.
----------------------------------------------------------------------------
TSUSTA_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
--timing_param_tsusta_i <= (others => '0');
timing_param_tsusta_i <= TSUSTA;
elsif -- Load tsusta Register with AXI
-- data if there is a write request
-- and the tsusta register is enabled
Bus2IIC_WrCE(10) = '1' then
timing_param_tsusta_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tsusta_i(C_SIZE-1 downto 0) <= timing_param_tsusta_i(C_SIZE-1 downto 0);
end if;
end if;
end process TSUSTA_REGISTER_PROCESS;
Timing_param_tsusta <= timing_param_tsusta_i;
----------------------------------------------------------------------------
-- TSUSTO_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the tsusto register is enabled.
----------------------------------------------------------------------------
TSUSTO_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
--timing_param_tsusto_i <= (others => '0');
timing_param_tsusto_i <= TSUSTO;
elsif -- Load tsusto Register with AXI
-- data if there is a write request
-- and the tsusto register is enabled
Bus2IIC_WrCE(11) = '1' then
timing_param_tsusto_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tsusto_i(C_SIZE-1 downto 0) <= timing_param_tsusto_i(C_SIZE-1 downto 0);
end if;
end if;
end process TSUSTO_REGISTER_PROCESS;
Timing_param_tsusto <= timing_param_tsusto_i;
----------------------------------------------------------------------------
-- THDSTA_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thdsta register is enabled.
----------------------------------------------------------------------------
THDSTA_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_thdsta_i <= THDSTA;
elsif -- Load thdsta Register with AXI
-- data if there is a write request
-- and the thdsta register is enabled
Bus2IIC_WrCE(12) = '1' then
timing_param_thdsta_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_thdsta_i(C_SIZE-1 downto 0) <= timing_param_thdsta_i(C_SIZE-1 downto 0);
end if;
end if;
end process THDSTA_REGISTER_PROCESS;
Timing_param_thdsta <= timing_param_thdsta_i;
----------------------------------------------------------------------------
-- TSUDAT_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thdsta register is enabled.
----------------------------------------------------------------------------
TSUDAT_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_tsudat_i <= TSUDAT;
elsif -- Load tsudat Register with AXI
-- data if there is a write request
-- and the tsudat register is enabled
Bus2IIC_WrCE(13) = '1' then
timing_param_tsudat_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tsudat_i(C_SIZE-1 downto 0) <= timing_param_tsudat_i(C_SIZE-1 downto 0);
end if;
end if;
end process TSUDAT_REGISTER_PROCESS;
Timing_param_tsudat <= timing_param_tsudat_i;
----------------------------------------------------------------------------
-- TBUF_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the tbuf register is enabled.
----------------------------------------------------------------------------
TBUF_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_tbuf_i <= TBUF;
elsif -- Load tbuf Register with AXI
-- data if there is a write request
-- and the tbuf register is enabled
Bus2IIC_WrCE(14) = '1' then
timing_param_tbuf_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tbuf_i(C_SIZE-1 downto 0) <= timing_param_tbuf_i(C_SIZE-1 downto 0);
end if;
end if;
end process TBUF_REGISTER_PROCESS;
Timing_param_tbuf <= timing_param_tbuf_i;
----------------------------------------------------------------------------
-- THIGH_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thigh register is enabled.
----------------------------------------------------------------------------
THIGH_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_thigh_i <= HIGH_CNT;
elsif -- Load thigh Register with AXI
-- data if there is a write request
-- and the thigh register is enabled
Bus2IIC_WrCE(15) = '1' then
timing_param_thigh_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_thigh_i(C_SIZE-1 downto 0) <= timing_param_thigh_i(C_SIZE-1 downto 0);
end if;
end if;
end process THIGH_REGISTER_PROCESS;
Timing_param_thigh <= timing_param_thigh_i;
----------------------------------------------------------------------------
-- TLOW_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thigh register is enabled.
----------------------------------------------------------------------------
TLOW_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_tlow_i <= LOW_CNT;
elsif -- Load tlow Register with AXI
-- data if there is a write request
-- and the tlow register is enabled
Bus2IIC_WrCE(16) = '1' then
timing_param_tlow_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tlow_i(C_SIZE-1 downto 0) <= timing_param_tlow_i(C_SIZE-1 downto 0);
end if;
end if;
end process TLOW_REGISTER_PROCESS;
Timing_param_tlow <= timing_param_tlow_i;
----------------------------------------------------------------------------
-- THDDAT_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thddat register is enabled.
----------------------------------------------------------------------------
THDDAT_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_thddat_i <= THDDAT;
elsif -- Load thddat Register with AXI
-- data if there is a write request
-- and the thddat register is enabled
Bus2IIC_WrCE(17) = '1' then
timing_param_thddat_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_thddat_i(C_SIZE-1 downto 0) <= timing_param_thddat_i(C_SIZE-1 downto 0);
end if;
end if;
end process THDDAT_REGISTER_PROCESS;
Timing_param_thddat <= timing_param_thddat_i;
end architecture RTL;
|
-------------------------------------------------------------------------------
-- reg_interface.vhd - entity/architecture pair
-------------------------------------------------------------------------------
-- ***************************************************************************
-- ** DISCLAIMER OF LIABILITY **
-- ** **
-- ** This file contains proprietary and confidential information of **
-- ** Xilinx, Inc. ("Xilinx"), that is distributed under a license **
-- ** from Xilinx, and may be used, copied and/or disclosed only **
-- ** pursuant to the terms of a valid license agreement with Xilinx. **
-- ** **
-- ** XILINX is PROVIDING THIS DESIGN, CODE, OR INFORMATION **
-- ** ("MATERIALS") "AS is" WITHOUT WARRANTY OF ANY KIND, EITHER **
-- ** EXPRESSED, IMPLIED, OR STATUTORY, INCLUDING WITHOUT **
-- ** LIMITATION, ANY WARRANTY WITH RESPECT to NONINFRINGEMENT, **
-- ** MERCHANTABILITY OR FITNESS FOR ANY PARTICULAR PURPOSE. Xilinx **
-- ** does not warrant that functions included in the Materials will **
-- ** meet the requirements of Licensee, or that the operation of the **
-- ** Materials will be uninterrupted or error-free, or that defects **
-- ** in the Materials will be corrected. Furthermore, Xilinx does **
-- ** not warrant or make any representations regarding use, or the **
-- ** results of the use, of the Materials in terms of correctness, **
-- ** accuracy, reliability or otherwise. **
-- ** **
-- ** Xilinx products are not designed or intended to be fail-safe, **
-- ** or for use in any application requiring fail-safe performance, **
-- ** such as life-support or safety devices or systems, Class III **
-- ** medical devices, nuclear facilities, applications related to **
-- ** the deployment of airbags, or any other applications that could **
-- ** lead to death, personal injury or severe property or **
-- ** environmental damage (individually and collectively, "critical **
-- ** applications"). Customer assumes the sole risk and liability **
-- ** of any use of Xilinx products in critical applications, **
-- ** subject only to applicable laws and regulations governing **
-- ** limitations on product liability. **
-- ** **
-- ** Copyright 2011 Xilinx, Inc. **
-- ** All rights reserved. **
-- ** **
-- ** This disclaimer and copyright notice must be retained as part **
-- ** of this file at all times. **
-- ***************************************************************************
-------------------------------------------------------------------------------
-- Filename: reg_interface.vhd
-- Version: v1.01.b
-- Description:
-- This file contains the interface between the IPIF
-- and the iic controller. All registers are generated
-- here and all interrupts are processed here.
--
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-- Structure:
--
-- axi_iic.vhd
-- -- iic.vhd
-- -- axi_ipif_ssp1.vhd
-- -- axi_lite_ipif.vhd
-- -- interrupt_control.vhd
-- -- soft_reset.vhd
-- -- reg_interface.vhd
-- -- filter.vhd
-- -- debounce.vhd
-- -- iic_control.vhd
-- -- upcnt_n.vhd
-- -- shift8.vhd
-- -- dynamic_master.vhd
-- -- iic_pkg.vhd
--
-------------------------------------------------------------------------------
-- Author: USM
--
-- USM 10/15/09
-- ^^^^^^
-- - Initial release of v1.00.a
-- ~~~~~~
--
-- USM 09/06/10
-- ^^^^^^
-- - Release of v1.01.a
-- ~~~~~~
--
-- NLR 01/07/11
-- ^^^^^^
-- - Release of v1.01.b
-- ~~~~~~
--
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_misc.or_reduce;
use ieee.std_logic_arith.all;
library axi_iic_v2_0;
use axi_iic_v2_0.iic_pkg.all;
library unisim;
use unisim.all;
-------------------------------------------------------------------------------
-- Port Declaration
-------------------------------------------------------------------------------
-- Definition of Generics:
-- C_TX_FIFO_EXIST -- IIC transmit FIFO exist
-- C_TX_FIFO_BITS -- Transmit FIFO bit size
-- C_RC_FIFO_EXIST -- IIC receive FIFO exist
-- C_RC_FIFO_BITS -- Receive FIFO bit size
-- C_TEN_BIT_ADR -- 10 bit slave addressing
-- C_GPO_WIDTH -- Width of General purpose output vector
-- C_S_AXI_DATA_WIDTH -- Slave bus data width
-- C_NUM_IIC_REGS -- Number of IIC Registers
--
-- Definition of Ports:
-- Clk -- System clock
-- Rst -- System reset
-- Bus2IIC_Addr -- Bus to IIC address bus
-- Bus2IIC_Data -- Bus to IIC data bus
-- Bus2IIC_WrCE -- Bus to IIC write chip enable
-- Bus2IIC_RdCE -- Bus to IIC read chip enable
-- IIC2Bus_Data -- IIC to Bus data bus
-- IIC2Bus_IntrEvent -- IIC Interrupt events
-- Gpo -- General purpose outputs
-- Cr -- Control register
-- Msms_rst -- MSMS reset signal
-- Rsta_rst -- Repeated start reset
-- Msms_set -- MSMS set
-- DynMsmsSet -- Dynamic MSMS set signal
-- DynRstaSet -- Dynamic repeated start set signal
-- Cr_txModeSelect_set -- Sets transmit mode select
-- Cr_txModeSelect_clr -- Clears transmit mode select
-- Aas -- Addressed as slave indicator
-- Bb -- Bus busy indicator
-- Srw -- Slave read/write indicator
-- Abgc -- Addressed by general call indicator
-- Dtr -- Data transmit register
-- Rdy_new_xmt -- New data loaded in shift reg indicator
-- Dtre -- Data transmit register empty
-- Drr -- Data receive register
-- Data_i2c -- IIC data for processor
-- New_rcv_dta -- New Receive Data ready
-- Ro_prev -- Receive over run prevent
-- Adr -- IIC slave address
-- Ten_adr -- IIC slave 10 bit address
-- Al -- Arbitration lost indicator
-- Txer -- Received acknowledge indicator
-- Tx_under_prev -- DTR or Tx FIFO empty IRQ indicator
-- Tx_fifo_data -- FIFO data to transmit
-- Tx_data_exists -- next FIFO data exists
-- Tx_fifo_wr -- Decode to enable writes to FIFO
-- Tx_fifo_rd -- Decode to enable read from FIFO
-- Tx_fifo_rst -- Reset Tx FIFO on IP Reset or CR(6)
-- Tx_fifo_Full -- Transmit FIFO full indicator
-- Tx_addr -- Transmit FIFO address
-- Rc_fifo_data -- Read Fifo data for AXI
-- Rc_fifo_wr -- Write IIC data to fifo
-- Rc_fifo_rd -- AXI read from fifo
-- Rc_fifo_Full -- Read Fifo is full prevent rcv overrun
-- Rc_data_Exists -- Next FIFO data exists
-- Rc_addr -- Receive FIFO address
-------------------------------------------------------------------------------
-- Entity section
-------------------------------------------------------------------------------
entity reg_interface is
generic(
C_SCL_INERTIAL_DELAY : integer range 0 to 255 := 5;
C_S_AXI_ACLK_FREQ_HZ : integer := 100000000;
C_IIC_FREQ : integer := 100000;
C_SMBUS_PMBUS_HOST : integer := 0; -- SMBUS/PMBUS support
C_TX_FIFO_EXIST : boolean := TRUE;
C_TX_FIFO_BITS : integer := 4;
C_RC_FIFO_EXIST : boolean := TRUE;
C_RC_FIFO_BITS : integer := 4;
C_TEN_BIT_ADR : integer := 0;
C_GPO_WIDTH : integer := 0;
C_S_AXI_ADDR_WIDTH : integer := 32;
C_S_AXI_DATA_WIDTH : integer := 32;
C_SIZE : integer := 32;
C_NUM_IIC_REGS : integer;
C_DEFAULT_VALUE : std_logic_vector(7 downto 0) := X"FF"
);
port(
-- IPIF Interface Signals
Clk : in std_logic;
Rst : in std_logic;
Bus2IIC_Addr : in std_logic_vector (0 to C_S_AXI_ADDR_WIDTH-1);
Bus2IIC_Data : in std_logic_vector (0 to C_S_AXI_DATA_WIDTH - 1);
Bus2IIC_WrCE : in std_logic_vector (0 to C_NUM_IIC_REGS - 1);
Bus2IIC_RdCE : in std_logic_vector (0 to C_NUM_IIC_REGS - 1);
IIC2Bus_Data : out std_logic_vector (0 to C_S_AXI_DATA_WIDTH - 1);
IIC2Bus_IntrEvent : out std_logic_vector (0 to 7);
-- Internal iic Bus Registers
-- GPO Register Offset 124h
Gpo : out std_logic_vector(32 - C_GPO_WIDTH to
C_S_AXI_DATA_WIDTH - 1);
-- Control Register Offset 100h
Cr : out std_logic_vector(0 to 7);
Msms_rst : in std_logic;
Rsta_rst : in std_logic;
Msms_set : out std_logic;
DynMsmsSet : in std_logic;
DynRstaSet : in std_logic;
Cr_txModeSelect_set : in std_logic;
Cr_txModeSelect_clr : in std_logic;
-- Status Register Offest 04h
Aas : in std_logic;
Bb : in std_logic;
Srw : in std_logic;
Abgc : in std_logic;
-- Data Transmit Register Offset 108h
Dtr : out std_logic_vector(0 to 7);
Rdy_new_xmt : in std_logic;
Dtre : out std_logic;
-- Data Receive Register Offset 10Ch
Drr : out std_logic_vector(0 to 7);
Data_i2c : in std_logic_vector(0 to 7);
New_rcv_dta : in std_logic;
Ro_prev : out std_logic;
-- Address Register Offset 10h
Adr : out std_logic_vector(0 to 7);
-- Ten Bit Address Register Offset 1Ch
Ten_adr : out std_logic_vector(5 to 7) := (others => '0');
Al : in std_logic;
Txer : in std_logic;
Tx_under_prev : in std_logic;
-- Timing Parameters to iic_control
Timing_param_tsusta : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tsusto : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_thdsta : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tsudat : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tbuf : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_thigh : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_tlow : out std_logic_vector(C_SIZE-1 downto 0);
Timing_param_thddat : out std_logic_vector(C_SIZE-1 downto 0);
-- FIFO input (fifo write) and output (fifo read)
Tx_fifo_data : in std_logic_vector(0 to 7);
Tx_data_exists : in std_logic;
Tx_fifo_wr : out std_logic;
Tx_fifo_rd : out std_logic;
Tx_fifo_rst : out std_logic;
Tx_fifo_Full : in std_logic;
Tx_addr : in std_logic_vector(0 to C_TX_FIFO_BITS - 1);
Rc_fifo_data : in std_logic_vector(0 to 7);
Rc_fifo_wr : out std_logic;
Rc_fifo_rd : out std_logic;
Rc_fifo_Full : in std_logic;
Rc_data_Exists : in std_logic;
Rc_addr : in std_logic_vector(0 to C_RC_FIFO_BITS - 1);
reg_empty : in std_logic
);
end reg_interface;
-------------------------------------------------------------------------------
-- Architecture
-------------------------------------------------------------------------------
architecture RTL of reg_interface is
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of RTL : architecture is "yes";
----------------------------------------------------------------------------
-- Constant Declarations
----------------------------------------------------------------------------
-- Calls the function from the iic_pkg.vhd
--constant C_SIZE : integer := num_ctr_bits(C_S_AXI_ACLK_FREQ_HZ, C_IIC_FREQ);
constant IIC_CNT : integer := (C_S_AXI_ACLK_FREQ_HZ/C_IIC_FREQ - 14);
-- Calls the function from the iic_pkg.vhd
--constant C_SIZE : integer := num_ctr_bits(C_S_AXI_ACLK_FREQ_HZ, C_IIC_FREQ);
-- number of SYSCLK in iic SCL High time
constant HIGH_CNT : std_logic_vector(C_SIZE-1 downto 0)
:= conv_std_logic_vector(IIC_CNT/2 - C_SCL_INERTIAL_DELAY, C_SIZE);
-- number of SYSCLK in iic SCL Low time
constant LOW_CNT : std_logic_vector(C_SIZE-1 downto 0)
:= conv_std_logic_vector(IIC_CNT/2 - C_SCL_INERTIAL_DELAY, C_SIZE);
-- half of HIGH_CNT
constant HIGH_CNT_2 : std_logic_vector(C_SIZE-1 downto 0)
:= conv_std_logic_vector(IIC_CNT/4, C_SIZE);
----------------------------------------------------------------------------
-- Function calc_tsusta
--
-- This function returns Setup time integer value for repeated start for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tsusta (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate setup time for repeated start condition depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.7 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/175438, C_SIZE);
-- Added to have 5.7 us (tr+tsu-sta)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 0.6 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1111111, C_SIZE);
-- Added to have 0.9 us (tr+tsu-sta)
else
-- Fast Mode Plus timing is 0.26 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2631579, C_SIZE);
-- Added to have 0.380 us (tr+tsu-sta)
end if;
end FUNCTION calc_tsusta;
----------------------------------------------------------------------------
-- Function calc_tsusto
--
-- This function returns Setup time integer value for stop condition for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tsusto (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate setup time for stop condition depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.0 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/200000, C_SIZE);
-- Added to have 5 us (tr+tsu-sto)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 0.6 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1111111, C_SIZE);
-- Added to have 0.9 us (tr+tsu-sto)
else
-- Fast-mode Plus timing is 0.26 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2631579, C_SIZE);
-- Added to have 0.380 us (tr+tsu-sto)
end if;
end FUNCTION calc_tsusto;
----------------------------------------------------------------------------
-- Function calc_thdsta
--
-- This function returns Hold time integer value for reapeted start for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_thdsta (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate (repeated) START hold time depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.0 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/232558, C_SIZE);
-- Added to have 4.3 us (tf+thd-sta)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 0.6 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1111111, C_SIZE);
-- Added to have 0.9 us (tf+thd-sta)
else
-- Fast-mode Plus timing is 0.26 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2631579, C_SIZE);
-- Added to have 0.380 us (tf+thd-sta)
end if;
end FUNCTION calc_thdsta;
----------------------------------------------------------------------------
-- Function calc_tsudat
--
-- This function returns Data Setup time integer value for
-- Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tsudat (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate data setup time depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 250 ns
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1818181, C_SIZE);
-- Added to have 550 ns (tf+tsu-dat)
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 100 ns
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/2500000, C_SIZE);
-- Added to have 400 ns (tf+tsu-dat)
else
-- Fast-mode Plus timing is 50 ns
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/5882353, C_SIZE);
-- Added to have 170 ns (tf+tsu-dat)
end if;
end FUNCTION calc_tsudat;
----------------------------------------------------------------------------
-- Function calc_tbuf
--
-- This function returns Bus free time between a STOP and START condition
-- integer value for Standerd mode or Fast mode opertation.
----------------------------------------------------------------------------
FUNCTION calc_tbuf (
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate data setup time depending on the
-- mode {standard, fast}
if (C_IIC_FREQ <= 100000) then
-- Standard Mode timing 4.7 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/200000, C_SIZE);
-- Added to have 5 us
elsif (C_IIC_FREQ <= 400000) then
-- Fast Mode timing is 1.3 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/625000, C_SIZE);
-- Added to have 1.6 us
else
-- Fast-mode Plus timing is 0.5 us
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/1612904, C_SIZE);
-- Added to have 0.62 us
end if;
end FUNCTION calc_tbuf;
----------------------------------------------------------------------------
-- Function calc_thddat
--
-- This function returns the data hold time integer value for I2C and
-- SMBus/PMBus protocols.
----------------------------------------------------------------------------
FUNCTION calc_thddat (
constant C_SMBUS_PMBUS_HOST : integer;
constant C_IIC_FREQ : integer;
constant C_S_AXI_ACLK_FREQ_HZ : integer;
constant C_SIZE : integer)
RETURN std_logic_vector is
begin
-- Calculate data hold time depending on SMBus/PMBus compatability
if (C_SMBUS_PMBUS_HOST = 1) then
-- hold time of 300 ns for SMBus/PMBus
RETURN conv_std_logic_vector(C_S_AXI_ACLK_FREQ_HZ/3333334, C_SIZE);
else
-- hold time of 0 ns for normal I2C
RETURN conv_std_logic_vector(1, C_SIZE);
end if;
end FUNCTION calc_thddat;
-- Set-up time for a repeated start
constant TSUSTA : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tsusta(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Set-up time for a stop
constant TSUSTO : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tsusto(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Hold time (repeated) START condition. After this period, the first clock
-- pulse is generated.
constant THDSTA : std_logic_vector(C_SIZE-1 downto 0)
:= calc_thdsta(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Data setup time.
constant TSUDAT : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tsudat(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Bus free time.
constant TBUF : std_logic_vector(C_SIZE-1 downto 0)
:= calc_tbuf(C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
-- Data Hold time
constant THDDAT : std_logic_vector(C_SIZE-1 downto 0)
:= calc_thddat(C_SMBUS_PMBUS_HOST, C_IIC_FREQ, C_S_AXI_ACLK_FREQ_HZ, C_SIZE);
----------------------------------------------------------------------------
-- Signal and Type Declarations
----------------------------------------------------------------------------
signal cr_i : std_logic_vector(0 to 7); -- intrnl control reg
signal sr_i : std_logic_vector(0 to 7); -- intrnl statuss reg
signal dtr_i : std_logic_vector(0 to 7); -- intrnl dta trnsmt reg
signal drr_i : std_logic_vector(0 to 7); -- intrnl dta receive reg
signal adr_i : std_logic_vector(0 to 7); -- intrnl slave addr reg
signal rc_fifo_pirq_i : std_logic_vector(4 to 7); -- intrnl slave addr reg
signal ten_adr_i : std_logic_vector(5 to 7) := (others => '0');
-- intrnl slave addr reg
signal ro_a : std_logic; -- receive overrun SRFF
signal ro_i : std_logic; -- receive overrun SRFF
signal dtre_i : std_logic; -- data tranmit register empty register
signal new_rcv_dta_d1 : std_logic; -- delay new_rcv_dta to find rising edge
signal msms_d1 : std_logic; -- delay msms cr(5)
signal ro_prev_i : std_logic; -- internal Ro_prev
signal msms_set_i : std_logic; -- SRFF set on falling edge of msms
signal rtx_i : std_logic_vector(0 to 7);
signal rrc_i : std_logic_vector(0 to 7);
signal rtn_i : std_logic_vector(0 to 7);
signal rpq_i : std_logic_vector(0 to 7);
signal gpo_i : std_logic_vector(32 - C_GPO_WIDTH to 31); -- GPO
signal timing_param_tsusta_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tsusto_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_thdsta_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tsudat_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tbuf_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_thigh_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_tlow_i : std_logic_vector(C_SIZE-1 downto 0);
signal timing_param_thddat_i : std_logic_vector(C_SIZE-1 downto 0);
signal rback_data : std_logic_vector(0 to 32 * C_NUM_IIC_REGS - 1)
:= (others => '0');
begin
----------------------------------------------------------------------------
-- CONTROL_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the control register is enabled.
----------------------------------------------------------------------------
CONTROL_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
cr_i <= (others => '0');
elsif -- Load Control Register with AXI
-- data if there is a write request
-- and the control register is enabled
Bus2IIC_WrCE(0) = '1' then
cr_i(0 to 7) <= Bus2IIC_Data(24 to 31);
else -- Load Control Register with iic data
cr_i(0) <= cr_i(0);
cr_i(1) <= cr_i(1);
cr_i(2) <= (cr_i(2) or DynRstaSet) and not(Rsta_rst);
cr_i(3) <= cr_i(3);
cr_i(4) <= (cr_i(4) or Cr_txModeSelect_set) and
not(Cr_txModeSelect_clr);
cr_i(5) <= (cr_i(5) or DynMsmsSet) and not (Msms_rst);
cr_i(6) <= cr_i(6);
cr_i(7) <= cr_i(7);
end if;
end if;
end process CONTROL_REGISTER_PROCESS;
Cr <= cr_i;
----------------------------------------------------------------------------
-- Delay msms by one clock to find falling edge
----------------------------------------------------------------------------
MSMS_DELAY_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
msms_d1 <= '0';
else
msms_d1 <= cr_i(5);
end if;
end if;
end process MSMS_DELAY_PROCESS;
----------------------------------------------------------------------------
-- Set when a fall edge of msms has occurred and Ro_prev is active
-- This will prevent a throttle condition when a master receiver and
-- trying to initiate a stop condition.
----------------------------------------------------------------------------
MSMS_EDGE_SET_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
msms_set_i <= '0';
elsif ro_prev_i = '1' and cr_i(5) = '0' and msms_d1 = '1' then
msms_set_i <= '1';
elsif (cr_i(5) = '1' and msms_d1 = '0') or Bb = '0' then
msms_set_i <= '0';
else
msms_set_i <= msms_set_i;
end if;
end if;
end process MSMS_EDGE_SET_PROCESS;
Msms_set <= msms_set_i;
----------------------------------------------------------------------------
-- STATUS_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process resets the status register. The status register is read only
----------------------------------------------------------------------------
STATUS_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
sr_i <= (others => '0');
else -- Load Status Register with iic data
sr_i(0) <= not Tx_data_exists;
sr_i(1) <= not Rc_data_Exists;
sr_i(2) <= Rc_fifo_Full;
sr_i(3) <= Tx_fifo_Full; -- addressed by a general call
sr_i(4) <= Srw; -- slave read/write
sr_i(5) <= Bb; -- bus busy
sr_i(6) <= Aas; -- addressed as slave
sr_i(7) <= Abgc; -- addressed by a general call
end if;
end if;
end process STATUS_REGISTER_PROCESS;
----------------------------------------------------------------------------
-- Transmit FIFO CONTROL signal GENERATION
----------------------------------------------------------------------------
-- This process allows the AXI to write data to the write FIFO and assigns
-- that data to the output port and to the internal signals for reading
----------------------------------------------------------------------------
FIFO_GEN_DTR : if C_TX_FIFO_EXIST generate
-------------------------------------------------------------------------
-- FIFO_WR_CNTL_PROCESS - Tx fifo write process
-------------------------------------------------------------------------
FIFO_WR_CNTL_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Tx_fifo_wr <= '0';
elsif
Bus2IIC_WrCE(2) = '1' then
Tx_fifo_wr <= '1';
else
Tx_fifo_wr <= '0';
end if;
end if;
end process FIFO_WR_CNTL_PROCESS;
-------------------------------------------------------------------------
-- FIFO_DTR_REG_PROCESS
-------------------------------------------------------------------------
FIFO_DTR_REG_PROCESS : process (Tx_fifo_data)
begin -- process
Dtr <= Tx_fifo_data;
dtr_i <= Tx_fifo_data;
end process FIFO_DTR_REG_PROCESS;
-------------------------------------------------------------------------
-- Tx_FIFO_RD_PROCESS
-------------------------------------------------------------------------
-- This process generates the Read from the Transmit FIFO
-------------------------------------------------------------------------
Tx_FIFO_RD_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Tx_fifo_rd <= '0';
elsif Rdy_new_xmt = '1' then
Tx_fifo_rd <= '1';
elsif Rdy_new_xmt = '0' --and Tx_data_exists = '1'
then Tx_fifo_rd <= '0';
end if;
end if;
end process Tx_FIFO_RD_PROCESS;
-------------------------------------------------------------------------
-- DTRE_PROCESS
-------------------------------------------------------------------------
-- This process generates the Data Transmit Register Empty Interrupt
-- Interrupt(2)
-------------------------------------------------------------------------
DTRE_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
dtre_i <= '0';
else
dtre_i <= not (Tx_data_exists);
end if;
end if;
end process DTRE_PROCESS;
-------------------------------------------------------------------------
-- Additional FIFO Interrupt
-------------------------------------------------------------------------
-- FIFO_Int_PROCESS generates interrupts back to the IPIF when Tx FIFO
-- exists
-------------------------------------------------------------------------
FIFO_INT_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
IIC2Bus_IntrEvent(7) <= '0';
else
IIC2Bus_IntrEvent(7) <= not Tx_addr(3); -- Tx FIFO half empty
end if;
end if;
end process FIFO_INT_PROCESS;
-------------------------------------------------------------------------
-- Tx_FIFO_RESET_PROCESS
-------------------------------------------------------------------------
-- This process generates the Data Transmit Register Empty Interrupt
-- Interrupt(2)
-------------------------------------------------------------------------
TX_FIFO_RESET_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Tx_fifo_rst <= '1';
else
Tx_fifo_rst <= cr_i(6);
end if;
end if;
end process TX_FIFO_RESET_PROCESS;
end generate FIFO_GEN_DTR;
Dtre <= dtre_i;
----------------------------------------------------------------------------
-- If a read FIFO exists then generate control signals
----------------------------------------------------------------------------
RD_FIFO_CNTRL : if (C_RC_FIFO_EXIST) generate
-------------------------------------------------------------------------
-- WRITE_TO_READ_FIFO_PROCESS
-------------------------------------------------------------------------
WRITE_TO_READ_FIFO_PROCESS : process (Clk)
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Rc_fifo_wr <= '0';
-- Load iic Data When new data x-fer complete and not x-mitting
elsif
New_rcv_dta = '1' and new_rcv_dta_d1 = '0' then
Rc_fifo_wr <= '1';
else
Rc_fifo_wr <= '0';
end if;
end if;
end process WRITE_TO_READ_FIFO_PROCESS;
-------------------------------------------------------------------------
-- Assign the Receive FIFO data to the DRR so AXI can read the data
-------------------------------------------------------------------------
AXI_READ_FROM_READ_FIFO_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
Rc_fifo_rd <= '0';
elsif Bus2IIC_RdCE(3) = '1' then
Rc_fifo_rd <= '1';
else
Rc_fifo_rd <= '0';
end if;
end if;
end process AXI_READ_FROM_READ_FIFO_PROCESS;
-------------------------------------------------------------------------
-- Assign the Receive FIFO data to the DRR so AXI can read the data
-------------------------------------------------------------------------
RD_FIFO_DRR_PROCESS : process (Rc_fifo_data)
begin
Drr <= Rc_fifo_data;
drr_i <= Rc_fifo_data;
end process RD_FIFO_DRR_PROCESS;
-------------------------------------------------------------------------
-- Rc_FIFO_PIRQ
-------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the Rc_FIFO_PIRQ register is enabled.
-------------------------------------------------------------------------
Rc_FIFO_PIRQ_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
rc_fifo_pirq_i <= (others => '0');
elsif -- Load Status Register with AXI
-- data if there is a write request
-- and the status register is enabled
Bus2IIC_WrCE(8) = '1' then
rc_fifo_pirq_i(4 to 7) <= Bus2IIC_Data(28 to 31);
else
rc_fifo_pirq_i(4 to 7) <= rc_fifo_pirq_i(4 to 7);
end if;
end if;
end process Rc_FIFO_PIRQ_PROCESS;
-------------------------------------------------------------------------
-- RC_FIFO_FULL_PROCESS
-------------------------------------------------------------------------
-- This process throttles the bus when receiving and the RC_FIFO_PIRQ is
-- equalto the Receive FIFO Occupancy value
-------------------------------------------------------------------------
RC_FIFO_FULL_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
ro_prev_i <= '0';
elsif msms_set_i = '1' then
ro_prev_i <= '0';
elsif (rc_fifo_pirq_i(4) = Rc_addr(3) and
rc_fifo_pirq_i(5) = Rc_addr(2) and
rc_fifo_pirq_i(6) = Rc_addr(1) and
rc_fifo_pirq_i(7) = Rc_addr(0)) and
Rc_data_Exists = '1'
then
ro_prev_i <= '1';
else
ro_prev_i <= '0';
end if;
end if;
end process RC_FIFO_FULL_PROCESS;
Ro_prev <= ro_prev_i;
end generate RD_FIFO_CNTRL;
----------------------------------------------------------------------------
-- RCV_OVRUN_PROCESS
----------------------------------------------------------------------------
-- This process determines when the data receive register has had new data
-- written to it without a read of the old data
----------------------------------------------------------------------------
NEW_RECIEVE_DATA_PROCESS : process (Clk) -- delay new_rcv_dta to find edge
begin
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
new_rcv_dta_d1 <= '0';
else
new_rcv_dta_d1 <= New_rcv_dta;
end if;
end if;
end process NEW_RECIEVE_DATA_PROCESS;
----------------------------------------------------------------------------
-- RCV_OVRUN_PROCESS
----------------------------------------------------------------------------
RCV_OVRUN_PROCESS : process (Clk)
begin
-- SRFF set when new data is received, reset when a read of DRR occurs
-- The second SRFF is set when new data is again received before a
-- read of DRR occurs. This sets the Receive Overrun Status Bit
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
ro_a <= '0';
elsif New_rcv_dta = '1' and new_rcv_dta_d1 = '0' then
ro_a <= '1';
elsif New_rcv_dta = '0' and Bus2IIC_RdCE(3) = '1'
then ro_a <= '0';
else
ro_a <= ro_a;
end if;
end if;
end process RCV_OVRUN_PROCESS;
----------------------------------------------------------------------------
-- ADDRESS_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the address register is enabled.
----------------------------------------------------------------------------
ADDRESS_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
adr_i <= (others => '0');
elsif -- Load Status Register with AXI
-- data if there is a write request
-- and the status register is enabled
-- Bus2IIC_WrReq = '1' and Bus2IIC_WrCE(4) = '1' then
Bus2IIC_WrCE(4) = '1' then
adr_i(0 to 7) <= Bus2IIC_Data(24 to 31);
else
adr_i <= adr_i;
end if;
end if;
end process ADDRESS_REGISTER_PROCESS;
Adr <= adr_i;
--PER_BIT_0_TO_31_GEN : for i in 0 to C_S_AXI_DATA_WIDTH-1 generate
-- BIT_0_TO_31_LOOP : process (rback_data, Bus2IIC_RdCE) is
-- begin
-- if (or_reduce(Bus2IIC_RdCE) = '1') then
-- for m in 0 to C_NUM_IIC_REGS-1 loop
-- if (Bus2IIC_RdCE(m) = '1') then
-- IIC2Bus_Data(i) <= rback_data(m*32 + i);
-- else
-- IIC2Bus_Data(i) <= '0';
-- end if;
-- end loop;
-- else
-- IIC2Bus_Data(i) <= '0';
-- end if;
-- end process BIT_0_TO_31_LOOP;
--end generate PER_BIT_0_TO_31_GEN;
OUTPUT_DATA_GEN_P : process (rback_data, Bus2IIC_RdCE, Bus2IIC_Addr) is
begin
if (or_reduce(Bus2IIC_RdCE) = '1') then
--IIC2Bus_Data <= rback_data((32*TO_INTEGER(unsigned(Bus2IIC_Addr(24 to 29))))
-- to ((32*TO_INTEGER(unsigned(Bus2IIC_Addr(24 to 29))))+31)); -- CR
--case Bus2IIC_Addr(C_S_AXI_ADDR_WIDTH-8 to C_S_AXI_ADDR_WIDTH-1) is
case Bus2IIC_Addr(1 to 8) is
when X"00" => IIC2Bus_Data <= rback_data(0 to 31); -- CR
when X"04" => IIC2Bus_Data <= rback_data(32 to 63); -- SR
when X"08" => IIC2Bus_Data <= rback_data(64 to 95); -- TX_FIFO
when X"0C" => IIC2Bus_Data <= rback_data(96 to 127); -- RX_FIFO
when X"10" => IIC2Bus_Data <= rback_data(128 to 159); -- ADR
when X"14" => IIC2Bus_Data <= rback_data(160 to 191); -- TX_FIFO_OCY
when X"18" => IIC2Bus_Data <= rback_data(192 to 223); -- RX_FIFO_OCY
when X"1C" => IIC2Bus_Data <= rback_data(224 to 255); -- TEN_ADR
when X"20" => IIC2Bus_Data <= rback_data(256 to 287); -- RX_FIFO_PIRQ
when X"24" => IIC2Bus_Data <= rback_data(288 to 319); -- GPO
when X"28" => IIC2Bus_Data <= rback_data(320 to 351); -- TSUSTA
when X"2C" => IIC2Bus_Data <= rback_data(352 to 383); -- TSUSTO
when X"30" => IIC2Bus_Data <= rback_data(384 to 415); -- THDSTA
when X"34" => IIC2Bus_Data <= rback_data(416 to 447); -- TSUDAT
when X"38" => IIC2Bus_Data <= rback_data(448 to 479); -- TBUF
when X"3C" => IIC2Bus_Data <= rback_data(480 to 511); -- THIGH
when X"40" => IIC2Bus_Data <= rback_data(512 to 543); -- TLOW
when X"44" => IIC2Bus_Data <= rback_data(544 to 575); -- THDDAT
when others => IIC2Bus_Data <= (others => '0');
end case;
else
IIC2Bus_Data <= (others => '0');
end if;
end process OUTPUT_DATA_GEN_P;
----------------------------------------------------------------------------
-- READ_REGISTER_PROCESS
----------------------------------------------------------------------------
rback_data(32*1-8 to 32*1-1) <= cr_i(0 to 7);
rback_data(32*2-9 to 32*2-1) <= '0' & sr_i(0 to 7);--reg_empty & sr_i(0 to 7);
rback_data(32*3-8 to 32*3-1) <= dtr_i(0 to 7);
rback_data(32*4-8 to 32*4-1) <= drr_i(0 to 7);
rback_data(32*5-8 to 32*5-2) <= adr_i(0 to 6);
rback_data(32*6-8 to 32*6-1) <= rtx_i(0 to 7);
rback_data(32*7-8 to 32*7-1) <= rrc_i(0 to 7);
rback_data(32*8-8 to 32*8-1) <= rtn_i(0 to 7);
rback_data(32*9-8 to 32*9-1) <= rpq_i(0 to 7);
----------------------------------------------------------------------------
-- GPO_RBACK_GEN generate
----------------------------------------------------------------------------
GPO_RBACK_GEN : if C_GPO_WIDTH /= 0 generate
rback_data(32*10-C_GPO_WIDTH to 32*10-1)
<= gpo_i(32 - C_GPO_WIDTH to C_S_AXI_DATA_WIDTH - 1);
end generate GPO_RBACK_GEN;
rback_data(32*11-C_SIZE to 32*11-1) <= timing_param_tsusta_i(C_SIZE-1 downto 0);
rback_data(32*12-C_SIZE to 32*12-1) <= timing_param_tsusto_i(C_SIZE-1 downto 0);
rback_data(32*13-C_SIZE to 32*13-1) <= timing_param_thdsta_i(C_SIZE-1 downto 0);
rback_data(32*14-C_SIZE to 32*14-1) <= timing_param_tsudat_i(C_SIZE-1 downto 0);
rback_data(32*15-C_SIZE to 32*15-1) <= timing_param_tbuf_i(C_SIZE-1 downto 0);
rback_data(32*16-C_SIZE to 32*16-1) <= timing_param_thigh_i(C_SIZE-1 downto 0);
rback_data(32*17-C_SIZE to 32*17-1) <= timing_param_tlow_i(C_SIZE-1 downto 0);
rback_data(32*18-C_SIZE to 32*18-1) <= timing_param_thddat_i(C_SIZE-1 downto 0);
rtx_i(0 to 3) <= (others => '0');
rtx_i(4) <= Tx_addr(3);
rtx_i(5) <= Tx_addr(2);
rtx_i(6) <= Tx_addr(1);
rtx_i(7) <= Tx_addr(0);
rrc_i(0 to 3) <= (others => '0');
rrc_i(4) <= Rc_addr(3);
rrc_i(5) <= Rc_addr(2);
rrc_i(6) <= Rc_addr(1);
rrc_i(7) <= Rc_addr(0);
rtn_i(0 to 4) <= (others => '0');
rtn_i(5 to 7) <= ten_adr_i(5 to 7);
rpq_i(0 to 3) <= (others => '0');
rpq_i(4 to 7) <= rc_fifo_pirq_i(4 to 7);
----------------------------------------------------------------------------
-- Interrupts
----------------------------------------------------------------------------
-- Int_PROCESS generates interrupts back to the IPIF
----------------------------------------------------------------------------
INT_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
IIC2Bus_IntrEvent(0 to 6) <= (others => '0');
else
IIC2Bus_IntrEvent(0) <= Al; -- arbitration lost interrupt
IIC2Bus_IntrEvent(1) <= Txer; -- transmit error interrupt
IIC2Bus_IntrEvent(2) <= Tx_under_prev; --dtre_i;
-- Data Tx Register Empty interrupt
IIC2Bus_IntrEvent(3) <= ro_prev_i; --New_rcv_dta;
-- Data Rc Register Full interrupt
IIC2Bus_IntrEvent(4) <= not Bb;
IIC2Bus_IntrEvent(5) <= Aas;
IIC2Bus_IntrEvent(6) <= not Aas;
end if;
end if;
end process INT_PROCESS;
----------------------------------------------------------------------------
-- Ten Bit Slave Address Generate
----------------------------------------------------------------------------
-- Int_PROCESS generates interrupts back to the IPIF
----------------------------------------------------------------------------
TEN_ADR_GEN : if (C_TEN_BIT_ADR = 1) generate
-------------------------------------------------------------------------
-- TEN_ADR_REGISTER_PROCESS
-------------------------------------------------------------------------
TEN_ADR_REGISTER_PROCESS : process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
ten_adr_i <= (others => '0');
elsif -- Load Status Register with AXI
-- data if there is a write request
-- and the status register is enabled
Bus2IIC_WrCE(7) = '1' then
ten_adr_i(5 to 7) <= Bus2IIC_Data(29 to 31);
else
ten_adr_i <= ten_adr_i;
end if;
end if;
end process TEN_ADR_REGISTER_PROCESS;
Ten_adr <= ten_adr_i;
end generate TEN_ADR_GEN;
----------------------------------------------------------------------------
-- General Purpose Ouput Register Generate
----------------------------------------------------------------------------
-- Generate the GPO if C_GPO_WIDTH is not equal to zero
----------------------------------------------------------------------------
GPO_GEN : if (C_GPO_WIDTH /= 0) generate
-------------------------------------------------------------------------
-- GPO_REGISTER_PROCESS
-------------------------------------------------------------------------
GPO_REGISTER_PROCESS : process (Clk)
begin -- process
if Clk'event and Clk = '1' then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
gpo_i <= C_DEFAULT_VALUE(C_GPO_WIDTH - 1 downto 0);
elsif -- Load Status Register with AXI
-- data if there is a write CE
--Bus2IIC_WrCE(C_NUM_IIC_REGS - 1) = '1' then
Bus2IIC_WrCE(9) = '1' then
gpo_i(32 - C_GPO_WIDTH to 31) <=
Bus2IIC_Data(32 - C_GPO_WIDTH to 31);
else
gpo_i <= gpo_i;
end if;
end if;
end process GPO_REGISTER_PROCESS;
Gpo <= gpo_i;
end generate GPO_GEN;
----------------------------------------------------------------------------
-- TSUSTA_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the tsusta register is enabled.
----------------------------------------------------------------------------
TSUSTA_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
--timing_param_tsusta_i <= (others => '0');
timing_param_tsusta_i <= TSUSTA;
elsif -- Load tsusta Register with AXI
-- data if there is a write request
-- and the tsusta register is enabled
Bus2IIC_WrCE(10) = '1' then
timing_param_tsusta_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tsusta_i(C_SIZE-1 downto 0) <= timing_param_tsusta_i(C_SIZE-1 downto 0);
end if;
end if;
end process TSUSTA_REGISTER_PROCESS;
Timing_param_tsusta <= timing_param_tsusta_i;
----------------------------------------------------------------------------
-- TSUSTO_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the tsusto register is enabled.
----------------------------------------------------------------------------
TSUSTO_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
--timing_param_tsusto_i <= (others => '0');
timing_param_tsusto_i <= TSUSTO;
elsif -- Load tsusto Register with AXI
-- data if there is a write request
-- and the tsusto register is enabled
Bus2IIC_WrCE(11) = '1' then
timing_param_tsusto_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tsusto_i(C_SIZE-1 downto 0) <= timing_param_tsusto_i(C_SIZE-1 downto 0);
end if;
end if;
end process TSUSTO_REGISTER_PROCESS;
Timing_param_tsusto <= timing_param_tsusto_i;
----------------------------------------------------------------------------
-- THDSTA_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thdsta register is enabled.
----------------------------------------------------------------------------
THDSTA_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_thdsta_i <= THDSTA;
elsif -- Load thdsta Register with AXI
-- data if there is a write request
-- and the thdsta register is enabled
Bus2IIC_WrCE(12) = '1' then
timing_param_thdsta_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_thdsta_i(C_SIZE-1 downto 0) <= timing_param_thdsta_i(C_SIZE-1 downto 0);
end if;
end if;
end process THDSTA_REGISTER_PROCESS;
Timing_param_thdsta <= timing_param_thdsta_i;
----------------------------------------------------------------------------
-- TSUDAT_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thdsta register is enabled.
----------------------------------------------------------------------------
TSUDAT_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_tsudat_i <= TSUDAT;
elsif -- Load tsudat Register with AXI
-- data if there is a write request
-- and the tsudat register is enabled
Bus2IIC_WrCE(13) = '1' then
timing_param_tsudat_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tsudat_i(C_SIZE-1 downto 0) <= timing_param_tsudat_i(C_SIZE-1 downto 0);
end if;
end if;
end process TSUDAT_REGISTER_PROCESS;
Timing_param_tsudat <= timing_param_tsudat_i;
----------------------------------------------------------------------------
-- TBUF_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the tbuf register is enabled.
----------------------------------------------------------------------------
TBUF_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_tbuf_i <= TBUF;
elsif -- Load tbuf Register with AXI
-- data if there is a write request
-- and the tbuf register is enabled
Bus2IIC_WrCE(14) = '1' then
timing_param_tbuf_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tbuf_i(C_SIZE-1 downto 0) <= timing_param_tbuf_i(C_SIZE-1 downto 0);
end if;
end if;
end process TBUF_REGISTER_PROCESS;
Timing_param_tbuf <= timing_param_tbuf_i;
----------------------------------------------------------------------------
-- THIGH_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thigh register is enabled.
----------------------------------------------------------------------------
THIGH_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_thigh_i <= HIGH_CNT;
elsif -- Load thigh Register with AXI
-- data if there is a write request
-- and the thigh register is enabled
Bus2IIC_WrCE(15) = '1' then
timing_param_thigh_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_thigh_i(C_SIZE-1 downto 0) <= timing_param_thigh_i(C_SIZE-1 downto 0);
end if;
end if;
end process THIGH_REGISTER_PROCESS;
Timing_param_thigh <= timing_param_thigh_i;
----------------------------------------------------------------------------
-- TLOW_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thigh register is enabled.
----------------------------------------------------------------------------
TLOW_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_tlow_i <= LOW_CNT;
elsif -- Load tlow Register with AXI
-- data if there is a write request
-- and the tlow register is enabled
Bus2IIC_WrCE(16) = '1' then
timing_param_tlow_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_tlow_i(C_SIZE-1 downto 0) <= timing_param_tlow_i(C_SIZE-1 downto 0);
end if;
end if;
end process TLOW_REGISTER_PROCESS;
Timing_param_tlow <= timing_param_tlow_i;
----------------------------------------------------------------------------
-- THDDAT_REGISTER_PROCESS
----------------------------------------------------------------------------
-- This process loads data from the AXI when there is a write request and
-- the thddat register is enabled.
----------------------------------------------------------------------------
THDDAT_REGISTER_PROCESS: process (Clk)
begin -- process
if (Clk'event and Clk = '1') then
if Rst = axi_iic_v2_0.iic_pkg.RESET_ACTIVE then
timing_param_thddat_i <= THDDAT;
elsif -- Load thddat Register with AXI
-- data if there is a write request
-- and the thddat register is enabled
Bus2IIC_WrCE(17) = '1' then
timing_param_thddat_i(C_SIZE-1 downto 0) <= Bus2IIC_Data(C_S_AXI_DATA_WIDTH-C_SIZE to C_S_AXI_DATA_WIDTH-1);
else -- Load Control Register with iic data
timing_param_thddat_i(C_SIZE-1 downto 0) <= timing_param_thddat_i(C_SIZE-1 downto 0);
end if;
end if;
end process THDDAT_REGISTER_PROCESS;
Timing_param_thddat <= timing_param_thddat_i;
end architecture RTL;
|
--Practica5 de Diseño Automatico de Sistemas
--Piano Electronico.
--Sincronizador de señal de entrada con clk.
--Desarrollada por Héctor Gutiérrez Palancarejo.
library ieee;
use ieee.std_logic_1164.all;
entity synchronizer is
port(
x : in std_logic;
rst : in std_logic;
clk : in std_logic;
xsync : out std_logic
);
end synchronizer;
architecture rtl of synchronizer is
signal xp : std_logic;
begin
clock : process(clk,rst)
begin
if(rst = '0') then
xp <= '1';
xsync <= '1';
elsif(rising_edge(clk)) then
xp <= x;
xsync <= xp;
end if;
end process;
end rtl;
|
---------------------------------------------------------------------------
--
-- Title: Hardware Thread User Logic Exit Thread
-- To be used as a place holder, and size estimate for HWTI
--
---------------------------------------------------------------------------
library IEEE;
use IEEE.std_logic_1164.all;
use IEEE.std_logic_arith.all;
use IEEE.std_logic_unsigned.all;
use IEEE.std_logic_misc.all;
library Unisim;
use Unisim.all;
---------------------------------------------------------------------------
-- Port declarations
---------------------------------------------------------------------------
-- Definition of Ports:
--
-- Misc. Signals
-- clock
--
-- HWTI to HWTUL interconnect
-- intrfc2thrd_address 32 bits memory
-- intrfc2thrd_value 32 bits memory function
-- intrfc2thrd_function 16 bits control
-- intrfc2thrd_goWait 1 bits control
--
-- HWTUL to HWTI interconnect
-- thrd2intrfc_address 32 bits memory
-- thrd2intrfc_value 32 bits memory function
-- thrd2intrfc_function 16 bits function
-- thrd2intrfc_opcode 6 bits memory function
--
---------------------------------------------------------------------------
-- Thread Manager Entity section
---------------------------------------------------------------------------
entity user_logic_hwtul is
port (
clock : in std_logic;
intrfc2thrd_address : in std_logic_vector(0 to 31);
intrfc2thrd_value : in std_logic_vector(0 to 31);
intrfc2thrd_function : in std_logic_vector(0 to 15);
intrfc2thrd_goWait : in std_logic;
thrd2intrfc_address : out std_logic_vector(0 to 31);
thrd2intrfc_value : out std_logic_vector(0 to 31);
thrd2intrfc_function : out std_logic_vector(0 to 15);
thrd2intrfc_opcode : out std_logic_vector(0 to 5)
);
end entity user_logic_hwtul;
---------------------------------------------------------------------------
-- Architecture section
---------------------------------------------------------------------------
architecture IMP of user_logic_hwtul is
---------------------------------------------------------------------------
-- Signal declarations
---------------------------------------------------------------------------
type state_machine is (
FUNCTION_RESET,
FUNCTION_USER_SELECT,
FUNCTION_START,
FUNCTION_EXIT,
STATE_1,
STATE_2,
STATE_3,
STATE_4,
STATE_5,
STATE_6,
STATE_7,
STATE_8,
STATE_9,
STATE_10,
STATE_11,
STATE_12,
STATE_13,
STATE_14,
STATE_15,
STATE_16,
STATE_17,
STATE_18,
STATE_19,
STATE_20,
STATE_21,
STATE_22,
STATE_23,
STATE_24,
STATE_25,
STATE_26,
STATE_27,
STATE_28,
STATE_29,
STATE_30,
WAIT_STATE,
ERROR_STATE);
-- Function definitions
constant U_FUNCTION_RESET : std_logic_vector(0 to 15) := x"0000";
constant U_FUNCTION_WAIT : std_logic_vector(0 to 15) := x"0001";
constant U_FUNCTION_USER_SELECT : std_logic_vector(0 to 15) := x"0002";
constant U_FUNCTION_START : std_logic_vector(0 to 15) := x"0003";
constant U_STATE_1 : std_logic_vector(0 to 15) := x"0101";
constant U_STATE_2 : std_logic_vector(0 to 15) := x"0102";
constant U_STATE_3 : std_logic_vector(0 to 15) := x"0103";
constant U_STATE_4 : std_logic_vector(0 to 15) := x"0104";
constant U_STATE_5 : std_logic_vector(0 to 15) := x"0105";
constant U_STATE_6 : std_logic_vector(0 to 15) := x"0106";
constant U_STATE_7 : std_logic_vector(0 to 15) := x"0107";
constant U_STATE_8 : std_logic_vector(0 to 15) := x"0108";
constant U_STATE_9 : std_logic_vector(0 to 15) := x"0109";
constant U_STATE_10 : std_logic_vector(0 to 15) := x"0110";
constant U_STATE_11 : std_logic_vector(0 to 15) := x"0111";
constant U_STATE_12 : std_logic_vector(0 to 15) := x"0112";
constant U_STATE_13 : std_logic_vector(0 to 15) := x"0113";
constant U_STATE_14 : std_logic_vector(0 to 15) := x"0114";
constant U_STATE_15 : std_logic_vector(0 to 15) := x"0115";
constant U_STATE_16 : std_logic_vector(0 to 15) := x"0116";
constant U_STATE_17 : std_logic_vector(0 to 15) := x"0117";
constant U_STATE_18 : std_logic_vector(0 to 15) := x"0118";
constant U_STATE_19 : std_logic_vector(0 to 15) := x"0119";
constant U_STATE_20 : std_logic_vector(0 to 15) := x"0120";
constant U_STATE_21 : std_logic_vector(0 to 15) := x"0121";
constant U_STATE_22 : std_logic_vector(0 to 15) := x"0122";
constant U_STATE_23 : std_logic_vector(0 to 15) := x"0123";
constant U_STATE_24 : std_logic_vector(0 to 15) := x"0124";
constant U_STATE_25 : std_logic_vector(0 to 15) := x"0125";
constant U_STATE_26 : std_logic_vector(0 to 15) := x"0126";
constant U_STATE_27 : std_logic_vector(0 to 15) := x"0127";
constant U_STATE_28 : std_logic_vector(0 to 15) := x"0128";
constant U_STATE_29 : std_logic_vector(0 to 15) := x"0129";
constant U_STATE_30 : std_logic_vector(0 to 15) := x"0130";
-- Range 0003 to 7999 reserved for user logic's state machine
-- Range 8000 to 9999 reserved for system calls
constant FUNCTION_HTHREAD_ATTR_INIT : std_logic_vector(0 to 15) := x"8000";
constant FUNCTION_HTHREAD_ATTR_DESTROY : std_logic_vector(0 to 15) := x"8001";
constant FUNCTION_HTHREAD_CREATE : std_logic_vector(0 to 15) := x"8010";
constant FUNCTION_HTHREAD_JOIN : std_logic_vector(0 to 15) := x"8011";
constant FUNCTION_HTHREAD_SELF : std_logic_vector(0 to 15) := x"8012";
constant FUNCTION_HTHREAD_YIELD : std_logic_vector(0 to 15) := x"8013";
constant FUNCTION_HTHREAD_EQUAL : std_logic_vector(0 to 15) := x"8014";
constant FUNCTION_HTHREAD_EXIT : std_logic_vector(0 to 15) := x"8015";
constant FUNCTION_HTHREAD_EXIT_ERROR : std_logic_vector(0 to 15) := x"8016";
constant FUNCTION_HTHREAD_MUTEXATTR_INIT : std_logic_vector(0 to 15) := x"8020";
constant FUNCTION_HTHREAD_MUTEXATTR_DESTROY : std_logic_vector(0 to 15) := x"8021";
constant FUNCTION_HTHREAD_MUTEXATTR_SETNUM : std_logic_vector(0 to 15) := x"8022";
constant FUNCTION_HTHREAD_MUTEXATTR_GETNUM : std_logic_vector(0 to 15) := x"8023";
constant FUNCTION_HTHREAD_MUTEX_INIT : std_logic_vector(0 to 15) := x"8030";
constant FUNCTION_HTHREAD_MUTEX_DESTROY : std_logic_vector(0 to 15) := x"8031";
constant FUNCTION_HTHREAD_MUTEX_LOCK : std_logic_vector(0 to 15) := x"8032";
constant FUNCTION_HTHREAD_MUTEX_UNLOCK : std_logic_vector(0 to 15) := x"8033";
constant FUNCTION_HTHREAD_MUTEX_TRYLOCK : std_logic_vector(0 to 15) := x"8034";
constant FUNCTION_HTHREAD_CONDATTR_INIT : std_logic_vector(0 to 15) := x"8040";
constant FUNCTION_HTHREAD_CONDATTR_DESTROY : std_logic_vector(0 to 15) := x"8041";
constant FUNCTION_HTHREAD_CONDATTR_SETNUM : std_logic_vector(0 to 15) := x"8042";
constant FUNCTION_HTHREAD_CONDATTR_GETNUM : std_logic_vector(0 to 15) := x"8043";
constant FUNCTION_HTHREAD_COND_INIT : std_logic_vector(0 to 15) := x"8050";
constant FUNCTION_HTHREAD_COND_DESTROY : std_logic_vector(0 to 15) := x"8051";
constant FUNCTION_HTHREAD_COND_SIGNAL : std_logic_vector(0 to 15) := x"8052";
constant FUNCTION_HTHREAD_COND_BROADCAST : std_logic_vector(0 to 15) := x"8053";
constant FUNCTION_HTHREAD_COND_WAIT : std_logic_vector(0 to 15) := x"8054";
-- Ranged A000 to FFFF reserved for supported library calls
constant FUNCTION_MALLOC : std_logic_vector(0 to 15) := x"A000";
constant FUNCTION_CALLOC : std_logic_vector(0 to 15) := x"A001";
constant FUNCTION_FREE : std_logic_vector(0 to 15) := x"A002";
-- user_opcode Constants
constant OPCODE_NOOP : std_logic_vector(0 to 5) := "000000";
-- Memory sub-interface specific opcodes
constant OPCODE_LOAD : std_logic_vector(0 to 5) := "000001";
constant OPCODE_STORE : std_logic_vector(0 to 5) := "000010";
constant OPCODE_DECLARE : std_logic_vector(0 to 5) := "000011";
constant OPCODE_READ : std_logic_vector(0 to 5) := "000100";
constant OPCODE_WRITE : std_logic_vector(0 to 5) := "000101";
constant OPCODE_ADDRESS : std_logic_vector(0 to 5) := "000110";
-- Function sub-interface specific opcodes
constant OPCODE_PUSH : std_logic_vector(0 to 5) := "010000";
constant OPCODE_POP : std_logic_vector(0 to 5) := "010001";
constant OPCODE_CALL : std_logic_vector(0 to 5) := "010010";
constant OPCODE_RETURN : std_logic_vector(0 to 5) := "010011";
constant Z32 : std_logic_vector(0 to 31) := (others => '0');
signal current_state, next_state : state_machine := FUNCTION_RESET;
signal return_state, return_state_next: state_machine := FUNCTION_RESET;
signal toUser_address : std_logic_vector(0 to 31);
signal toUser_value : std_logic_vector(0 to 31);
signal toUser_function : std_logic_vector(0 to 15);
signal toUser_goWait : std_logic;
signal retVal, retVal_next : std_logic_vector(0 to 31);
signal arg, arg_next : std_logic_vector(0 to 31);
signal reg1, reg1_next : std_logic_vector(0 to 31);
signal reg2, reg2_next : std_logic_vector(0 to 31);
signal reg3, reg3_next : std_logic_vector(0 to 31);
signal reg4, reg4_next : std_logic_vector(0 to 31);
signal reg5, reg5_next : std_logic_vector(0 to 31);
signal reg6, reg6_next : std_logic_vector(0 to 31);
signal reg7, reg7_next : std_logic_vector(0 to 31);
signal reg8, reg8_next : std_logic_vector(0 to 31);
---------------------------------------------------------------------------
-- Begin architecture
---------------------------------------------------------------------------
begin -- architecture IMP
HWTUL_STATE_PROCESS : process (clock, intrfc2thrd_goWait) is
begin
if (clock'event and (clock = '1')) then
toUser_address <= intrfc2thrd_address;
toUser_value <= intrfc2thrd_value;
toUser_function <= intrfc2thrd_function;
toUser_goWait <= intrfc2thrd_goWait;
return_state <= return_state_next;
retVal <= retVal_next;
arg <= arg_next;
reg1 <= reg1_next;
reg2 <= reg2_next;
reg3 <= reg3_next;
reg4 <= reg4_next;
reg5 <= reg5_next;
reg6 <= reg6_next;
reg7 <= reg7_next;
reg8 <= reg8_next;
-- Find out if the HWTI is tell us what to do
if (intrfc2thrd_goWait = '1') then
case intrfc2thrd_function is
-- Typically the HWTI will tell us to control our own destiny
when U_FUNCTION_USER_SELECT =>
current_state <= next_state;
-- List all the functions the HWTI could tell us to run
when U_FUNCTION_RESET =>
current_state <= FUNCTION_RESET;
when U_FUNCTION_START =>
current_state <= FUNCTION_START;
when U_STATE_1 =>
current_state <= STATE_1;
when U_STATE_2 =>
current_state <= STATE_2;
when U_STATE_3 =>
current_state <= STATE_3;
when U_STATE_4 =>
current_state <= STATE_4;
when U_STATE_5 =>
current_state <= STATE_5;
when U_STATE_6 =>
current_state <= STATE_6;
when U_STATE_7 =>
current_state <= STATE_7;
when U_STATE_8 =>
current_state <= STATE_8;
when U_STATE_9 =>
current_state <= STATE_9;
when U_STATE_10 =>
current_state <= STATE_10;
when U_STATE_11 =>
current_state <= STATE_11;
when U_STATE_12 =>
current_state <= STATE_12;
when U_STATE_13 =>
current_state <= STATE_13;
when U_STATE_14 =>
current_state <= STATE_14;
when U_STATE_15 =>
current_state <= STATE_15;
when U_STATE_16 =>
current_state <= STATE_16;
when U_STATE_17 =>
current_state <= STATE_17;
when U_STATE_18 =>
current_state <= STATE_18;
when U_STATE_19 =>
current_state <= STATE_19;
when U_STATE_20 =>
current_state <= STATE_20;
when U_STATE_21 =>
current_state <= STATE_21;
when U_STATE_22 =>
current_state <= STATE_22;
when U_STATE_23 =>
current_state <= STATE_23;
when U_STATE_24 =>
current_state <= STATE_24;
when U_STATE_25 =>
current_state <= STATE_25;
when U_STATE_26 =>
current_state <= STATE_26;
when U_STATE_27 =>
current_state <= STATE_27;
when U_STATE_28 =>
current_state <= STATE_28;
when U_STATE_29 =>
current_state <= STATE_29;
when U_STATE_30 =>
current_state <= STATE_30;
-- If the HWTI tells us to do something we don't know, error
when OTHERS =>
current_state <= ERROR_STATE;
end case;
else
current_state <= WAIT_STATE;
end if;
end if;
end process HWTUL_STATE_PROCESS;
HWTUL_STATE_MACHINE : process (clock) is
begin
-- Default register assignments
thrd2intrfc_opcode <= OPCODE_NOOP; -- When issuing an OPCODE, must be a pulse
thrd2intrfc_address <= Z32;
thrd2intrfc_value <= Z32;
thrd2intrfc_function <= U_FUNCTION_USER_SELECT;
return_state_next <= return_state;
next_state <= current_state;
retVal_next <= retVal;
arg_next <= arg;
reg1_next <= reg1;
reg2_next <= reg2;
reg3_next <= reg3;
reg4_next <= reg4;
reg5_next <= reg5;
reg6_next <= reg6;
reg7_next <= reg7;
reg8_next <= reg8;
-----------------------------------------------------------------------
-- Testcase: cond_signal_1.c
-- NUM_THREADS = 3
-- reg1 = i
-- reg2 = * mutex
-- reg3 = * cond
-- reg4 = * start_num
-- reg5 = * waken_num
-- reg6 = * function
-- reg7 = * attr
-- reg8 = thread[i]
-----------------------------------------------------------------------
-- The state machine
case current_state is
when FUNCTION_RESET =>
--Set default values
thrd2intrfc_opcode <= OPCODE_NOOP;
thrd2intrfc_address <= Z32;
thrd2intrfc_value <= Z32;
thrd2intrfc_function <= U_FUNCTION_START;
-- struct test_data * data = (struct test_data *) arg;
when FUNCTION_START =>
-- Pop the argument
thrd2intrfc_value <= Z32;
thrd2intrfc_opcode <= OPCODE_POP;
next_state <= WAIT_STATE;
return_state_next <= STATE_1;
when STATE_1 =>
arg_next <= intrfc2thrd_value;
-- Read the address of mutex
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= intrfc2thrd_value;
next_state <= WAIT_STATE;
return_state_next <= STATE_2;
when STATE_2 =>
reg2_next <= intrfc2thrd_value;
-- Read the address of cond
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= arg + 4;
next_state <= WAIT_STATE;
return_state_next <= STATE_3;
when STATE_3 =>
reg3_next <= intrfc2thrd_value;
-- Read the address of start_num
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= arg + 8;
next_state <= WAIT_STATE;
return_state_next <= STATE_4;
when STATE_4 =>
reg4_next <= intrfc2thrd_value;
-- Read the address of waken_num
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= arg + 12;
next_state <= WAIT_STATE;
return_state_next <= STATE_5;
when STATE_5 =>
reg5_next <= intrfc2thrd_value;
-- Read the address of function
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= arg + 16;
next_state <= WAIT_STATE;
return_state_next <= STATE_6;
when STATE_6 =>
reg6_next <= intrfc2thrd_value;
-- Read the address of attr
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= arg + 20;
next_state <= WAIT_STATE;
return_state_next <= STATE_7;
-- for( i=0; i<NUM_THREADS; i++ )
when STATE_7 =>
reg7_next <= intrfc2thrd_value;
-- set i=0
reg1_next <= Z32;
next_state <= STATE_8;
when STATE_8 =>
case reg1 is
when x"00000000" => next_state <= STATE_9;
when x"00000001" => next_state <= STATE_9;
when x"00000002" => next_state <= STATE_9;
when others => next_state <= STATE_14;
end case;
-- hthread_create( &data->thread[i], data->attr, data->function, (void *) data );
when STATE_9 =>
-- push (void *) data
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= arg;
next_state <= WAIT_STATE;
return_state_next <= STATE_10;
when STATE_10 =>
-- push data->function
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= reg6;
next_state <= WAIT_STATE;
return_state_next <= STATE_11;
when STATE_11 =>
-- push data->attr
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= reg7;
next_state <= WAIT_STATE;
return_state_next <= STATE_12;
when STATE_12 =>
-- push &data->thread[i]
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= arg + x"00000018" + (reg1(2 to 31) & "00");
next_state <= WAIT_STATE;
return_state_next <= STATE_13;
when STATE_13 =>
-- call hthread_create
thrd2intrfc_opcode <= OPCODE_CALL;
thrd2intrfc_function <= FUNCTION_HTHREAD_CREATE;
thrd2intrfc_value <= Z32(0 to 15) & U_STATE_8;
next_state <= WAIT_STATE;
reg1_next <= reg1 + x"00000001";
-- while( *(data->start_num) != THREAD_NUM ) hthread_yield();
when STATE_14 =>
-- Read the value of start_num
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= reg4;
next_state <= WAIT_STATE;
return_state_next <= STATE_15;
when STATE_15 =>
case intrfc2thrd_value is
when x"00000003" => next_state <= STATE_17;
when others => next_state <= STATE_16;
end case;
when STATE_16 =>
-- call hthread_yield
thrd2intrfc_opcode <= OPCODE_CALL;
thrd2intrfc_function <= FUNCTION_HTHREAD_YIELD;
thrd2intrfc_value <= Z32(0 to 15) & U_STATE_14;
next_state <= WAIT_STATE;
-- hthread_mutex_lock( data->mutex );
when STATE_17 =>
-- push data->mutex
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= reg2;
next_state <= WAIT_STATE;
return_state_next <= STATE_18;
when STATE_18 =>
-- call hthread_mutex_lock
thrd2intrfc_opcode <= OPCODE_CALL;
thrd2intrfc_function <= FUNCTION_HTHREAD_MUTEX_LOCK;
thrd2intrfc_value <= Z32(0 to 15) & U_STATE_19;
next_state <= WAIT_STATE;
-- hthread_cond_signal( data->cond );
when STATE_19 =>
-- push data->cond
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= reg3;
next_state <= WAIT_STATE;
return_state_next <= STATE_20;
when STATE_20 =>
-- call hthread_cond_signal
thrd2intrfc_opcode <= OPCODE_CALL;
thrd2intrfc_function <= FUNCTION_HTHREAD_COND_SIGNAL;
thrd2intrfc_value <= Z32(0 to 15) & U_STATE_21;
next_state <= WAIT_STATE;
-- hthread_mutex_unlock( data->mutex );
when STATE_21 =>
-- push data->mutex
thrd2intrfc_opcode <= OPCODE_PUSH;
thrd2intrfc_value <= reg2;
next_state <= WAIT_STATE;
return_state_next <= STATE_22;
when STATE_22 =>
-- call hthread_mutex_unlock
thrd2intrfc_opcode <= OPCODE_CALL;
thrd2intrfc_function <= FUNCTION_HTHREAD_MUTEX_UNLOCK;
thrd2intrfc_value <= Z32(0 to 15) & U_STATE_23;
next_state <= WAIT_STATE;
-- while( *(data->waken_num) == 0 ) hthread_yield();
when STATE_23 =>
-- Read the value of start_num
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= reg5;
next_state <= WAIT_STATE;
return_state_next <= STATE_24;
when STATE_24 =>
case intrfc2thrd_value is
when x"00000000" => next_state <= STATE_25;
when others => next_state <= STATE_26;
end case;
when STATE_25 =>
-- call hthread_yield
thrd2intrfc_opcode <= OPCODE_CALL;
thrd2intrfc_function <= FUNCTION_HTHREAD_YIELD;
thrd2intrfc_value <= Z32(0 to 15) & U_STATE_23;
next_state <= WAIT_STATE;
-- retVal = *( data->waken_num )
when STATE_26 =>
thrd2intrfc_opcode <= OPCODE_LOAD;
thrd2intrfc_address <= reg5;
next_state <= WAIT_STATE;
return_state_next <= STATE_27;
when STATE_27 =>
retVal_next <= intrfc2thrd_value;
next_state <= FUNCTION_EXIT;
when FUNCTION_EXIT =>
--Same as hthread_exit( (void *) retVal );
thrd2intrfc_value <= retVal;
thrd2intrfc_opcode <= OPCODE_RETURN;
next_state <= WAIT_STATE;
when WAIT_STATE =>
next_state <= return_state;
when ERROR_STATE =>
next_state <= ERROR_STATE;
when others =>
next_state <= ERROR_STATE;
end case;
end process HWTUL_STATE_MACHINE;
end architecture IMP;
|
-- Copyright (C) 2002 Morgan Kaufmann Publishers, Inc
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
entity inline_02 is
end entity inline_02;
----------------------------------------------------------------
architecture test of inline_02 is
constant val1 : integer := 1;
procedure p ( signal s1, s2 : in bit; val1 : in integer ) is
begin
null;
end procedure p;
begin
block_3_a : block is
signal s1, s2 : bit;
begin
-- code from book:
call_proc : p ( s1, s2, val1 );
-- end of code from book
end block block_3_a;
----------------
block_3_b : block is
signal s1, s2 : bit;
begin
-- code from book:
call_proc : process is
begin
p ( s1, s2, val1 );
wait on s1, s2;
end process call_proc;
-- end of code from book
end block block_3_b;
end architecture test;
|
-- Copyright (C) 2002 Morgan Kaufmann Publishers, Inc
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
entity inline_02 is
end entity inline_02;
----------------------------------------------------------------
architecture test of inline_02 is
constant val1 : integer := 1;
procedure p ( signal s1, s2 : in bit; val1 : in integer ) is
begin
null;
end procedure p;
begin
block_3_a : block is
signal s1, s2 : bit;
begin
-- code from book:
call_proc : p ( s1, s2, val1 );
-- end of code from book
end block block_3_a;
----------------
block_3_b : block is
signal s1, s2 : bit;
begin
-- code from book:
call_proc : process is
begin
p ( s1, s2, val1 );
wait on s1, s2;
end process call_proc;
-- end of code from book
end block block_3_b;
end architecture test;
|
-- Copyright (C) 2002 Morgan Kaufmann Publishers, Inc
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
entity inline_02 is
end entity inline_02;
----------------------------------------------------------------
architecture test of inline_02 is
constant val1 : integer := 1;
procedure p ( signal s1, s2 : in bit; val1 : in integer ) is
begin
null;
end procedure p;
begin
block_3_a : block is
signal s1, s2 : bit;
begin
-- code from book:
call_proc : p ( s1, s2, val1 );
-- end of code from book
end block block_3_a;
----------------
block_3_b : block is
signal s1, s2 : bit;
begin
-- code from book:
call_proc : process is
begin
p ( s1, s2, val1 );
wait on s1, s2;
end process call_proc;
-- end of code from book
end block block_3_b;
end architecture test;
|
-- revision history:
-- 05.08.2015 Bahri Enis Demirtel created
library IEEE;
use IEEE.std_logic_1164.ALL;
library IEEE;
use IEEE.STD_LOGIC_UNSIGNED.ALL;
entity tb_instruction_fetch is
end entity tb_instruction_fetch;
architecture behav_tb_instruction_fetch of tb_instruction_fetch is
-- -------- SIMULATION CONSTANTS -----
constant CLK_TIME : time := 2500 ps;
constant RST_TIME : time := 15 ns;
signal clk : std_logic := '0';
signal rst : std_logic := '0';
signal PC :std_logic_vector(31 downto 0) := x"0000_0000";
signal InstrData : std_logic_vector(31 downto 0) := x"0000_0000";
signal IR : std_logic_vector(31 downto 0);
signal InstrAddr : std_logic_vector(31 downto 0);
signal Instr : std_logic_vector(31 downto 0);
begin
-- GENERAL CONTROL SIGNALS
clk <= not clk after CLK_TIME;
rst <= '1', '0' after RST_TIME;
u1_instruction_fetch : entity work.instruction_fetch(behavioral)
PORT MAP(clk,rst,PC,InstrData,IR,InstrAddr,Instr);
-- TEST PROCESS
test_process:
process
begin
PC <= x"0000_0000";
InstrData <= x"0000_0100";
wait for 1 ns;
PC <= IR;
InstrData <= x"0000_0110";
wait for 1 ns;
PC <= IR;
InstrData <= x"0000_0200";
wait;
end process;
end architecture behav_tb_instruction_fetch;
|
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`protect encoding = (enctype = "BASE64", line_length = 76, bytes = 128)
`protect key_block
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`protect encoding = (enctype = "BASE64", line_length = 76, bytes = 256)
`protect key_block
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`protect encoding = (enctype = "BASE64", line_length = 76, bytes = 128)
`protect key_block
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`protect encoding = (enctype = "BASE64", line_length = 76, bytes = 256)
`protect key_block
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`protect encoding = (enctype = "BASE64", line_length = 76, bytes = 17456)
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|
`protect begin_protected
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`protect key_block
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`protect data_block
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fgHxFvqnmVsAFhuEnKU=
`protect end_protected
|
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
use work.CONSTANTS.all;
entity TOP_LEVEL is
Port ( clock : in STD_LOGIC;
reset : in STD_LOGIC;
inib : in std_logic;
bleft : in STD_LOGIC;
bright : in STD_LOGIC;
bup : in STD_LOGIC;
bdwn : in STD_LOGIC;
bctr : in STD_LOGIC;
maxiter : in STD_LOGIC;
VGA_hs : out std_logic; -- horisontal vga syncr.
VGA_vs : out std_logic; -- vertical vga syncr.
VGA_red : out std_logic_vector(3 downto 0); -- red output
VGA_green : out std_logic_vector(3 downto 0); -- green output
VGA_blue : out std_logic_vector(3 downto 0);
data_out : out std_logic_vector(bit_per_pixel - 1 downto 0));
end TOP_LEVEL;
architecture Behavioral of TOP_LEVEL is
component cpt_iter
Port ( clock : in STD_LOGIC;
reset : in STD_LOGIC;
inib : in std_logic;
endcalcul : in STD_LOGIC;
maxiter : in STD_LOGIC;
iter : out STD_LOGIC_VECTOR(ITER_RANGE-1 downto 0));
end component;
component Colorgen
Port ( iters : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
itermax : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
color : out STD_LOGIC_VECTOR (bit_per_pixel-1 downto 0));
end component;
component FSM is
Port ( clock : in STD_LOGIC;
reset : in STD_LOGIC;
b_done : in STD_LOGIC_VECTOR (7 downto 0);
stop : in std_logic;
doneVGA : in std_logic;
start : out STD_LOGIC;
startVGA : out STD_LOGIC);
end component;
component Iterator
Port ( go : in STD_LOGIC;
clock : in STD_LOGIC;
reset : in STD_LOGIC;
x0 : in STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
y0 : in STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
itermax : in std_logic_vector(ITER_RANGE-1 downto 0);
iters : out STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
done : out STD_LOGIC);
end component;
component increment is
Port ( clock : in STD_LOGIC;
reset : in STD_LOGIC;
start : in STD_LOGIC;
x_start : in STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
y_start : in STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
step : in STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
y : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x2 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x3 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x4 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x5 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x6 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x7 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
x8 : out STD_LOGIC_VECTOR (XY_RANGE-1 downto 0);
stop : out std_logic);
end component;
component VGA_bitmap_640x480
generic(grayscale : boolean := false); -- should data be displayed in grayscale
port(clk : in std_logic;
reset : in std_logic;
VGA_hs : out std_logic; -- horisontal vga syncr.
VGA_vs : out std_logic; -- vertical vga syncr.
VGA_red : out std_logic_vector(3 downto 0); -- red output
VGA_green : out std_logic_vector(3 downto 0); -- green output
VGA_blue : out std_logic_vector(3 downto 0); -- blue output
-- ADDR : in std_logic_vector(13 downto 0);
endcalcul : in std_logic;
data_in : in std_logic_vector(bit_per_pixel - 1 downto 0);
data_write : in std_logic;
data_out : out std_logic_vector(bit_per_pixel - 1 downto 0));
end component;
component Zoom
port ( bleft : in STD_LOGIC;
bright : in STD_LOGIC;
bup : in STD_LOGIC;
bdwn : in STD_LOGIC;
bctr : in STD_LOGIC;
clock : in STD_LOGIC;
reset : in STD_LOGIC;
ce_param : in STD_LOGIC;
x_start : out STD_LOGIC_VECTOR(XY_RANGE-1 downto 0);
y_start : out STD_LOGIC_VECTOR(XY_RANGE-1 downto 0);
step : out STD_LOGIC_VECTOR(XY_RANGE-1 downto 0));
end component;
component ClockManager
Port ( clock : in std_logic;
reset : in std_logic;
ce_param : out std_logic);
end component;
component muxandcpt is
Port ( clock : in STD_LOGIC;
reset : in STD_LOGIC;
i_iters1 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters2 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters3 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters4 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters5 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters6 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters7 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
i_iters8 : in STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
startVGA : in STD_LOGIC;
o_iters : out STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
doneVGA : out STD_LOGIC);
end component;
Signal startS,stopS, xincS, yincS, s_param, startVGA, doneVGA : std_logic;
Signal xS,xS2,xS3,xS4,xS5,xS6,xS7,xS8, yS : std_logic_vector(XY_RANGE - 1 downto 0);
Signal s_xstart, s_ystart, s_step : std_logic_vector(XY_RANGE - 1 downto 0);
Signal colorS : STD_LOGIC_VECTOR (bit_per_pixel-1 downto 0);
Signal b_done : STD_LOGIC_VECTOR(7 downto 0);
Signal itersS,itersS1, itersS2, itersS3, itersS4, itersS5, itersS6, itersS7, itersS8, itermaxS : STD_LOGIC_VECTOR (ITER_RANGE-1 downto 0);
begin
InstColorgen : Colorgen
port map (itersS,itermaxS,colorS);
InstVGA: VGA_bitmap_640x480
Port map (clock,
reset,
VGA_hs,
VGA_vs,
VGA_red,
VGA_green,
VGA_blue,
stopS,
colorS,
startVGA,
open);
Instincrment: increment
Port map (clock,
reset,
startS,
s_xstart,
s_ystart,
s_step,
xS,
yS,
xS2,
xS3,
xS4,
xS5,
xS6,
xS7,
xS8,
stopS);
instFSM : FSM
Port map (clock,
reset,
b_done,
stopS,
doneVGA,
startS,
startVGA);
instIterator : Iterator
Port map ( startS, clock, reset, xS, yS, itermaxS, itersS1, b_done(0));
instIterator2 : Iterator
Port map ( startS, clock, reset, xS2, yS, itermaxS, itersS2, b_done(1));
instIterator3 : Iterator
Port map ( startS, clock, reset, xS3, yS, itermaxS, itersS3, b_done(2));
instIterator4 : Iterator
Port map ( startS, clock, reset, xS4, yS, itermaxS, itersS4, b_done(3));
instIterator5 : Iterator
Port map ( startS, clock, reset, xS5, yS, itermaxS, itersS5, b_done(4));
instIterator6 : Iterator
Port map ( startS, clock, reset, xS6, yS, itermaxS, itersS6, b_done(5));
instIterator7 : Iterator
Port map ( startS, clock, reset, xS7, yS, itermaxS, itersS7, b_done(6));
instIterator8 : Iterator
Port map ( startS, clock, reset, xS8, yS, itermaxS, itersS8, b_done(7));
inst_cpt_iter: cpt_iter
port map ( clock,
reset,
inib,
stopS,
maxiter,
itermaxS);
inst_zoom : Zoom
port map (bleft, bright, bup, bdwn, bctr, clock, reset, s_param, s_xstart, s_ystart, s_step);
inst_clock_manager : ClockManager
port map (clock, reset, s_param);
inst_mux : muxandcpt
port map(clock, reset, itersS1,itersS2,itersS3,itersS4,itersS5,itersS6,itersS7,itersS8,startVGA,itersS,doneVGA);
end Behavioral;
|
entity e is
end entity;
architecture a of e is
type foo is (a, b, c);
type bar is (a, b, c);
signal x : foo := a;
signal y : bar := b;
begin
process is
begin
x <= c;
y <= a;
end process;
process is
begin
x <= foo'(a);
y <= bar'(a);
end process;
p3: process is
type baz is (a, b, c, d);
variable z : baz := b;
begin
z := d; -- OK
z := a; -- OK
x <= a; -- OK
end process;
process is
begin
x <= bar'(c); -- Error!
end process;
process is
type small is range 10 downto -5;
variable z : small := -5;
variable a : boolean;
begin
a := z = -5; -- OK
a := -5 = z; -- OK
end process;
process is
variable a : bit_vector(3 downto 0);
variable x : character;
variable b : boolean;
begin
b := x = '1'; -- OK
b := '1' = x; -- OK
b := a = ('0', '1', '0', '1'); -- OK
b := ('0', '1', '0', '1') = a; -- OK
b := ('0', '1') = ('0', '1'); -- Error
end process;
process is
subtype some_foo is foo range a to b; -- OK
subtype less_foo is some_foo range a to a;
subtype all_foo is foo;
variable f : some_foo;
variable g : all_foo;
variable h : less_foo;
begin
f := a; -- OK
f := c; -- OK at semantic check
g := f; -- OK
g := h; -- OK
end process;
process is
type weird is ( '¢', '¦' );
variable x : weird;
variable y : character;
begin
x := '¢'; -- OK
y := '¢'; -- OK
report "foo¥bar"; -- OK
end process;
process is
type t is (false, true);
begin
for i in false to false loop -- Error
end loop;
end process;
process is
function now return integer;
begin
for i in now to now loop -- Error
end loop;
end process;
process is
function false return integer is
begin
return 1;
end function;
begin
for i in false to false loop -- Error
end loop;
end process;
process is
function "="(a, b : foo) return boolean is
begin
return false;
end function;
variable x, y : foo;
begin
assert x = y; -- OK
end process;
end architecture;
package pack is
type my_int is range 1 to 10;
end package;
use work.pack.all;
package pack2 is
function "<"(a, b: my_int) return boolean;
end package;
use work.pack2.all;
use work.pack.all;
architecture a2 of e is
function ">"(a, b: my_int) return boolean;
begin
process is
variable x, y : my_int;
begin
assert x > y; -- OK
assert x < y; -- Error
end process;
process is
function uniform (a, b : real) return real;
type disttype is (none, uniform, other);
variable v : disttype;
variable r : real;
begin
case v is
when none | uniform => r := uniform(1.0, 2.0); -- OK
when others => r := 0.0;
end case;
end process;
end architecture;
architecture a3 of e is
type unsigned is array (natural range <>) of bit;
function "*"(a, b : unsigned) return bit_vector;
function "*"(a, b : bit_vector) return bit_vector;
function "*"(a, b : unsigned) return unsigned;
function "+"(a, b : unsigned) return bit_vector;
function "+"(a, b : bit_vector) return bit_vector;
function "+"(a, b : unsigned) return unsigned;
signal x, y, z : bit_vector(7 downto 0);
begin
x <= unsigned(y) * unsigned(z) + unsigned(z);
end architecture;
-- Test case reduced from Altera model
architecture a4 of e is
function resolved (x : bit_vector) return bit;
subtype rbit is resolved bit;
type rbit_vector is array (natural range <>) of rbit;
function "and" (x, y : rbit_vector) return rbit_vector;
signal mdio_wr : rbit;
signal reg_addr : rbit_vector(15 downto 0);
begin
process is
begin
assert ((X"0000" & mdio_wr) and reg_addr) /= X"0000";
end process;
end architecture;
architecture issue61 of e is
type ubit_vector is array (natural range <>) of bit;
begin
process is
variable x: bit_vector(4 downto 0);
variable y: ubit_vector(6 downto 0);
begin
y := ubit_vector(x & ('0' & '1'));
y := ubit_vector((x & '0') & '1');
y := ubit_vector(x & '0' & '1');
wait;
end process;
end architecture;
architecture cassign of e is
function "="(x, y : bit) return bit;
signal x, y, z : bit;
begin
x <= '1' when y = z else '0'; -- OK
end architecture;
architecture expect_fail of e is
type t is (C, B, A);
type t_vec is array (1 to 2) of t;
-- Type of aggregate must be determinable from the context
constant x : boolean := (A, A) < (C, C); -- Error
begin
end architecture;
-- -*- coding: latin-1; -*-
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2486.vhd,v 1.2 2001-10-26 16:29:48 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c07s03b03x00p02n01i02486ent IS
END c07s03b03x00p02n01i02486ent;
ARCHITECTURE c07s03b03x00p02n01i02486arch OF c07s03b03x00p02n01i02486ent IS
BEGIN
TESTING: PROCESS
function check return boolean is
begin
return false;
end;
variable q: boolean ;
BEGIN
q := check;
assert NOT(q=FALSE)
report "***PASSED TEST: c07s03b03x00p02n01i02486"
severity NOTE;
assert (q=FALSE)
report "***FAILED TEST: c07s03b03x00p02n01i02486 - The function call consists of a function name and (optionally) an actual parameter list enclosed with parentheses."
severity ERROR;
wait;
END PROCESS TESTING;
END c07s03b03x00p02n01i02486arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2486.vhd,v 1.2 2001-10-26 16:29:48 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c07s03b03x00p02n01i02486ent IS
END c07s03b03x00p02n01i02486ent;
ARCHITECTURE c07s03b03x00p02n01i02486arch OF c07s03b03x00p02n01i02486ent IS
BEGIN
TESTING: PROCESS
function check return boolean is
begin
return false;
end;
variable q: boolean ;
BEGIN
q := check;
assert NOT(q=FALSE)
report "***PASSED TEST: c07s03b03x00p02n01i02486"
severity NOTE;
assert (q=FALSE)
report "***FAILED TEST: c07s03b03x00p02n01i02486 - The function call consists of a function name and (optionally) an actual parameter list enclosed with parentheses."
severity ERROR;
wait;
END PROCESS TESTING;
END c07s03b03x00p02n01i02486arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2486.vhd,v 1.2 2001-10-26 16:29:48 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c07s03b03x00p02n01i02486ent IS
END c07s03b03x00p02n01i02486ent;
ARCHITECTURE c07s03b03x00p02n01i02486arch OF c07s03b03x00p02n01i02486ent IS
BEGIN
TESTING: PROCESS
function check return boolean is
begin
return false;
end;
variable q: boolean ;
BEGIN
q := check;
assert NOT(q=FALSE)
report "***PASSED TEST: c07s03b03x00p02n01i02486"
severity NOTE;
assert (q=FALSE)
report "***FAILED TEST: c07s03b03x00p02n01i02486 - The function call consists of a function name and (optionally) an actual parameter list enclosed with parentheses."
severity ERROR;
wait;
END PROCESS TESTING;
END c07s03b03x00p02n01i02486arch;
|
LIBRARY ieee ;
USE ieee.std_logic_1164.all;
ENTITY counter IS
GENERIC(n: integer);
PORT ( clock: IN STD_LOGIC;
q: OUT STD_LOGIC_VECTOR(n-1 downto 0));
END counter;
ARCHITECTURE behavior OF counter IS
component jk_ff
PORT ( clock: IN STD_LOGIC;
j: IN STD_LOGIC;
k: IN STD_LOGIC;
reset: IN STD_LOGIC;
q: OUT STD_LOGIC;
q_neg: OUT STD_LOGIC);
end component;
SIGNAL count: STD_LOGIC_VECTOR(n-1 downto 0);
SIGNAL count_neg: STD_LOGIC_VECTOR( n-1 downto 0);
BEGIN
count0: jk_ff port map (clock, '1', '1', '0', count(0), count_neg(0));
basis: for K in 1 to n-1 generate
countX: jk_ff port map (clock, count(K-1), count(K-1), '0', count(K), count_neg(K));
end generate basis;
q <= count(n-1 downto 0);
END behavior; |
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_arith.all;
use ieee.std_logic_unsigned.all;
entity ethtx is
generic(
HEAD_AWIDTH : natural := 5;
BUFF_AWIDTH : natural := 5;
FIFO_AWIDTH : natural := 2;
RD_CYCLE : natural := 1;
RD_DELAY : natural := 1;
RAM_AWIDTH : natural := 32
);
port (
clk : in std_logic;
zcpsm_clk : in std_logic;
reset : in std_logic;
txclk : in std_logic;
txd : out std_logic_vector(3 downto 0);
txen : out std_logic;
eth_ce : in std_logic;
eth_port_id : in std_logic_vector(3 downto 0);
eth_write_strobe : in std_logic;
eth_out_port : in std_logic_vector(7 downto 0);
eth_read_strobe : in std_logic;
eth_in_port : out std_logic_vector(7 downto 0);
db_ce : in std_logic;
db_port_id : in std_logic_vector(3 downto 0);
db_write_strobe : in std_logic;
db_out_port : in std_logic_vector(7 downto 0);
db_read_strobe : in std_logic;
db_in_port : out std_logic_vector(7 downto 0);
-- ram_raddr : out std_logic_vector(23 downto 0);
ram_raddr : out std_logic_vector(RAM_AWIDTH - 1 downto 0);
-- ram_rdata : in std_logic_vector(7 downto 0);
ram_rdata : in std_logic_vector(15 downto 0);
-- local time --
localtime : in std_logic_vector(31 downto 0)
);
end entity;
architecture arch_ethtx of ethtx is
component ethtx_output
generic(
HEAD_AWIDTH : NATURAL := 5;
BUFF_AWIDTH : NATURAL := 5;
RAM_AWIDTH : NATURAL := 32
);
port(
clk : in std_logic;
reset : in std_logic;
txclk : in std_logic;
txd : out std_logic_vector(3 downto 0);
txen : out std_logic;
tx_queue_empty : in std_logic;
tx_head_raddr : out std_logic_vector((HEAD_AWIDTH-1) downto 0);
tx_head_rdata : in std_logic_vector(7 downto 0);
tx_head_rd_block : out std_logic;
db_queue_empty : in std_logic;
db_head_raddr : out std_logic_vector((HEAD_AWIDTH-1) downto 0);
db_head_rdata : in std_logic_vector(7 downto 0);
db_head_rd_block : out std_logic;
buff_raddr : out std_logic_vector((BUFF_AWIDTH-1) downto 0);
buff_rdata : in std_logic_vector(7 downto 0);
dma_start : out std_logic;
-- dma_start_addr : out std_logic_vector(23 downto 0);
dma_start_addr : out std_logic_vector(RAM_AWIDTH - 1 downto 0);
dma_length : out std_logic_vector(15 downto 0);
dma_step : out std_logic_vector(7 downto 0);
-- local time --
localtime: in std_logic_vector(31 downto 0)
);
end component;
component Tx_queue
generic(
HEAD_AWIDTH : NATURAL := 5;
FIFO_AWIDTH : NATURAL := 2;
RAM_TYPE : STRING := "DIS_RAM");
port(
clk : in std_logic;
reset : in std_logic;
queue_empty : out std_logic;
head_raddr : in std_logic_vector((HEAD_AWIDTH-1) downto 0);
head_rdata : out std_logic_vector(7 downto 0);
head_rd_block : in std_logic;
zcpsm_clk : in std_logic;
zcpsm_ce : in std_logic;
zcpsm_port_id : in std_logic_vector(3 downto 0);
zcpsm_write_strobe : in std_logic;
zcpsm_out_port : in std_logic_vector(7 downto 0);
zcpsm_read_strobe : in std_logic;
zcpsm_in_port : out std_logic_vector(7 downto 0));
end component;
component disdram
generic(
depth : INTEGER;
Dwidth : INTEGER;
Awidth : INTEGER);
port(
A : in std_logic_vector((Awidth-1) downto 0);
CLK : in std_logic;
D : in std_logic_vector((Dwidth-1) downto 0);
WE : in std_logic;
DPRA : in std_logic_vector((Awidth-1) downto 0);
DPO : out std_logic_vector((Dwidth-1) downto 0);
QDPO : out std_logic_vector((Dwidth-1) downto 0));
end component;
component dma_ctrl
generic(
DWIDTH : NATURAL;
RD_CYCLE : NATURAL;
RD_DELAY : NATURAL;
RAM_AWIDTH : NATURAL
);
port(
clk : in std_logic;
reset : in std_logic;
ena : in std_logic;
start : in std_logic;
length : in std_logic_vector(15 downto 0);
start_waddr : in std_logic_vector(RAM_AWIDTH - 1 downto 0);
-- start_raddr : in std_logic_vector(23 downto 0);
start_raddr : in std_logic_vector(RAM_AWIDTH - 1 downto 0);
wstep : in std_logic_vector(7 downto 0);
rstep : in std_logic_vector(7 downto 0);
busy : out std_logic;
-- raddr : out std_logic_vector(23 downto 0);
raddr : out std_logic_vector(RAM_AWIDTH - 1 downto 0);
rdata : in std_logic_vector((DWIDTH-1) downto 0);
wren : out std_logic;
waddr : out std_logic_vector(RAM_AWIDTH - 1 downto 0);
wdata : out std_logic_vector((DWIDTH-1) downto 0));
end component;
signal tx_queue_empty : std_logic;
signal tx_head_raddr : std_logic_vector(HEAD_AWIDTH - 1 downto 0);
signal tx_head_rdata : std_logic_vector(7 downto 0);
signal tx_head_rd_block : std_logic;
signal db_queue_empty : std_logic;
signal db_head_raddr : std_logic_vector(HEAD_AWIDTH - 1 downto 0);
signal db_head_rdata : std_logic_vector(7 downto 0);
signal db_head_rd_block : std_logic;
signal buff_raddr : std_logic_vector(BUFF_AWIDTH - 1 downto 0);
signal buff_rdata : std_logic_vector(7 downto 0);
signal buff_wren : std_logic;
signal buff_waddr : std_logic_vector(BUFF_AWIDTH - 1 downto 0);
signal buff_wdata : std_logic_vector(7 downto 0);
signal dma_length : std_logic_vector(15 downto 0);
-- signal dma_start_raddr : std_logic_vector(23 downto 0);
signal dma_start_raddr : std_logic_vector(RAM_AWIDTH - 1 downto 0);
signal dma_rstep : std_logic_vector(7 downto 0);
signal dma_start : std_logic;
signal dma_busy : std_logic;
-- signal dma_raddr : std_logic_vector(23 downto 0);
signal dma_raddr : std_logic_vector(RAM_AWIDTH - 1 downto 0);
-- signal dma_rdata : std_logic_vector(7 downto 0);
signal dma_rdata : std_logic_vector(15 downto 0);
signal dma_wdata_word : std_logic_vector(15 downto 0);
signal dma_length_word : std_logic_vector(15 downto 0);
signal dma_waddr_word : std_logic_vector(RAM_AWIDTH - 1 downto 0);
signal dma_wren_word : std_logic;
signal flag : std_logic;
signal buff_waddr_reg : std_logic_vector(RAM_AWIDTH - 1 downto 0);
signal buff_wdata_reg : std_logic_vector(15 downto 0);
signal dma_wren_reg : std_logic;
-- signal dma_wren : std_logic;
-- signal dma_waddr : std_logic_vector(RAM_AWIDTH - 1 downto 0);
-- signal dma_wdata : std_logic_vector(7 downto 0);
signal dma_ena : std_logic;
signal buff_wr_diff : std_logic_vector(BUFF_AWIDTH - 1 downto 0);
begin
u_output : ethtx_output
generic map(
HEAD_AWIDTH => HEAD_AWIDTH,
BUFF_AWIDTH => BUFF_AWIDTH,
RAM_AWIDTH => RAM_AWIDTH
)
port map(
clk => clk,
reset => reset,
txclk => txclk,
txd => txd,
txen => txen,
tx_queue_empty => tx_queue_empty,
tx_head_raddr => tx_head_raddr,
tx_head_rdata => tx_head_rdata,
tx_head_rd_block => tx_head_rd_block,
db_queue_empty => db_queue_empty,
db_head_raddr => db_head_raddr,
db_head_rdata => db_head_rdata,
db_head_rd_block => db_head_rd_block,
buff_raddr => buff_raddr,
buff_rdata => buff_rdata,
dma_start => dma_start,
dma_start_addr => dma_start_raddr,
dma_length => dma_length,
dma_step => dma_rstep,
-- local time
localtime => localtime
);
u_db_queue : Tx_queue
generic map(
HEAD_AWIDTH => HEAD_AWIDTH,
FIFO_AWIDTH => 0,
RAM_TYPE => "DIS_RAM"
)
port map(
clk => clk,
reset => reset,
queue_empty => db_queue_empty,
head_raddr => db_head_raddr,
head_rdata => db_head_rdata,
head_rd_block => db_head_rd_block,
zcpsm_clk => zcpsm_clk,
zcpsm_ce => db_ce,
zcpsm_port_id => db_port_id,
zcpsm_write_strobe => db_write_strobe,
zcpsm_out_port => db_out_port,
zcpsm_read_strobe => db_read_strobe,
zcpsm_in_port => db_in_port
);
u_tx_queue : Tx_queue
generic map(
HEAD_AWIDTH => HEAD_AWIDTH,
FIFO_AWIDTH => FIFO_AWIDTH,
RAM_TYPE => "DIS_RAM"
)
port map(
clk => clk,
reset => reset,
queue_empty => tx_queue_empty,
head_raddr => tx_head_raddr,
head_rdata => tx_head_rdata,
head_rd_block => tx_head_rd_block,
zcpsm_clk => zcpsm_clk,
zcpsm_ce => eth_ce,
zcpsm_port_id => eth_port_id,
zcpsm_write_strobe => eth_write_strobe,
zcpsm_out_port => eth_out_port,
zcpsm_read_strobe => eth_read_strobe,
zcpsm_in_port => eth_in_port
);
u_tx_buffer : disdram
generic map(
DEPTH => 2 ** BUFF_AWIDTH,
AWIDTH => BUFF_AWIDTH,
DWIDTH => 8
)
port map(
A => buff_waddr(BUFF_AWIDTH - 1 downto 0),
CLK => clk,
D => buff_wdata,
WE => buff_wren,
DPRA => buff_raddr(BUFF_AWIDTH - 1 downto 0),
DPO => buff_rdata,
QDPO => open
);
u_dma : dma_ctrl
generic map(
DWIDTH => 16,
RD_CYCLE => RD_CYCLE,
RD_DELAY => RD_DELAY,
RAM_AWIDTH => RAM_AWIDTH
)
port map(
clk => clk,
reset => reset,
ena => dma_ena,
start => dma_start,
length => dma_length_word,
start_waddr => (others => '0'),
start_raddr => dma_start_raddr,
wstep => X"01",
rstep => dma_rstep,
busy => dma_busy,
raddr => dma_raddr,
rdata => dma_rdata,
wren => dma_wren_word,
waddr => dma_waddr_word,
wdata => dma_wdata_word
);
----------
dma_length_word <= '0'&dma_length(15 downto 1);
--- process(reset, clk)
---- begin
-- if reset = '1' then
--- wren_byte <= '0';
-- elsif rising_edge(clk) then
-- if dma_wren_byte = '1' then
-- wren_byte <= dma_wren_byte;
-- buff_waddr <= dma_waddr_byte(BUFF_AWIDTH - 1 downto 1)&'0';
-- buff_wdata <= dma_wdata_byte(7 downto 0);
-- elsif flag = '1' then
-- buff_waddr <= dma_waddr_byte(BUFF_AWIDTH - 1 downto 1)&'1';
-- buff_wdata <= dma_wdata_byte(15 downto 8);
-- end if;
-- end if;
-- end process;
process(reset, clk)
begin
if reset = '1' then
buff_waddr_reg <= (others => '0');
buff_wdata_reg <= (others => '0');
dma_wren_reg <= '0';
elsif rising_edge(clk) then
if dma_wren_word = '1' then
buff_waddr_reg <= dma_waddr_word;
buff_wdata_reg <= dma_wdata_word;
end if;
dma_wren_reg <= dma_wren_word;
end if;
end process;
buff_waddr <= buff_waddr_reg(BUFF_AWIDTH - 2 downto 0)&'0' when dma_wren_reg = '1' else
buff_waddr_reg(BUFF_AWIDTH - 2 downto 0)&'1' ;
buff_wdata <= buff_wdata_reg(7 downto 0) when dma_wren_reg = '1' else
buff_wdata_reg(15 downto 8);
process(reset, clk)
begin
if reset = '1' then
flag <= '0';
elsif rising_edge(clk) then
-- if wren_byte = '1' then
flag <= dma_wren_reg;
-- end if;
end if;
end process;
buff_wren <= flag or dma_wren_reg;
ram_raddr <= dma_raddr;
dma_rdata <= ram_rdata;
-- buff_wren <= dma_wren;
-- buff_waddr <= dma_waddr(BUFF_AWIDTH - 1 downto 0);
-- buff_wdata <= dma_wdata;
buff_wr_diff <= buff_waddr - buff_raddr;
p_dma_ena : process(clk, reset)
begin
if reset = '1' then
dma_ena <= '1';
elsif rising_edge(clk) then
if buff_wr_diff >= 2 ** BUFF_AWIDTH - RD_CYCLE - RD_DELAY - 4 then
dma_ena <= '0';
elsif buff_wr_diff <= RD_CYCLE + RD_DELAY + 2 then
dma_ena <= '1';
end if;
end if;
end process;
end arch_ethtx;
|
----------------------------------------------------------------------------------
-- Creation Date: 21:12:48 05/06/2010
-- Module Name: RS232/UART Interface - Behavioral
-- Used TAB of 4 Spaces
----------------------------------------------------------------------------------
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
use IEEE.STD_LOGIC_ARITH.ALL;
use IEEE.STD_LOGIC_UNSIGNED.ALL;
entity uart is
generic (
CLK_FREQ : integer := 50; -- Main frequency (MHz)
SER_FREQ : integer := 9600 -- Baud rate (bps)
);
port (
-- Control
clk : in std_logic; -- Main clock
rst : in std_logic; -- Main reset
-- External Interface
rx : in std_logic; -- RS232 received serial data
-- uPC Interface
rx_ready : out std_logic; -- Received data ready to uPC read
rx_data : out std_logic_vector(7 downto 0) -- Received data
);
end uart;
architecture Behavioral of uart is
-- Constants
constant UART_IDLE : std_logic := '1';
constant UART_START : std_logic := '0';
constant RST_LVL : std_logic := '0';
-- Types
type state is (idle,data); -- Stop1 and Stop2 are inter frame gap signals
-- RX Signals
signal rx_fsm : state; -- Control of reception
signal rx_clk_en : std_logic; -- Received clock enable
signal rx_rcv_init : std_logic; -- Start of reception
signal rx_data_deb : std_logic; -- Debounce RX data
signal rx_data_tmp : std_logic_vector(7 downto 0); -- Serial to parallel converter
signal rx_data_cnt : std_logic_vector(2 downto 0); -- Count received bits
begin
rx_debounceer:process(clk) --controle que estabiliza
variable deb_buf : std_logic_vector(3 downto 0);
begin
if clk'event and clk = '1' then
-- Debounce logic
if deb_buf = "0000" then
rx_data_deb <= '0';
elsif deb_buf = "1111" then
rx_data_deb <= '1';
end if;
-- Data storage to debounce
deb_buf := deb_buf(2 downto 0) & rx;
end if;
end process;
rx_start_detect:process(clk)
variable rx_data_old : std_logic;
begin
if clk'event and clk = '1' then
-- Falling edge detection
if rx_data_old = '1' and rx_data_deb = '0' and rx_fsm = idle then
rx_rcv_init <= '1';
else
rx_rcv_init <= '0';
end if;
-- Default assignments
rx_data_old := rx_data_deb;
-- Reset condition
if rst = RST_LVL then
rx_data_old := '0';
rx_rcv_init <= '0';
end if;
end if;
end process;
rx_clk_gen:process(clk)
variable counter : integer range 0 to conv_integer((CLK_FREQ*1_000_000)/SER_FREQ-1);
begin
if clk'event and clk = '1' then
-- Normal Operation
if counter = (CLK_FREQ*1_000_000)/SER_FREQ-1 or rx_rcv_init = '1' then
rx_clk_en <= '1';
counter := 0;
else
rx_clk_en <= '0';
counter := counter + 1;
end if;
-- Reset condition
if rst = RST_LVL then
rx_clk_en <= '0';
counter := 0;
end if;
end if;
end process;
rx_proc:process(clk)
begin
if clk'event and clk = '1' then
-- Default values
rx_ready <= '0';
-- Enable on UART rate
if rx_clk_en = '1' then
-- FSM description
case rx_fsm is
-- Wait to transfer data
when idle =>
if rx_data_deb = UART_START then
rx_fsm <= data;
end if;
rx_data_cnt <= (others=>'0');
-- Data receive
when data =>
if rx_data_cnt = 7 then
-- Data path
rx_data(7) <= rx;
for i in 0 to 6 loop
rx_data(i) <= rx_data_tmp(6-i);
end loop;
rx_ready <= '1';
rx_fsm <= idle;
end if;
rx_data_tmp <= rx_data_tmp(6 downto 0) & rx;
rx_data_cnt <= rx_data_cnt + 1;
when others => null;
end case;
-- Reset condition
if rst = RST_LVL then
rx_fsm <= idle;
rx_ready <= '0';
rx_data <= (others=>'0');
rx_data_tmp <= (others=>'0');
rx_data_cnt <= (others=>'0');
end if;
end if;
end if;
end process;
end Behavioral;
|
-------------------------------------------------------------------
-- (c) Copyright 1984 - 2013 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
-------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Filename: ipic_if.vhd
-- Description: IPIC Interface
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-- Structure:
-- emc.vhd
-- -- ipic_if.vhd
-- -- addr_counter_mux.vhd
-- -- counters.vhd
-- -- select_param.vhd
-- -- mem_state_machine.vhd
-- -- mem_steer.vhd
-- -- io_registers.vhd
-------------------------------------------------------------------------------
-- Author: NSK
-- History:
-- NSK 02/01/08 First Version
-- ^^^^^^^^^^
-- This file is same as in version v3_01_c - no change in the logic of this
-- module. Deleted the history from version v3_01_c.
-- ~~~~~~
-- NSK 05/08/08 version v3_00_a
-- ^^^^^^^^
-- 1. This file is same as in version v3_02_a.
-- 2. Upgraded to version v3.00.a to have proper versioning to fix CR #472164.
-- 3. No change in design.
-- ~~~~~~~~
-- ^^^^^^^^
-- KSB 08/08/08 version v4_00_a
-- 1. This file is same as in version v3_00_a.
-- 2. Upgraded to version v4.00.a
-- ~~~~~~~~
-- SK 10/07/10
-- ^^^^^^^^
-- 1. Added "clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
--(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
-- else
--'0' ;
-- 2. condition for "clear_pend_wrreq". This is similar to "clear_pend_rdreq" .
-- ~~~~~~~~
-- SK 25/10/10
-- ^^^^^^^^
-- 1. Registered IP2bus_RdAck and IP2Bus_Data signals.
-- ~~~~~~~~
-- SK 24/11/10
-- ^^^^^^^^
-- 1. Added "Bus2IP_RdReq_emc = '0'" signal to reset the RDREQ_PROCESS.
-- ~~~~~~~~
-- SK 02/11/11 version v5_02_a
-- ^^^^^^^^
-- 1. Fixed CR#595758 and CR#606038
-- ~~~~~~~~
-- ~~~~~~
-- Sateesh 2011
-- ^^^^^^
-- -- Added Sync burst support for the Numonyx flash during read
-- ~~~~~~
-- ~~~~~~
-- SK 10/20/12
-- ^^^^^^
-- -- Fixed CR 672770 - BRESP signal is driven X during netlist simulation
-- -- Fixed CR 673491 - Flash transactions generates extra read cycle after the actual reads are over
-- ~~~~~~
-------------------------------------------------------------------------------
-- Naming Conventions:
-- active low signals: "*_n"
-- clock signals: "clk", "clk_div#", "clk_#x"
-- reset signals: "rst", "rst_n"
-- generics: "C_*"
-- user defined types: "*_TYPE"
-- state machine next state: "*_ns"
-- state machine current state: "*_cs"
-- combinatorial signals: "*_cmb"
-- pipelined or register delay signals: "*_d#"
-- counter signals: "*cnt*"
-- clock enable signals: "*_ce"
-- internal version of output port "*_i"
-- device pins: "*_pin"
-- ports: - Names begin with Uppercase
-- processes: "*_PROCESS"
-- component instantiations: "<ENTITY_>I_<#|FUNC>
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_arith.all;
use ieee.std_logic_misc.all;
use ieee.std_logic_unsigned.all;
use ieee.numeric_std.all;
-------------------------------------------------------------------------------
library emc_common_v3_0;
-------------------------------------------------------------------------------
-- vcomponents package of the unisim library is used for the FDR component
-- declaration
-------------------------------------------------------------------------------
library unisim;
use unisim.vcomponents.all;
-------------------------------------------------------------------------------
-- Definition of Generics:
-- C_NUM_BANKS_MEM -- Number of Memory Banks
-- C_IPIF_DWIDTH -- Processor Data Bus Width
--
-- Definition of Ports:
-- Bus2IP_RNW -- Processor read not write (1=Read, 0=Write)
-- Bus2IP_Mem_CS -- Memory Channel Chip Select
-- Mem2Bus_RdAddrAck -- Memory Read Cycle Address Acknowledge
-- Mem2Bus_WrAddrAck -- Memory Write Cycle Address Acknowledge
-- Mem2Bus_RdAck -- Memory Read Cycle Acknowledge
-- Mem2Bus_WrAck -- Memory Write Cycle Acknowledge
-- Mem2Bus_Data -- Memory Read Data
-- Bus2Mem_RdReq -- Read request was seen by mem_state_machine
-- Bus2Mem_WrReq -- Write request was seen by mem_state_machine
-- Bus2Mem_CS -- Memory is being accessed
-- IP2Bus_Data -- Read data from memory device or register
-- IP2Bus_errAck -- Error acknowledge
-- IP2Bus_retry -- Retry indicator
-- IP2Bus_toutSup -- Suppress watch dog timer
-- IP2Bus_RdAck -- Read acknowledge
-- IP2Bus_WrAck -- Write acknowledge
-- IP2Bus_AddrAck -- Address acknowledge
-- Burst_length -- Count of current burst length
-- Transaction_done -- Operation complete indication for current
-- -- transaction
-- Bus2IP_Clk -- System clock
-- Bus2IP_Reset -- System Reset
-------------------------------------------------------------------------------
-- Port declarations
-------------------------------------------------------------------------------
entity ipic_if is
generic (
C_NUM_BANKS_MEM : integer := 2;
C_IPIF_DWIDTH : integer := 64
);
port (
Bus2IP_Clk : in std_logic;
Bus2IP_Reset : in std_logic;
Bus2IP_RNW : in std_logic;
Bus2IP_Mem_CS : in std_logic_vector(0 to C_NUM_BANKS_MEM-1);
Mem2Bus_RdAddrAck : in std_logic;
Mem2Bus_WrAddrAck : in std_logic;
Mem2Bus_RdAck : in std_logic;
Mem2Bus_WrAck : in std_logic;
Bus2IP_WrReq : in std_logic;
Bus2IP_RdReq : in std_logic;
Mem2Bus_Data : in std_logic_vector(0 to C_IPIF_DWIDTH - 1);
Bus2IP_Burst : in std_logic;
Bus2IP_RdReq_emc : in std_logic;
Bus2IP_WrReq_emc : in std_logic;
Bus2Mem_CS : out std_logic;
Bus2Mem_RdReq : out std_logic;
Bus2Mem_WrReq : out std_logic;
Parity_err : in std_logic;
IP2Bus_Data : out std_logic_vector(0 to C_IPIF_DWIDTH - 1);
IP2Bus_errAck : out std_logic;
IP2Bus_retry : out std_logic;
IP2Bus_toutSup : out std_logic;
IP2Bus_RdAck : out std_logic;
IP2Bus_WrAck : out std_logic;
IP2Bus_AddrAck : out std_logic;
Type_of_xfer : in std_logic;
Burst_length : in std_logic_vector(0 to 7);
Transaction_done : in std_logic;
single_transaction : in std_logic ;
last_burst_cnt : out std_logic;
pr_state_wait_temp_cmb : in std_logic;
synch_mem : in std_logic; -- 10-12-2012
mem_width_bytes : in std_logic_vector(0 to 3);
stop_oen : out std_logic;
axi_trans_size_reg : in std_logic_vector(1 downto 0); -- 1/3/2013
Linear_flash_brst_rd_flag : in std_logic -- 1/28/2013
);
end entity ipic_if;
-------------------------------------------------------------------------------
-- Architecture section
-------------------------------------------------------------------------------
architecture imp of ipic_if is
----------------------------------------------------------------------------------
-- below attributes are added to reduce the synth warnings in Vivado tool
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of imp : architecture is "yes";
----------------------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Constant Declaration
-------------------------------------------------------------------------------
constant BURST_CNT_WIDTH : integer := 8;
constant ZERO_CNT : std_logic_vector(0 to BURST_CNT_WIDTH -1)
:= (others=>'0');
-------------------------------------------------------------------------------
-- Signal Declaration
-------------------------------------------------------------------------------
signal bus2mem_cs_i : std_logic;
signal burst_cnt_en : std_logic;
signal burst_cnt_ld_cmb : std_logic;
signal pend_wrreq : std_logic;
signal set_pend_wrreq : std_logic;
signal clear_pend_wrreq : std_logic;
signal pend_rdreq : std_logic;
signal set_pend_rdreq : std_logic;
signal clear_pend_rdreq : std_logic;
signal burst_cnt_i : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal int_wrreq : std_logic;
signal int_rdreq : std_logic;
---remove this signal once fix is made to ipif
signal burst_length_i :std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal bus2ip_mem_cs_reg :std_logic;--_vector(0 to C_NUM_BANKS_MEM-1);
signal IP2Bus_AddrAck_d1 :std_logic;
signal burst_rst :std_logic;
signal stop_init_rd :std_logic;
signal reload_address :std_logic;
signal reload_req :std_logic;
signal IP2Bus_WrAck_i :std_logic;
signal IP2Bus_AddrAck_i :std_logic;
signal IP2Bus_RdAck_i :std_logic;
signal reset_fifo :std_logic;
signal burst_cnt_i_rdack : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal diff_addr_rd_ack : std_logic;
signal burst_cnt_en_rdack: std_logic;
signal first_rd_ack : std_logic;
signal rd_ack_d1 : std_logic;
signal Bus2Mem_RdReq_int : std_logic;
signal bus2Mem_CS_reduce_reg : std_logic;
signal pr_state_wait_temp_reg: std_logic;
signal rd_cnt : std_logic_vector(3 downto 0);
signal stop_oen_int : std_logic;
-- signal stop_oen : std_logic;
-------------------------------------------------------------------------------
-- Begin architecture
-------------------------------------------------------------------------------
begin -- architecture IMP
---------------------------------------------------------------------------
-- IPIC
---------------------------------------------------------------------------
burst_length_i <= Burst_length(0 to BURST_CNT_WIDTH - 1);
bus2Mem_CS_i <= or_reduce(Bus2IP_Mem_CS); -- (bus2IP_Mem_CS_reg); -- 1/3/2013
Bus2Mem_CS <= bus2Mem_CS_i;
IP2Bus_errAck <= (Parity_err or (not Type_of_xfer)) and
bus2Mem_CS_i;
IP2Bus_retry <= '0';
IP2Bus_toutSup <= bus2Mem_CS_i;
--IP2Bus_Data <= Mem2Bus_Data;
int_wrreq <= Bus2IP_WrReq and bus2Mem_CS_i;
int_rdreq <= Bus2IP_RdReq and bus2Mem_CS_i;
---------------------------------------------------------------------------
-- Register the Bus2IP_Mem_CS
---------------------------------------------------------------------------
CS_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2IP_Mem_CS_reg <= '0';--(others=>'0');
pr_state_wait_temp_reg <= '0';
else
bus2IP_Mem_CS_reg <= or_reduce(Bus2IP_Mem_CS);
pr_state_wait_temp_reg <= pr_state_wait_temp_cmb;
end if;
end if;
end process CS_REG_PROCESS;
ONE_HOT_CS_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2Mem_CS_reduce_reg <= '0';
else
bus2Mem_CS_reduce_reg <= bus2Mem_CS_i;
end if;
end if;
end process ONE_HOT_CS_PROCESS;
---------------------------------------------------------------------------
-- Register the acks signals
---------------------------------------------------------------------------
ACK_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
IP2Bus_Data <= (others => '0');
IP2Bus_RdAck <= '0';
else
IP2Bus_Data <= Mem2Bus_Data;
IP2Bus_RdAck <= Mem2Bus_RdAck and (Bus2Mem_RdReq_int or
single_transaction or
Linear_flash_brst_rd_flag);
end if;
end if;
end process ACK_REG_PROCESS;
IP2Bus_WrAck <= Mem2Bus_WrAck;
IP2Bus_AddrAck <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
---------------------------------------------------------------------------
-- Burst length counter instantiation
---------------------------------------------------------------------------
BURST_CNT: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en
);
---------------------------------------------------------------------------
-- Burst length counter instantiation -- For Read Ack
---------------------------------------------------------------------------
BURST_CNT_RDACK: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i_rdack,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en_rdack
);
burst_cnt_en_rdack <= (diff_addr_rd_ack and Mem2Bus_RdAck);
diff_addr_rd_ack <= or_reduce(burst_cnt_i xor burst_cnt_i_rdack);
---------------------------------------------------------------------------
-- Burst length counter control signals
---------------------------------------------------------------------------
burst_cnt_en <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
burst_cnt_ld_cmb <= not(bus2Mem_CS_reduce_reg) and bus2Mem_CS_i;
reset_fifo <= Bus2IP_Reset or (not bus2Mem_CS_i);
last_burst_cnt <= not (or_reduce(burst_cnt_i));
---------------------------------------------------------------------------
-- Generation of pend_wrreq
---------------------------------------------------------------------------
set_pend_wrreq <= (not pend_wrreq) and Transaction_done and int_wrreq;
clear_pend_wrreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_WrAddrAck = '1'))or bus2Mem_CS_i = '0' else
'0' ;
WRREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_wrreq <= '0';
elsif set_pend_wrreq ='1' then
pend_wrreq <= '1';
--elsif clear_pend_wrreq = '1' then
elsif(Bus2IP_Burst = '0' and (Mem2Bus_WrAddrAck = '1')) or
(bus2Mem_CS_i = '0') then
pend_wrreq <= '0';
end if;
end if;
end process WRREQ_PROCESS;
Bus2Mem_WrReq <= (pend_wrreq and Bus2IP_WrReq);
---------------------------------------------------------------------------
-- Generation of pend_rdreq
---------------------------------------------------------------------------
set_pend_rdreq <= (not pend_rdreq) and Transaction_done
and int_rdreq;
clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
else
'0' ;
RDREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_rdreq <= '0';
elsif set_pend_rdreq = '1'then
pend_rdreq <= '1';
elsif clear_pend_rdreq = '1' then -- 1/3/2013
-- elsif ((Bus2IP_Burst = '0') and -- 1/3/2013
-- (Mem2Bus_RdAddrAck = '1') and -- 1/3/2013
-- (Bus2IP_RdReq_emc = '0')) or -- 1/3/2013
-- (bus2Mem_CS_i = '0') then -- 1/3/2013
pend_rdreq <= '0';
end if;
end if;
end process RDREQ_PROCESS;
Bus2Mem_RdReq_int <= (pend_rdreq and (Bus2IP_RdReq or (diff_addr_rd_ack and Synch_mem)))
when (single_transaction = '0' or Synch_mem = '1')
else
Bus2IP_RdReq;
Bus2Mem_RdReq <= Bus2Mem_RdReq_int;
-- 10-12-2012
RD_CNT_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Transaction_done = '1')then
rd_cnt <= (others => '0');
elsif diff_addr_rd_ack ='1' and Bus2IP_RdReq = '0' and stop_oen_int = '0' then
rd_cnt <= rd_cnt + 1;
end if;
end if;
end process RD_CNT_PROCESS;
-- stop_oen_int <= '1' when rd_cnt = "010" and mem_width_bytes = "0001" else -- 8 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0010" else -- 16 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0100" else -- 32 bit - reduced by 1 here
-- '0';
STOP_OEN_GEN_PROCESS: process(axi_trans_size_reg,
mem_width_bytes,
rd_cnt) is
variable mem_width_and_size : std_logic_vector(5 downto 0);
-----
begin
-----
mem_width_and_size := mem_width_bytes & axi_trans_size_reg;
case mem_width_and_size is
when "000100" => -- axi byte access for 8 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "000101" => -- axi HW access for 8 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "000110" => -- axi WORD access for 8 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
when "000111" => -- axi Double WORD access for 8 bit mem width
--if(rd_cnt = "1000")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(3);
--------------- for 16 bit mem width
when "001000" => -- axi byte access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001001" => -- axi HW access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001010" => -- axi WORD access for 16 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "001011" => -- axi DOUBLE WORD access for 16 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
--------------- for 32 bit mem width
when "010000" => -- axi byte access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010001" => -- axi HW access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010010" => -- axi WORD access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010011" => -- axi DPOUBLE WORD access for 32 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
--------------- for 64 bit mem width
when "100000" | -- axi byte access for 64 bit mem width
"100001" | -- axi HW access for 64 bit mem width
"100010" | -- axi WORD access for 64 bit mem width
"100011" =>-- axi DOUBLE WORD access for 64 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
---------------
when others => stop_oen_int <= '0';
end case;
end process STOP_OEN_GEN_PROCESS;
stop_oen <= stop_oen_int;
end imp;
-------------------------------------------------------------------------------
-- End of File ipic_if.vhd
-------------------------------------------------------------------------------
|
-------------------------------------------------------------------
-- (c) Copyright 1984 - 2013 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
-------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Filename: ipic_if.vhd
-- Description: IPIC Interface
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-- Structure:
-- emc.vhd
-- -- ipic_if.vhd
-- -- addr_counter_mux.vhd
-- -- counters.vhd
-- -- select_param.vhd
-- -- mem_state_machine.vhd
-- -- mem_steer.vhd
-- -- io_registers.vhd
-------------------------------------------------------------------------------
-- Author: NSK
-- History:
-- NSK 02/01/08 First Version
-- ^^^^^^^^^^
-- This file is same as in version v3_01_c - no change in the logic of this
-- module. Deleted the history from version v3_01_c.
-- ~~~~~~
-- NSK 05/08/08 version v3_00_a
-- ^^^^^^^^
-- 1. This file is same as in version v3_02_a.
-- 2. Upgraded to version v3.00.a to have proper versioning to fix CR #472164.
-- 3. No change in design.
-- ~~~~~~~~
-- ^^^^^^^^
-- KSB 08/08/08 version v4_00_a
-- 1. This file is same as in version v3_00_a.
-- 2. Upgraded to version v4.00.a
-- ~~~~~~~~
-- SK 10/07/10
-- ^^^^^^^^
-- 1. Added "clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
--(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
-- else
--'0' ;
-- 2. condition for "clear_pend_wrreq". This is similar to "clear_pend_rdreq" .
-- ~~~~~~~~
-- SK 25/10/10
-- ^^^^^^^^
-- 1. Registered IP2bus_RdAck and IP2Bus_Data signals.
-- ~~~~~~~~
-- SK 24/11/10
-- ^^^^^^^^
-- 1. Added "Bus2IP_RdReq_emc = '0'" signal to reset the RDREQ_PROCESS.
-- ~~~~~~~~
-- SK 02/11/11 version v5_02_a
-- ^^^^^^^^
-- 1. Fixed CR#595758 and CR#606038
-- ~~~~~~~~
-- ~~~~~~
-- Sateesh 2011
-- ^^^^^^
-- -- Added Sync burst support for the Numonyx flash during read
-- ~~~~~~
-- ~~~~~~
-- SK 10/20/12
-- ^^^^^^
-- -- Fixed CR 672770 - BRESP signal is driven X during netlist simulation
-- -- Fixed CR 673491 - Flash transactions generates extra read cycle after the actual reads are over
-- ~~~~~~
-------------------------------------------------------------------------------
-- Naming Conventions:
-- active low signals: "*_n"
-- clock signals: "clk", "clk_div#", "clk_#x"
-- reset signals: "rst", "rst_n"
-- generics: "C_*"
-- user defined types: "*_TYPE"
-- state machine next state: "*_ns"
-- state machine current state: "*_cs"
-- combinatorial signals: "*_cmb"
-- pipelined or register delay signals: "*_d#"
-- counter signals: "*cnt*"
-- clock enable signals: "*_ce"
-- internal version of output port "*_i"
-- device pins: "*_pin"
-- ports: - Names begin with Uppercase
-- processes: "*_PROCESS"
-- component instantiations: "<ENTITY_>I_<#|FUNC>
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_arith.all;
use ieee.std_logic_misc.all;
use ieee.std_logic_unsigned.all;
use ieee.numeric_std.all;
-------------------------------------------------------------------------------
library emc_common_v3_0;
-------------------------------------------------------------------------------
-- vcomponents package of the unisim library is used for the FDR component
-- declaration
-------------------------------------------------------------------------------
library unisim;
use unisim.vcomponents.all;
-------------------------------------------------------------------------------
-- Definition of Generics:
-- C_NUM_BANKS_MEM -- Number of Memory Banks
-- C_IPIF_DWIDTH -- Processor Data Bus Width
--
-- Definition of Ports:
-- Bus2IP_RNW -- Processor read not write (1=Read, 0=Write)
-- Bus2IP_Mem_CS -- Memory Channel Chip Select
-- Mem2Bus_RdAddrAck -- Memory Read Cycle Address Acknowledge
-- Mem2Bus_WrAddrAck -- Memory Write Cycle Address Acknowledge
-- Mem2Bus_RdAck -- Memory Read Cycle Acknowledge
-- Mem2Bus_WrAck -- Memory Write Cycle Acknowledge
-- Mem2Bus_Data -- Memory Read Data
-- Bus2Mem_RdReq -- Read request was seen by mem_state_machine
-- Bus2Mem_WrReq -- Write request was seen by mem_state_machine
-- Bus2Mem_CS -- Memory is being accessed
-- IP2Bus_Data -- Read data from memory device or register
-- IP2Bus_errAck -- Error acknowledge
-- IP2Bus_retry -- Retry indicator
-- IP2Bus_toutSup -- Suppress watch dog timer
-- IP2Bus_RdAck -- Read acknowledge
-- IP2Bus_WrAck -- Write acknowledge
-- IP2Bus_AddrAck -- Address acknowledge
-- Burst_length -- Count of current burst length
-- Transaction_done -- Operation complete indication for current
-- -- transaction
-- Bus2IP_Clk -- System clock
-- Bus2IP_Reset -- System Reset
-------------------------------------------------------------------------------
-- Port declarations
-------------------------------------------------------------------------------
entity ipic_if is
generic (
C_NUM_BANKS_MEM : integer := 2;
C_IPIF_DWIDTH : integer := 64
);
port (
Bus2IP_Clk : in std_logic;
Bus2IP_Reset : in std_logic;
Bus2IP_RNW : in std_logic;
Bus2IP_Mem_CS : in std_logic_vector(0 to C_NUM_BANKS_MEM-1);
Mem2Bus_RdAddrAck : in std_logic;
Mem2Bus_WrAddrAck : in std_logic;
Mem2Bus_RdAck : in std_logic;
Mem2Bus_WrAck : in std_logic;
Bus2IP_WrReq : in std_logic;
Bus2IP_RdReq : in std_logic;
Mem2Bus_Data : in std_logic_vector(0 to C_IPIF_DWIDTH - 1);
Bus2IP_Burst : in std_logic;
Bus2IP_RdReq_emc : in std_logic;
Bus2IP_WrReq_emc : in std_logic;
Bus2Mem_CS : out std_logic;
Bus2Mem_RdReq : out std_logic;
Bus2Mem_WrReq : out std_logic;
Parity_err : in std_logic;
IP2Bus_Data : out std_logic_vector(0 to C_IPIF_DWIDTH - 1);
IP2Bus_errAck : out std_logic;
IP2Bus_retry : out std_logic;
IP2Bus_toutSup : out std_logic;
IP2Bus_RdAck : out std_logic;
IP2Bus_WrAck : out std_logic;
IP2Bus_AddrAck : out std_logic;
Type_of_xfer : in std_logic;
Burst_length : in std_logic_vector(0 to 7);
Transaction_done : in std_logic;
single_transaction : in std_logic ;
last_burst_cnt : out std_logic;
pr_state_wait_temp_cmb : in std_logic;
synch_mem : in std_logic; -- 10-12-2012
mem_width_bytes : in std_logic_vector(0 to 3);
stop_oen : out std_logic;
axi_trans_size_reg : in std_logic_vector(1 downto 0); -- 1/3/2013
Linear_flash_brst_rd_flag : in std_logic -- 1/28/2013
);
end entity ipic_if;
-------------------------------------------------------------------------------
-- Architecture section
-------------------------------------------------------------------------------
architecture imp of ipic_if is
----------------------------------------------------------------------------------
-- below attributes are added to reduce the synth warnings in Vivado tool
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of imp : architecture is "yes";
----------------------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Constant Declaration
-------------------------------------------------------------------------------
constant BURST_CNT_WIDTH : integer := 8;
constant ZERO_CNT : std_logic_vector(0 to BURST_CNT_WIDTH -1)
:= (others=>'0');
-------------------------------------------------------------------------------
-- Signal Declaration
-------------------------------------------------------------------------------
signal bus2mem_cs_i : std_logic;
signal burst_cnt_en : std_logic;
signal burst_cnt_ld_cmb : std_logic;
signal pend_wrreq : std_logic;
signal set_pend_wrreq : std_logic;
signal clear_pend_wrreq : std_logic;
signal pend_rdreq : std_logic;
signal set_pend_rdreq : std_logic;
signal clear_pend_rdreq : std_logic;
signal burst_cnt_i : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal int_wrreq : std_logic;
signal int_rdreq : std_logic;
---remove this signal once fix is made to ipif
signal burst_length_i :std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal bus2ip_mem_cs_reg :std_logic;--_vector(0 to C_NUM_BANKS_MEM-1);
signal IP2Bus_AddrAck_d1 :std_logic;
signal burst_rst :std_logic;
signal stop_init_rd :std_logic;
signal reload_address :std_logic;
signal reload_req :std_logic;
signal IP2Bus_WrAck_i :std_logic;
signal IP2Bus_AddrAck_i :std_logic;
signal IP2Bus_RdAck_i :std_logic;
signal reset_fifo :std_logic;
signal burst_cnt_i_rdack : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal diff_addr_rd_ack : std_logic;
signal burst_cnt_en_rdack: std_logic;
signal first_rd_ack : std_logic;
signal rd_ack_d1 : std_logic;
signal Bus2Mem_RdReq_int : std_logic;
signal bus2Mem_CS_reduce_reg : std_logic;
signal pr_state_wait_temp_reg: std_logic;
signal rd_cnt : std_logic_vector(3 downto 0);
signal stop_oen_int : std_logic;
-- signal stop_oen : std_logic;
-------------------------------------------------------------------------------
-- Begin architecture
-------------------------------------------------------------------------------
begin -- architecture IMP
---------------------------------------------------------------------------
-- IPIC
---------------------------------------------------------------------------
burst_length_i <= Burst_length(0 to BURST_CNT_WIDTH - 1);
bus2Mem_CS_i <= or_reduce(Bus2IP_Mem_CS); -- (bus2IP_Mem_CS_reg); -- 1/3/2013
Bus2Mem_CS <= bus2Mem_CS_i;
IP2Bus_errAck <= (Parity_err or (not Type_of_xfer)) and
bus2Mem_CS_i;
IP2Bus_retry <= '0';
IP2Bus_toutSup <= bus2Mem_CS_i;
--IP2Bus_Data <= Mem2Bus_Data;
int_wrreq <= Bus2IP_WrReq and bus2Mem_CS_i;
int_rdreq <= Bus2IP_RdReq and bus2Mem_CS_i;
---------------------------------------------------------------------------
-- Register the Bus2IP_Mem_CS
---------------------------------------------------------------------------
CS_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2IP_Mem_CS_reg <= '0';--(others=>'0');
pr_state_wait_temp_reg <= '0';
else
bus2IP_Mem_CS_reg <= or_reduce(Bus2IP_Mem_CS);
pr_state_wait_temp_reg <= pr_state_wait_temp_cmb;
end if;
end if;
end process CS_REG_PROCESS;
ONE_HOT_CS_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2Mem_CS_reduce_reg <= '0';
else
bus2Mem_CS_reduce_reg <= bus2Mem_CS_i;
end if;
end if;
end process ONE_HOT_CS_PROCESS;
---------------------------------------------------------------------------
-- Register the acks signals
---------------------------------------------------------------------------
ACK_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
IP2Bus_Data <= (others => '0');
IP2Bus_RdAck <= '0';
else
IP2Bus_Data <= Mem2Bus_Data;
IP2Bus_RdAck <= Mem2Bus_RdAck and (Bus2Mem_RdReq_int or
single_transaction or
Linear_flash_brst_rd_flag);
end if;
end if;
end process ACK_REG_PROCESS;
IP2Bus_WrAck <= Mem2Bus_WrAck;
IP2Bus_AddrAck <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
---------------------------------------------------------------------------
-- Burst length counter instantiation
---------------------------------------------------------------------------
BURST_CNT: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en
);
---------------------------------------------------------------------------
-- Burst length counter instantiation -- For Read Ack
---------------------------------------------------------------------------
BURST_CNT_RDACK: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i_rdack,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en_rdack
);
burst_cnt_en_rdack <= (diff_addr_rd_ack and Mem2Bus_RdAck);
diff_addr_rd_ack <= or_reduce(burst_cnt_i xor burst_cnt_i_rdack);
---------------------------------------------------------------------------
-- Burst length counter control signals
---------------------------------------------------------------------------
burst_cnt_en <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
burst_cnt_ld_cmb <= not(bus2Mem_CS_reduce_reg) and bus2Mem_CS_i;
reset_fifo <= Bus2IP_Reset or (not bus2Mem_CS_i);
last_burst_cnt <= not (or_reduce(burst_cnt_i));
---------------------------------------------------------------------------
-- Generation of pend_wrreq
---------------------------------------------------------------------------
set_pend_wrreq <= (not pend_wrreq) and Transaction_done and int_wrreq;
clear_pend_wrreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_WrAddrAck = '1'))or bus2Mem_CS_i = '0' else
'0' ;
WRREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_wrreq <= '0';
elsif set_pend_wrreq ='1' then
pend_wrreq <= '1';
--elsif clear_pend_wrreq = '1' then
elsif(Bus2IP_Burst = '0' and (Mem2Bus_WrAddrAck = '1')) or
(bus2Mem_CS_i = '0') then
pend_wrreq <= '0';
end if;
end if;
end process WRREQ_PROCESS;
Bus2Mem_WrReq <= (pend_wrreq and Bus2IP_WrReq);
---------------------------------------------------------------------------
-- Generation of pend_rdreq
---------------------------------------------------------------------------
set_pend_rdreq <= (not pend_rdreq) and Transaction_done
and int_rdreq;
clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
else
'0' ;
RDREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_rdreq <= '0';
elsif set_pend_rdreq = '1'then
pend_rdreq <= '1';
elsif clear_pend_rdreq = '1' then -- 1/3/2013
-- elsif ((Bus2IP_Burst = '0') and -- 1/3/2013
-- (Mem2Bus_RdAddrAck = '1') and -- 1/3/2013
-- (Bus2IP_RdReq_emc = '0')) or -- 1/3/2013
-- (bus2Mem_CS_i = '0') then -- 1/3/2013
pend_rdreq <= '0';
end if;
end if;
end process RDREQ_PROCESS;
Bus2Mem_RdReq_int <= (pend_rdreq and (Bus2IP_RdReq or (diff_addr_rd_ack and Synch_mem)))
when (single_transaction = '0' or Synch_mem = '1')
else
Bus2IP_RdReq;
Bus2Mem_RdReq <= Bus2Mem_RdReq_int;
-- 10-12-2012
RD_CNT_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Transaction_done = '1')then
rd_cnt <= (others => '0');
elsif diff_addr_rd_ack ='1' and Bus2IP_RdReq = '0' and stop_oen_int = '0' then
rd_cnt <= rd_cnt + 1;
end if;
end if;
end process RD_CNT_PROCESS;
-- stop_oen_int <= '1' when rd_cnt = "010" and mem_width_bytes = "0001" else -- 8 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0010" else -- 16 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0100" else -- 32 bit - reduced by 1 here
-- '0';
STOP_OEN_GEN_PROCESS: process(axi_trans_size_reg,
mem_width_bytes,
rd_cnt) is
variable mem_width_and_size : std_logic_vector(5 downto 0);
-----
begin
-----
mem_width_and_size := mem_width_bytes & axi_trans_size_reg;
case mem_width_and_size is
when "000100" => -- axi byte access for 8 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "000101" => -- axi HW access for 8 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "000110" => -- axi WORD access for 8 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
when "000111" => -- axi Double WORD access for 8 bit mem width
--if(rd_cnt = "1000")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(3);
--------------- for 16 bit mem width
when "001000" => -- axi byte access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001001" => -- axi HW access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001010" => -- axi WORD access for 16 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "001011" => -- axi DOUBLE WORD access for 16 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
--------------- for 32 bit mem width
when "010000" => -- axi byte access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010001" => -- axi HW access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010010" => -- axi WORD access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010011" => -- axi DPOUBLE WORD access for 32 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
--------------- for 64 bit mem width
when "100000" | -- axi byte access for 64 bit mem width
"100001" | -- axi HW access for 64 bit mem width
"100010" | -- axi WORD access for 64 bit mem width
"100011" =>-- axi DOUBLE WORD access for 64 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
---------------
when others => stop_oen_int <= '0';
end case;
end process STOP_OEN_GEN_PROCESS;
stop_oen <= stop_oen_int;
end imp;
-------------------------------------------------------------------------------
-- End of File ipic_if.vhd
-------------------------------------------------------------------------------
|
-------------------------------------------------------------------
-- (c) Copyright 1984 - 2013 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
-------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Filename: ipic_if.vhd
-- Description: IPIC Interface
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-- Structure:
-- emc.vhd
-- -- ipic_if.vhd
-- -- addr_counter_mux.vhd
-- -- counters.vhd
-- -- select_param.vhd
-- -- mem_state_machine.vhd
-- -- mem_steer.vhd
-- -- io_registers.vhd
-------------------------------------------------------------------------------
-- Author: NSK
-- History:
-- NSK 02/01/08 First Version
-- ^^^^^^^^^^
-- This file is same as in version v3_01_c - no change in the logic of this
-- module. Deleted the history from version v3_01_c.
-- ~~~~~~
-- NSK 05/08/08 version v3_00_a
-- ^^^^^^^^
-- 1. This file is same as in version v3_02_a.
-- 2. Upgraded to version v3.00.a to have proper versioning to fix CR #472164.
-- 3. No change in design.
-- ~~~~~~~~
-- ^^^^^^^^
-- KSB 08/08/08 version v4_00_a
-- 1. This file is same as in version v3_00_a.
-- 2. Upgraded to version v4.00.a
-- ~~~~~~~~
-- SK 10/07/10
-- ^^^^^^^^
-- 1. Added "clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
--(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
-- else
--'0' ;
-- 2. condition for "clear_pend_wrreq". This is similar to "clear_pend_rdreq" .
-- ~~~~~~~~
-- SK 25/10/10
-- ^^^^^^^^
-- 1. Registered IP2bus_RdAck and IP2Bus_Data signals.
-- ~~~~~~~~
-- SK 24/11/10
-- ^^^^^^^^
-- 1. Added "Bus2IP_RdReq_emc = '0'" signal to reset the RDREQ_PROCESS.
-- ~~~~~~~~
-- SK 02/11/11 version v5_02_a
-- ^^^^^^^^
-- 1. Fixed CR#595758 and CR#606038
-- ~~~~~~~~
-- ~~~~~~
-- Sateesh 2011
-- ^^^^^^
-- -- Added Sync burst support for the Numonyx flash during read
-- ~~~~~~
-- ~~~~~~
-- SK 10/20/12
-- ^^^^^^
-- -- Fixed CR 672770 - BRESP signal is driven X during netlist simulation
-- -- Fixed CR 673491 - Flash transactions generates extra read cycle after the actual reads are over
-- ~~~~~~
-------------------------------------------------------------------------------
-- Naming Conventions:
-- active low signals: "*_n"
-- clock signals: "clk", "clk_div#", "clk_#x"
-- reset signals: "rst", "rst_n"
-- generics: "C_*"
-- user defined types: "*_TYPE"
-- state machine next state: "*_ns"
-- state machine current state: "*_cs"
-- combinatorial signals: "*_cmb"
-- pipelined or register delay signals: "*_d#"
-- counter signals: "*cnt*"
-- clock enable signals: "*_ce"
-- internal version of output port "*_i"
-- device pins: "*_pin"
-- ports: - Names begin with Uppercase
-- processes: "*_PROCESS"
-- component instantiations: "<ENTITY_>I_<#|FUNC>
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_arith.all;
use ieee.std_logic_misc.all;
use ieee.std_logic_unsigned.all;
use ieee.numeric_std.all;
-------------------------------------------------------------------------------
library emc_common_v3_0;
-------------------------------------------------------------------------------
-- vcomponents package of the unisim library is used for the FDR component
-- declaration
-------------------------------------------------------------------------------
library unisim;
use unisim.vcomponents.all;
-------------------------------------------------------------------------------
-- Definition of Generics:
-- C_NUM_BANKS_MEM -- Number of Memory Banks
-- C_IPIF_DWIDTH -- Processor Data Bus Width
--
-- Definition of Ports:
-- Bus2IP_RNW -- Processor read not write (1=Read, 0=Write)
-- Bus2IP_Mem_CS -- Memory Channel Chip Select
-- Mem2Bus_RdAddrAck -- Memory Read Cycle Address Acknowledge
-- Mem2Bus_WrAddrAck -- Memory Write Cycle Address Acknowledge
-- Mem2Bus_RdAck -- Memory Read Cycle Acknowledge
-- Mem2Bus_WrAck -- Memory Write Cycle Acknowledge
-- Mem2Bus_Data -- Memory Read Data
-- Bus2Mem_RdReq -- Read request was seen by mem_state_machine
-- Bus2Mem_WrReq -- Write request was seen by mem_state_machine
-- Bus2Mem_CS -- Memory is being accessed
-- IP2Bus_Data -- Read data from memory device or register
-- IP2Bus_errAck -- Error acknowledge
-- IP2Bus_retry -- Retry indicator
-- IP2Bus_toutSup -- Suppress watch dog timer
-- IP2Bus_RdAck -- Read acknowledge
-- IP2Bus_WrAck -- Write acknowledge
-- IP2Bus_AddrAck -- Address acknowledge
-- Burst_length -- Count of current burst length
-- Transaction_done -- Operation complete indication for current
-- -- transaction
-- Bus2IP_Clk -- System clock
-- Bus2IP_Reset -- System Reset
-------------------------------------------------------------------------------
-- Port declarations
-------------------------------------------------------------------------------
entity ipic_if is
generic (
C_NUM_BANKS_MEM : integer := 2;
C_IPIF_DWIDTH : integer := 64
);
port (
Bus2IP_Clk : in std_logic;
Bus2IP_Reset : in std_logic;
Bus2IP_RNW : in std_logic;
Bus2IP_Mem_CS : in std_logic_vector(0 to C_NUM_BANKS_MEM-1);
Mem2Bus_RdAddrAck : in std_logic;
Mem2Bus_WrAddrAck : in std_logic;
Mem2Bus_RdAck : in std_logic;
Mem2Bus_WrAck : in std_logic;
Bus2IP_WrReq : in std_logic;
Bus2IP_RdReq : in std_logic;
Mem2Bus_Data : in std_logic_vector(0 to C_IPIF_DWIDTH - 1);
Bus2IP_Burst : in std_logic;
Bus2IP_RdReq_emc : in std_logic;
Bus2IP_WrReq_emc : in std_logic;
Bus2Mem_CS : out std_logic;
Bus2Mem_RdReq : out std_logic;
Bus2Mem_WrReq : out std_logic;
Parity_err : in std_logic;
IP2Bus_Data : out std_logic_vector(0 to C_IPIF_DWIDTH - 1);
IP2Bus_errAck : out std_logic;
IP2Bus_retry : out std_logic;
IP2Bus_toutSup : out std_logic;
IP2Bus_RdAck : out std_logic;
IP2Bus_WrAck : out std_logic;
IP2Bus_AddrAck : out std_logic;
Type_of_xfer : in std_logic;
Burst_length : in std_logic_vector(0 to 7);
Transaction_done : in std_logic;
single_transaction : in std_logic ;
last_burst_cnt : out std_logic;
pr_state_wait_temp_cmb : in std_logic;
synch_mem : in std_logic; -- 10-12-2012
mem_width_bytes : in std_logic_vector(0 to 3);
stop_oen : out std_logic;
axi_trans_size_reg : in std_logic_vector(1 downto 0); -- 1/3/2013
Linear_flash_brst_rd_flag : in std_logic -- 1/28/2013
);
end entity ipic_if;
-------------------------------------------------------------------------------
-- Architecture section
-------------------------------------------------------------------------------
architecture imp of ipic_if is
----------------------------------------------------------------------------------
-- below attributes are added to reduce the synth warnings in Vivado tool
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of imp : architecture is "yes";
----------------------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Constant Declaration
-------------------------------------------------------------------------------
constant BURST_CNT_WIDTH : integer := 8;
constant ZERO_CNT : std_logic_vector(0 to BURST_CNT_WIDTH -1)
:= (others=>'0');
-------------------------------------------------------------------------------
-- Signal Declaration
-------------------------------------------------------------------------------
signal bus2mem_cs_i : std_logic;
signal burst_cnt_en : std_logic;
signal burst_cnt_ld_cmb : std_logic;
signal pend_wrreq : std_logic;
signal set_pend_wrreq : std_logic;
signal clear_pend_wrreq : std_logic;
signal pend_rdreq : std_logic;
signal set_pend_rdreq : std_logic;
signal clear_pend_rdreq : std_logic;
signal burst_cnt_i : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal int_wrreq : std_logic;
signal int_rdreq : std_logic;
---remove this signal once fix is made to ipif
signal burst_length_i :std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal bus2ip_mem_cs_reg :std_logic;--_vector(0 to C_NUM_BANKS_MEM-1);
signal IP2Bus_AddrAck_d1 :std_logic;
signal burst_rst :std_logic;
signal stop_init_rd :std_logic;
signal reload_address :std_logic;
signal reload_req :std_logic;
signal IP2Bus_WrAck_i :std_logic;
signal IP2Bus_AddrAck_i :std_logic;
signal IP2Bus_RdAck_i :std_logic;
signal reset_fifo :std_logic;
signal burst_cnt_i_rdack : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal diff_addr_rd_ack : std_logic;
signal burst_cnt_en_rdack: std_logic;
signal first_rd_ack : std_logic;
signal rd_ack_d1 : std_logic;
signal Bus2Mem_RdReq_int : std_logic;
signal bus2Mem_CS_reduce_reg : std_logic;
signal pr_state_wait_temp_reg: std_logic;
signal rd_cnt : std_logic_vector(3 downto 0);
signal stop_oen_int : std_logic;
-- signal stop_oen : std_logic;
-------------------------------------------------------------------------------
-- Begin architecture
-------------------------------------------------------------------------------
begin -- architecture IMP
---------------------------------------------------------------------------
-- IPIC
---------------------------------------------------------------------------
burst_length_i <= Burst_length(0 to BURST_CNT_WIDTH - 1);
bus2Mem_CS_i <= or_reduce(Bus2IP_Mem_CS); -- (bus2IP_Mem_CS_reg); -- 1/3/2013
Bus2Mem_CS <= bus2Mem_CS_i;
IP2Bus_errAck <= (Parity_err or (not Type_of_xfer)) and
bus2Mem_CS_i;
IP2Bus_retry <= '0';
IP2Bus_toutSup <= bus2Mem_CS_i;
--IP2Bus_Data <= Mem2Bus_Data;
int_wrreq <= Bus2IP_WrReq and bus2Mem_CS_i;
int_rdreq <= Bus2IP_RdReq and bus2Mem_CS_i;
---------------------------------------------------------------------------
-- Register the Bus2IP_Mem_CS
---------------------------------------------------------------------------
CS_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2IP_Mem_CS_reg <= '0';--(others=>'0');
pr_state_wait_temp_reg <= '0';
else
bus2IP_Mem_CS_reg <= or_reduce(Bus2IP_Mem_CS);
pr_state_wait_temp_reg <= pr_state_wait_temp_cmb;
end if;
end if;
end process CS_REG_PROCESS;
ONE_HOT_CS_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2Mem_CS_reduce_reg <= '0';
else
bus2Mem_CS_reduce_reg <= bus2Mem_CS_i;
end if;
end if;
end process ONE_HOT_CS_PROCESS;
---------------------------------------------------------------------------
-- Register the acks signals
---------------------------------------------------------------------------
ACK_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
IP2Bus_Data <= (others => '0');
IP2Bus_RdAck <= '0';
else
IP2Bus_Data <= Mem2Bus_Data;
IP2Bus_RdAck <= Mem2Bus_RdAck and (Bus2Mem_RdReq_int or
single_transaction or
Linear_flash_brst_rd_flag);
end if;
end if;
end process ACK_REG_PROCESS;
IP2Bus_WrAck <= Mem2Bus_WrAck;
IP2Bus_AddrAck <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
---------------------------------------------------------------------------
-- Burst length counter instantiation
---------------------------------------------------------------------------
BURST_CNT: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en
);
---------------------------------------------------------------------------
-- Burst length counter instantiation -- For Read Ack
---------------------------------------------------------------------------
BURST_CNT_RDACK: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i_rdack,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en_rdack
);
burst_cnt_en_rdack <= (diff_addr_rd_ack and Mem2Bus_RdAck);
diff_addr_rd_ack <= or_reduce(burst_cnt_i xor burst_cnt_i_rdack);
---------------------------------------------------------------------------
-- Burst length counter control signals
---------------------------------------------------------------------------
burst_cnt_en <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
burst_cnt_ld_cmb <= not(bus2Mem_CS_reduce_reg) and bus2Mem_CS_i;
reset_fifo <= Bus2IP_Reset or (not bus2Mem_CS_i);
last_burst_cnt <= not (or_reduce(burst_cnt_i));
---------------------------------------------------------------------------
-- Generation of pend_wrreq
---------------------------------------------------------------------------
set_pend_wrreq <= (not pend_wrreq) and Transaction_done and int_wrreq;
clear_pend_wrreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_WrAddrAck = '1'))or bus2Mem_CS_i = '0' else
'0' ;
WRREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_wrreq <= '0';
elsif set_pend_wrreq ='1' then
pend_wrreq <= '1';
--elsif clear_pend_wrreq = '1' then
elsif(Bus2IP_Burst = '0' and (Mem2Bus_WrAddrAck = '1')) or
(bus2Mem_CS_i = '0') then
pend_wrreq <= '0';
end if;
end if;
end process WRREQ_PROCESS;
Bus2Mem_WrReq <= (pend_wrreq and Bus2IP_WrReq);
---------------------------------------------------------------------------
-- Generation of pend_rdreq
---------------------------------------------------------------------------
set_pend_rdreq <= (not pend_rdreq) and Transaction_done
and int_rdreq;
clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
else
'0' ;
RDREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_rdreq <= '0';
elsif set_pend_rdreq = '1'then
pend_rdreq <= '1';
elsif clear_pend_rdreq = '1' then -- 1/3/2013
-- elsif ((Bus2IP_Burst = '0') and -- 1/3/2013
-- (Mem2Bus_RdAddrAck = '1') and -- 1/3/2013
-- (Bus2IP_RdReq_emc = '0')) or -- 1/3/2013
-- (bus2Mem_CS_i = '0') then -- 1/3/2013
pend_rdreq <= '0';
end if;
end if;
end process RDREQ_PROCESS;
Bus2Mem_RdReq_int <= (pend_rdreq and (Bus2IP_RdReq or (diff_addr_rd_ack and Synch_mem)))
when (single_transaction = '0' or Synch_mem = '1')
else
Bus2IP_RdReq;
Bus2Mem_RdReq <= Bus2Mem_RdReq_int;
-- 10-12-2012
RD_CNT_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Transaction_done = '1')then
rd_cnt <= (others => '0');
elsif diff_addr_rd_ack ='1' and Bus2IP_RdReq = '0' and stop_oen_int = '0' then
rd_cnt <= rd_cnt + 1;
end if;
end if;
end process RD_CNT_PROCESS;
-- stop_oen_int <= '1' when rd_cnt = "010" and mem_width_bytes = "0001" else -- 8 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0010" else -- 16 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0100" else -- 32 bit - reduced by 1 here
-- '0';
STOP_OEN_GEN_PROCESS: process(axi_trans_size_reg,
mem_width_bytes,
rd_cnt) is
variable mem_width_and_size : std_logic_vector(5 downto 0);
-----
begin
-----
mem_width_and_size := mem_width_bytes & axi_trans_size_reg;
case mem_width_and_size is
when "000100" => -- axi byte access for 8 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "000101" => -- axi HW access for 8 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "000110" => -- axi WORD access for 8 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
when "000111" => -- axi Double WORD access for 8 bit mem width
--if(rd_cnt = "1000")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(3);
--------------- for 16 bit mem width
when "001000" => -- axi byte access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001001" => -- axi HW access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001010" => -- axi WORD access for 16 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "001011" => -- axi DOUBLE WORD access for 16 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
--------------- for 32 bit mem width
when "010000" => -- axi byte access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010001" => -- axi HW access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010010" => -- axi WORD access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010011" => -- axi DPOUBLE WORD access for 32 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
--------------- for 64 bit mem width
when "100000" | -- axi byte access for 64 bit mem width
"100001" | -- axi HW access for 64 bit mem width
"100010" | -- axi WORD access for 64 bit mem width
"100011" =>-- axi DOUBLE WORD access for 64 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
---------------
when others => stop_oen_int <= '0';
end case;
end process STOP_OEN_GEN_PROCESS;
stop_oen <= stop_oen_int;
end imp;
-------------------------------------------------------------------------------
-- End of File ipic_if.vhd
-------------------------------------------------------------------------------
|
-------------------------------------------------------------------
-- (c) Copyright 1984 - 2013 Xilinx, Inc. All rights reserved.
--
-- This file contains confidential and proprietary information
-- of Xilinx, Inc. and is protected under U.S. and
-- international copyright and other intellectual property
-- laws.
--
-- DISCLAIMER
-- This disclaimer is not a license and does not grant any
-- rights to the materials distributed herewith. Except as
-- otherwise provided in a valid license issued to you by
-- Xilinx, and to the maximum extent permitted by applicable
-- law: (1) THESE MATERIALS ARE MADE AVAILABLE "AS IS" AND
-- WITH ALL FAULTS, AND XILINX HEREBY DISCLAIMS ALL WARRANTIES
-- AND CONDITIONS, EXPRESS, IMPLIED, OR STATUTORY, INCLUDING
-- BUT NOT LIMITED TO WARRANTIES OF MERCHANTABILITY, NON-
-- INFRINGEMENT, OR FITNESS FOR ANY PARTICULAR PURPOSE; and
-- (2) Xilinx shall not be liable (whether in contract or tort,
-- including negligence, or under any other theory of
-- liability) for any loss or damage of any kind or nature
-- related to, arising under or in connection with these
-- materials, including for any direct, or any indirect,
-- special, incidental, or consequential loss or damage
-- (including loss of data, profits, goodwill, or any type of
-- loss or damage suffered as a result of any action brought
-- by a third party) even if such damage or loss was
-- reasonably foreseeable or Xilinx had been advised of the
-- possibility of the same.
--
-- CRITICAL APPLICATIONS
-- Xilinx products are not designed or intended to be fail-
-- safe, or for use in any application requiring fail-safe
-- performance, such as life-support or safety devices or
-- systems, Class III medical devices, nuclear facilities,
-- applications related to the deployment of airbags, or any
-- other applications that could lead to death, personal
-- injury, or severe property or environmental damage
-- (individually and collectively, "Critical
-- Applications"). Customer assumes the sole risk and
-- liability of any use of Xilinx products in Critical
-- Applications, subject only to applicable laws and
-- regulations governing limitations on product liability.
--
-- THIS COPYRIGHT NOTICE AND DISCLAIMER MUST BE RETAINED AS
-- PART OF THIS FILE AT ALL TIMES.
-------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Filename: ipic_if.vhd
-- Description: IPIC Interface
--
-- VHDL-Standard: VHDL'93
-------------------------------------------------------------------------------
-- Structure:
-- emc.vhd
-- -- ipic_if.vhd
-- -- addr_counter_mux.vhd
-- -- counters.vhd
-- -- select_param.vhd
-- -- mem_state_machine.vhd
-- -- mem_steer.vhd
-- -- io_registers.vhd
-------------------------------------------------------------------------------
-- Author: NSK
-- History:
-- NSK 02/01/08 First Version
-- ^^^^^^^^^^
-- This file is same as in version v3_01_c - no change in the logic of this
-- module. Deleted the history from version v3_01_c.
-- ~~~~~~
-- NSK 05/08/08 version v3_00_a
-- ^^^^^^^^
-- 1. This file is same as in version v3_02_a.
-- 2. Upgraded to version v3.00.a to have proper versioning to fix CR #472164.
-- 3. No change in design.
-- ~~~~~~~~
-- ^^^^^^^^
-- KSB 08/08/08 version v4_00_a
-- 1. This file is same as in version v3_00_a.
-- 2. Upgraded to version v4.00.a
-- ~~~~~~~~
-- SK 10/07/10
-- ^^^^^^^^
-- 1. Added "clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
--(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
-- else
--'0' ;
-- 2. condition for "clear_pend_wrreq". This is similar to "clear_pend_rdreq" .
-- ~~~~~~~~
-- SK 25/10/10
-- ^^^^^^^^
-- 1. Registered IP2bus_RdAck and IP2Bus_Data signals.
-- ~~~~~~~~
-- SK 24/11/10
-- ^^^^^^^^
-- 1. Added "Bus2IP_RdReq_emc = '0'" signal to reset the RDREQ_PROCESS.
-- ~~~~~~~~
-- SK 02/11/11 version v5_02_a
-- ^^^^^^^^
-- 1. Fixed CR#595758 and CR#606038
-- ~~~~~~~~
-- ~~~~~~
-- Sateesh 2011
-- ^^^^^^
-- -- Added Sync burst support for the Numonyx flash during read
-- ~~~~~~
-- ~~~~~~
-- SK 10/20/12
-- ^^^^^^
-- -- Fixed CR 672770 - BRESP signal is driven X during netlist simulation
-- -- Fixed CR 673491 - Flash transactions generates extra read cycle after the actual reads are over
-- ~~~~~~
-------------------------------------------------------------------------------
-- Naming Conventions:
-- active low signals: "*_n"
-- clock signals: "clk", "clk_div#", "clk_#x"
-- reset signals: "rst", "rst_n"
-- generics: "C_*"
-- user defined types: "*_TYPE"
-- state machine next state: "*_ns"
-- state machine current state: "*_cs"
-- combinatorial signals: "*_cmb"
-- pipelined or register delay signals: "*_d#"
-- counter signals: "*cnt*"
-- clock enable signals: "*_ce"
-- internal version of output port "*_i"
-- device pins: "*_pin"
-- ports: - Names begin with Uppercase
-- processes: "*_PROCESS"
-- component instantiations: "<ENTITY_>I_<#|FUNC>
-------------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
use ieee.std_logic_arith.all;
use ieee.std_logic_misc.all;
use ieee.std_logic_unsigned.all;
use ieee.numeric_std.all;
-------------------------------------------------------------------------------
library emc_common_v3_0;
-------------------------------------------------------------------------------
-- vcomponents package of the unisim library is used for the FDR component
-- declaration
-------------------------------------------------------------------------------
library unisim;
use unisim.vcomponents.all;
-------------------------------------------------------------------------------
-- Definition of Generics:
-- C_NUM_BANKS_MEM -- Number of Memory Banks
-- C_IPIF_DWIDTH -- Processor Data Bus Width
--
-- Definition of Ports:
-- Bus2IP_RNW -- Processor read not write (1=Read, 0=Write)
-- Bus2IP_Mem_CS -- Memory Channel Chip Select
-- Mem2Bus_RdAddrAck -- Memory Read Cycle Address Acknowledge
-- Mem2Bus_WrAddrAck -- Memory Write Cycle Address Acknowledge
-- Mem2Bus_RdAck -- Memory Read Cycle Acknowledge
-- Mem2Bus_WrAck -- Memory Write Cycle Acknowledge
-- Mem2Bus_Data -- Memory Read Data
-- Bus2Mem_RdReq -- Read request was seen by mem_state_machine
-- Bus2Mem_WrReq -- Write request was seen by mem_state_machine
-- Bus2Mem_CS -- Memory is being accessed
-- IP2Bus_Data -- Read data from memory device or register
-- IP2Bus_errAck -- Error acknowledge
-- IP2Bus_retry -- Retry indicator
-- IP2Bus_toutSup -- Suppress watch dog timer
-- IP2Bus_RdAck -- Read acknowledge
-- IP2Bus_WrAck -- Write acknowledge
-- IP2Bus_AddrAck -- Address acknowledge
-- Burst_length -- Count of current burst length
-- Transaction_done -- Operation complete indication for current
-- -- transaction
-- Bus2IP_Clk -- System clock
-- Bus2IP_Reset -- System Reset
-------------------------------------------------------------------------------
-- Port declarations
-------------------------------------------------------------------------------
entity ipic_if is
generic (
C_NUM_BANKS_MEM : integer := 2;
C_IPIF_DWIDTH : integer := 64
);
port (
Bus2IP_Clk : in std_logic;
Bus2IP_Reset : in std_logic;
Bus2IP_RNW : in std_logic;
Bus2IP_Mem_CS : in std_logic_vector(0 to C_NUM_BANKS_MEM-1);
Mem2Bus_RdAddrAck : in std_logic;
Mem2Bus_WrAddrAck : in std_logic;
Mem2Bus_RdAck : in std_logic;
Mem2Bus_WrAck : in std_logic;
Bus2IP_WrReq : in std_logic;
Bus2IP_RdReq : in std_logic;
Mem2Bus_Data : in std_logic_vector(0 to C_IPIF_DWIDTH - 1);
Bus2IP_Burst : in std_logic;
Bus2IP_RdReq_emc : in std_logic;
Bus2IP_WrReq_emc : in std_logic;
Bus2Mem_CS : out std_logic;
Bus2Mem_RdReq : out std_logic;
Bus2Mem_WrReq : out std_logic;
Parity_err : in std_logic;
IP2Bus_Data : out std_logic_vector(0 to C_IPIF_DWIDTH - 1);
IP2Bus_errAck : out std_logic;
IP2Bus_retry : out std_logic;
IP2Bus_toutSup : out std_logic;
IP2Bus_RdAck : out std_logic;
IP2Bus_WrAck : out std_logic;
IP2Bus_AddrAck : out std_logic;
Type_of_xfer : in std_logic;
Burst_length : in std_logic_vector(0 to 7);
Transaction_done : in std_logic;
single_transaction : in std_logic ;
last_burst_cnt : out std_logic;
pr_state_wait_temp_cmb : in std_logic;
synch_mem : in std_logic; -- 10-12-2012
mem_width_bytes : in std_logic_vector(0 to 3);
stop_oen : out std_logic;
axi_trans_size_reg : in std_logic_vector(1 downto 0); -- 1/3/2013
Linear_flash_brst_rd_flag : in std_logic -- 1/28/2013
);
end entity ipic_if;
-------------------------------------------------------------------------------
-- Architecture section
-------------------------------------------------------------------------------
architecture imp of ipic_if is
----------------------------------------------------------------------------------
-- below attributes are added to reduce the synth warnings in Vivado tool
attribute DowngradeIPIdentifiedWarnings: string;
attribute DowngradeIPIdentifiedWarnings of imp : architecture is "yes";
----------------------------------------------------------------------------------
-------------------------------------------------------------------------------
-- Constant Declaration
-------------------------------------------------------------------------------
constant BURST_CNT_WIDTH : integer := 8;
constant ZERO_CNT : std_logic_vector(0 to BURST_CNT_WIDTH -1)
:= (others=>'0');
-------------------------------------------------------------------------------
-- Signal Declaration
-------------------------------------------------------------------------------
signal bus2mem_cs_i : std_logic;
signal burst_cnt_en : std_logic;
signal burst_cnt_ld_cmb : std_logic;
signal pend_wrreq : std_logic;
signal set_pend_wrreq : std_logic;
signal clear_pend_wrreq : std_logic;
signal pend_rdreq : std_logic;
signal set_pend_rdreq : std_logic;
signal clear_pend_rdreq : std_logic;
signal burst_cnt_i : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal int_wrreq : std_logic;
signal int_rdreq : std_logic;
---remove this signal once fix is made to ipif
signal burst_length_i :std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal bus2ip_mem_cs_reg :std_logic;--_vector(0 to C_NUM_BANKS_MEM-1);
signal IP2Bus_AddrAck_d1 :std_logic;
signal burst_rst :std_logic;
signal stop_init_rd :std_logic;
signal reload_address :std_logic;
signal reload_req :std_logic;
signal IP2Bus_WrAck_i :std_logic;
signal IP2Bus_AddrAck_i :std_logic;
signal IP2Bus_RdAck_i :std_logic;
signal reset_fifo :std_logic;
signal burst_cnt_i_rdack : std_logic_vector(0 to BURST_CNT_WIDTH - 1);
signal diff_addr_rd_ack : std_logic;
signal burst_cnt_en_rdack: std_logic;
signal first_rd_ack : std_logic;
signal rd_ack_d1 : std_logic;
signal Bus2Mem_RdReq_int : std_logic;
signal bus2Mem_CS_reduce_reg : std_logic;
signal pr_state_wait_temp_reg: std_logic;
signal rd_cnt : std_logic_vector(3 downto 0);
signal stop_oen_int : std_logic;
-- signal stop_oen : std_logic;
-------------------------------------------------------------------------------
-- Begin architecture
-------------------------------------------------------------------------------
begin -- architecture IMP
---------------------------------------------------------------------------
-- IPIC
---------------------------------------------------------------------------
burst_length_i <= Burst_length(0 to BURST_CNT_WIDTH - 1);
bus2Mem_CS_i <= or_reduce(Bus2IP_Mem_CS); -- (bus2IP_Mem_CS_reg); -- 1/3/2013
Bus2Mem_CS <= bus2Mem_CS_i;
IP2Bus_errAck <= (Parity_err or (not Type_of_xfer)) and
bus2Mem_CS_i;
IP2Bus_retry <= '0';
IP2Bus_toutSup <= bus2Mem_CS_i;
--IP2Bus_Data <= Mem2Bus_Data;
int_wrreq <= Bus2IP_WrReq and bus2Mem_CS_i;
int_rdreq <= Bus2IP_RdReq and bus2Mem_CS_i;
---------------------------------------------------------------------------
-- Register the Bus2IP_Mem_CS
---------------------------------------------------------------------------
CS_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2IP_Mem_CS_reg <= '0';--(others=>'0');
pr_state_wait_temp_reg <= '0';
else
bus2IP_Mem_CS_reg <= or_reduce(Bus2IP_Mem_CS);
pr_state_wait_temp_reg <= pr_state_wait_temp_cmb;
end if;
end if;
end process CS_REG_PROCESS;
ONE_HOT_CS_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
bus2Mem_CS_reduce_reg <= '0';
else
bus2Mem_CS_reduce_reg <= bus2Mem_CS_i;
end if;
end if;
end process ONE_HOT_CS_PROCESS;
---------------------------------------------------------------------------
-- Register the acks signals
---------------------------------------------------------------------------
ACK_REG_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
IP2Bus_Data <= (others => '0');
IP2Bus_RdAck <= '0';
else
IP2Bus_Data <= Mem2Bus_Data;
IP2Bus_RdAck <= Mem2Bus_RdAck and (Bus2Mem_RdReq_int or
single_transaction or
Linear_flash_brst_rd_flag);
end if;
end if;
end process ACK_REG_PROCESS;
IP2Bus_WrAck <= Mem2Bus_WrAck;
IP2Bus_AddrAck <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
---------------------------------------------------------------------------
-- Burst length counter instantiation
---------------------------------------------------------------------------
BURST_CNT: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en
);
---------------------------------------------------------------------------
-- Burst length counter instantiation -- For Read Ack
---------------------------------------------------------------------------
BURST_CNT_RDACK: entity emc_common_v3_0.ld_arith_reg
generic map (C_ADD_SUB_NOT => false,
C_REG_WIDTH => BURST_CNT_WIDTH,
C_RESET_VALUE => ZERO_CNT,
C_LD_WIDTH => BURST_CNT_WIDTH,
C_LD_OFFSET => 0,
C_AD_WIDTH => 1,
C_AD_OFFSET => 0
)
port map ( CK => Bus2IP_Clk,
RST => reset_fifo,
Q => burst_cnt_i_rdack,
LD => burst_length_i,
AD => "1",
LOAD => burst_cnt_ld_cmb,
OP => burst_cnt_en_rdack
);
burst_cnt_en_rdack <= (diff_addr_rd_ack and Mem2Bus_RdAck);
diff_addr_rd_ack <= or_reduce(burst_cnt_i xor burst_cnt_i_rdack);
---------------------------------------------------------------------------
-- Burst length counter control signals
---------------------------------------------------------------------------
burst_cnt_en <= (Mem2Bus_RdAddrAck or Mem2Bus_WrAddrAck) and
(Bus2IP_WrReq or Bus2IP_RdReq);
burst_cnt_ld_cmb <= not(bus2Mem_CS_reduce_reg) and bus2Mem_CS_i;
reset_fifo <= Bus2IP_Reset or (not bus2Mem_CS_i);
last_burst_cnt <= not (or_reduce(burst_cnt_i));
---------------------------------------------------------------------------
-- Generation of pend_wrreq
---------------------------------------------------------------------------
set_pend_wrreq <= (not pend_wrreq) and Transaction_done and int_wrreq;
clear_pend_wrreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_WrAddrAck = '1'))or bus2Mem_CS_i = '0' else
'0' ;
WRREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_wrreq <= '0';
elsif set_pend_wrreq ='1' then
pend_wrreq <= '1';
--elsif clear_pend_wrreq = '1' then
elsif(Bus2IP_Burst = '0' and (Mem2Bus_WrAddrAck = '1')) or
(bus2Mem_CS_i = '0') then
pend_wrreq <= '0';
end if;
end if;
end process WRREQ_PROCESS;
Bus2Mem_WrReq <= (pend_wrreq and Bus2IP_WrReq);
---------------------------------------------------------------------------
-- Generation of pend_rdreq
---------------------------------------------------------------------------
set_pend_rdreq <= (not pend_rdreq) and Transaction_done
and int_rdreq;
clear_pend_rdreq <= '1' when ((burst_cnt_i = 0) and (Bus2IP_Burst = '0') and
(Mem2Bus_RdAddrAck = '1')) or bus2Mem_CS_i = '0'
else
'0' ;
RDREQ_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Bus2IP_Reset = '1')then
pend_rdreq <= '0';
elsif set_pend_rdreq = '1'then
pend_rdreq <= '1';
elsif clear_pend_rdreq = '1' then -- 1/3/2013
-- elsif ((Bus2IP_Burst = '0') and -- 1/3/2013
-- (Mem2Bus_RdAddrAck = '1') and -- 1/3/2013
-- (Bus2IP_RdReq_emc = '0')) or -- 1/3/2013
-- (bus2Mem_CS_i = '0') then -- 1/3/2013
pend_rdreq <= '0';
end if;
end if;
end process RDREQ_PROCESS;
Bus2Mem_RdReq_int <= (pend_rdreq and (Bus2IP_RdReq or (diff_addr_rd_ack and Synch_mem)))
when (single_transaction = '0' or Synch_mem = '1')
else
Bus2IP_RdReq;
Bus2Mem_RdReq <= Bus2Mem_RdReq_int;
-- 10-12-2012
RD_CNT_PROCESS : process(Bus2IP_Clk)
begin
if(Bus2IP_Clk'EVENT and Bus2IP_Clk = '1') then
if(Transaction_done = '1')then
rd_cnt <= (others => '0');
elsif diff_addr_rd_ack ='1' and Bus2IP_RdReq = '0' and stop_oen_int = '0' then
rd_cnt <= rd_cnt + 1;
end if;
end if;
end process RD_CNT_PROCESS;
-- stop_oen_int <= '1' when rd_cnt = "010" and mem_width_bytes = "0001" else -- 8 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0010" else -- 16 bit - reduced by 1 here
-- '1' when rd_cnt = "001" and mem_width_bytes = "0100" else -- 32 bit - reduced by 1 here
-- '0';
STOP_OEN_GEN_PROCESS: process(axi_trans_size_reg,
mem_width_bytes,
rd_cnt) is
variable mem_width_and_size : std_logic_vector(5 downto 0);
-----
begin
-----
mem_width_and_size := mem_width_bytes & axi_trans_size_reg;
case mem_width_and_size is
when "000100" => -- axi byte access for 8 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "000101" => -- axi HW access for 8 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "000110" => -- axi WORD access for 8 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
when "000111" => -- axi Double WORD access for 8 bit mem width
--if(rd_cnt = "1000")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(3);
--------------- for 16 bit mem width
when "001000" => -- axi byte access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001001" => -- axi HW access for 16 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "001010" => -- axi WORD access for 16 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
when "001011" => -- axi DOUBLE WORD access for 16 bit mem width
--if(rd_cnt = "0100")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(2);
--------------- for 32 bit mem width
when "010000" => -- axi byte access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010001" => -- axi HW access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010010" => -- axi WORD access for 32 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
when "010011" => -- axi DPOUBLE WORD access for 32 bit mem width
--if(rd_cnt = "0010")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(1);
--------------- for 64 bit mem width
when "100000" | -- axi byte access for 64 bit mem width
"100001" | -- axi HW access for 64 bit mem width
"100010" | -- axi WORD access for 64 bit mem width
"100011" =>-- axi DOUBLE WORD access for 64 bit mem width
--if(rd_cnt = "0001")then
-- stop_oen_int <= '1';
--else
-- stop_oen_int <= '0';
--end if;
stop_oen_int <= rd_cnt(0);
---------------
when others => stop_oen_int <= '0';
end case;
end process STOP_OEN_GEN_PROCESS;
stop_oen <= stop_oen_int;
end imp;
-------------------------------------------------------------------------------
-- End of File ipic_if.vhd
-------------------------------------------------------------------------------
|
-- VHDL Entity lab9_new_lib.execute_stage.symbol
--
-- Created:
-- by - Hong.Hong (HSM)
-- at - 21:34:28 04/27/14
--
-- Generated by Mentor Graphics' HDL Designer(TM) 2013.1 (Build 6)
--
LIBRARY ieee;
USE ieee.std_logic_1164.all;
USE ieee.std_logic_arith.all;
ENTITY execute_stage IS
PORT(
Control : IN std_logic_vector (15 DOWNTO 0);
Dest : IN std_logic_vector (3 DOWNTO 0);
Extra : IN std_logic_vector (15 DOWNTO 0);
L : IN std_logic_vector (15 DOWNTO 0);
R : IN std_logic_vector (15 DOWNTO 0);
can_move_on : IN std_logic;
clk : IN std_logic;
pcval : IN std_logic_vector (15 DOWNTO 0);
rst : IN std_logic;
stall : IN std_logic;
Control_Out : OUT std_logic_vector (2 DOWNTO 0);
Dest_Execute_Out : OUT std_logic_vector (3 DOWNTO 0);
Extra_Execute_Out : OUT std_logic_vector (15 DOWNTO 0);
Result : OUT std_logic_vector (15 DOWNTO 0);
jaddress : OUT std_logic_vector (15 DOWNTO 0);
jump : OUT std_logic
);
-- Declarations
END execute_stage ;
--
-- VHDL Architecture lab9_new_lib.execute_stage.struct
--
-- Created:
-- by - Hong.Hong (HSM)
-- at - 08:49:57 04/29/14
--
-- Generated by Mentor Graphics' HDL Designer(TM) 2013.1 (Build 6)
--
LIBRARY ieee;
USE ieee.std_logic_1164.all;
USE ieee.std_logic_arith.all;
LIBRARY lab9_new_lib;
ARCHITECTURE struct OF execute_stage IS
-- Architecture declarations
-- Internal signal declarations
SIGNAL ALU_Result : std_logic_vector(15 DOWNTO 0);
SIGNAL ALU_cin_Control : std_logic_vector(1 DOWNTO 0);
SIGNAL ALU_cout : std_logic;
SIGNAL ALU_mode_Control : std_logic;
SIGNAL Additional_Execute_Control : std_logic_vector(3 DOWNTO 0);
SIGNAL Carry_CCR_In : std_logic;
SIGNAL Carry_CCR_Out : std_logic;
SIGNAL Carry_CCR_enable : std_logic;
SIGNAL Control_Register_Out : std_logic_vector(15 DOWNTO 0);
SIGNAL Dest_Register_Out : std_logic_vector(3 DOWNTO 0);
SIGNAL Dest_bit10 : std_logic;
SIGNAL Dest_bit11 : std_logic;
SIGNAL Dest_bit12 : std_logic;
SIGNAL Dest_bit9 : std_logic;
SIGNAL Enable_Carry_CCR : std_logic;
SIGNAL Enable_VNZ_CCR : std_logic;
SIGNAL Execute_Control : std_logic_vector(8 DOWNTO 0);
SIGNAL Is_Branch : std_logic;
SIGNAL Is_JAL : std_logic;
SIGNAL Is_Unconditional_Jumps : std_logic;
SIGNAL Is_negative : std_logic;
SIGNAL Is_ovfl : std_logic;
SIGNAL Is_zero : std_logic;
SIGNAL L_Register_Out : std_logic_vector(15 DOWNTO 0);
SIGNAL Negative_CCR_Out : std_logic;
SIGNAL Overflow_CCR_Out : std_logic;
SIGNAL R_Register_Out : std_logic_vector(15 DOWNTO 0);
SIGNAL Result_Intermediate : std_logic_vector(15 DOWNTO 0);
SIGNAL VNZ_CCR_enable : std_logic;
SIGNAL Zero_CCR_Out : std_logic;
SIGNAL dout : std_logic;
SIGNAL dout1 : std_logic;
SIGNAL dout10 : std_logic;
SIGNAL dout11 : std_logic;
SIGNAL dout12 : std_logic;
SIGNAL dout13 : std_logic;
SIGNAL dout14 : std_logic;
SIGNAL dout15 : std_logic_vector(15 DOWNTO 0);
SIGNAL dout16 : std_logic_vector(15 DOWNTO 0);
SIGNAL dout2 : std_logic;
SIGNAL dout3 : std_logic;
SIGNAL dout4 : std_logic;
SIGNAL dout5 : std_logic;
SIGNAL dout6 : std_logic;
SIGNAL dout7 : std_logic;
SIGNAL dout8 : std_logic;
SIGNAL dout9 : std_logic_vector(3 DOWNTO 0);
SIGNAL from_Shifter_Control : std_logic;
SIGNAL load_enable : std_logic;
SIGNAL next_pc_val : std_logic_vector(15 DOWNTO 0);
SIGNAL operation : std_logic_vector(3 DOWNTO 0);
SIGNAL pcval_Register_Out : std_logic_vector(15 DOWNTO 0);
SIGNAL shifter_Out : std_logic_vector(15 DOWNTO 0);
SIGNAL to_Carry_CCR : std_logic;
-- ModuleWare signal declarations(v1.12) for instance 'Carry_CCR_Register' of 'adff'
SIGNAL mw_Carry_CCR_Registerreg_cval : std_logic := '0';
-- ModuleWare signal declarations(v1.12) for instance 'Control_Register' of 'adff'
SIGNAL mw_Control_Registerreg_cval : std_logic_vector(15 DOWNTO 0) := "0000000000000000";
-- ModuleWare signal declarations(v1.12) for instance 'Dest_Register' of 'adff'
SIGNAL mw_Dest_Registerreg_cval : std_logic_vector(3 DOWNTO 0) := "0000";
-- ModuleWare signal declarations(v1.12) for instance 'Extra_Register' of 'adff'
SIGNAL mw_Extra_Registerreg_cval : std_logic_vector(15 DOWNTO 0) := "0000000000000000";
-- ModuleWare signal declarations(v1.12) for instance 'L_Register' of 'adff'
SIGNAL mw_L_Registerreg_cval : std_logic_vector(15 DOWNTO 0) := "0000000000000000";
-- ModuleWare signal declarations(v1.12) for instance 'Negative_CCR_Register' of 'adff'
SIGNAL mw_Negative_CCR_Registerreg_cval : std_logic := '0';
-- ModuleWare signal declarations(v1.12) for instance 'Overflow_CCR_Register' of 'adff'
SIGNAL mw_Overflow_CCR_Registerreg_cval : std_logic := '0';
-- ModuleWare signal declarations(v1.12) for instance 'R_Register' of 'adff'
SIGNAL mw_R_Registerreg_cval : std_logic_vector(15 DOWNTO 0) := "0000000000000000";
-- ModuleWare signal declarations(v1.12) for instance 'Zero_CCR_Register' of 'adff'
SIGNAL mw_Zero_CCR_Registerreg_cval : std_logic := '0';
-- ModuleWare signal declarations(v1.12) for instance 'pcval_Register' of 'adff'
SIGNAL mw_pcval_Registerreg_cval : std_logic_vector(15 DOWNTO 0) := "0000000000000000";
-- ModuleWare signal declarations(v1.12) for instance 'Additional_Execute_Control_Splitter' of 'split'
SIGNAL mw_Additional_Execute_Control_Splittertemp_din : std_logic_vector(3 DOWNTO 0);
-- ModuleWare signal declarations(v1.12) for instance 'Control_Splitter' of 'split'
SIGNAL mw_Control_Splittertemp_din : std_logic_vector(15 DOWNTO 0);
-- ModuleWare signal declarations(v1.12) for instance 'Dest_Splitter' of 'split'
SIGNAL mw_Dest_Splittertemp_din : std_logic_vector(3 DOWNTO 0);
-- ModuleWare signal declarations(v1.12) for instance 'Execute_Control_Splitter' of 'split'
SIGNAL mw_Execute_Control_Splittertemp_din : std_logic_vector(8 DOWNTO 0);
-- Component Declarations
COMPONENT mini_ALU
PORT (
ALU_cin : IN std_logic ;
ALU_mode : IN std_logic ;
Left : IN std_logic_vector (15 DOWNTO 0);
Right : IN std_logic_vector (15 DOWNTO 0);
operation : IN std_logic_vector (3 DOWNTO 0);
pcval : IN std_logic_vector (15 DOWNTO 0);
ALU_Result : OUT std_logic_vector (15 DOWNTO 0);
ALU_cout : OUT std_logic ;
Is_negative : OUT std_logic ;
Is_ovfl : OUT std_logic ;
Is_zero : OUT std_logic ;
next_pc_val : OUT std_logic_vector (15 DOWNTO 0)
);
END COMPONENT;
COMPONENT mini_Shifter
PORT (
from_Carry_CCR : IN std_logic;
shift_operation : IN std_logic_vector (3 DOWNTO 0);
shifter_In : IN std_logic_vector (15 DOWNTO 0);
shifter_Out : OUT std_logic_vector (15 DOWNTO 0);
to_Carry_CCR : OUT std_logic
);
END COMPONENT;
-- Optional embedded configurations
-- pragma synthesis_off
FOR ALL : mini_ALU USE ENTITY lab9_new_lib.mini_ALU;
FOR ALL : mini_Shifter USE ENTITY lab9_new_lib.mini_Shifter;
-- pragma synthesis_on
BEGIN
-- ModuleWare code(v1.12) for instance 'Carry_CCR_Register' of 'adff'
Carry_CCR_Out <= mw_Carry_CCR_Registerreg_cval;
carry_ccr_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (rst = '1') THEN
mw_Carry_CCR_Registerreg_cval <= '0';
ELSIF (Carry_CCR_enable = '1') THEN
mw_Carry_CCR_Registerreg_cval <= Carry_CCR_In;
END IF;
END IF;
END PROCESS carry_ccr_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'Control_Register' of 'adff'
Control_Register_Out <= mw_Control_Registerreg_cval;
control_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (load_enable = '1') THEN
mw_Control_Registerreg_cval <= dout16;
END IF;
END IF;
END PROCESS control_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'Dest_Register' of 'adff'
Dest_Register_Out <= mw_Dest_Registerreg_cval;
dest_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (load_enable = '1') THEN
mw_Dest_Registerreg_cval <= Dest;
END IF;
END IF;
END PROCESS dest_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'Extra_Register' of 'adff'
Extra_Execute_Out <= mw_Extra_Registerreg_cval;
extra_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (load_enable = '1') THEN
mw_Extra_Registerreg_cval <= Extra;
END IF;
END IF;
END PROCESS extra_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'L_Register' of 'adff'
L_Register_Out <= mw_L_Registerreg_cval;
l_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (load_enable = '1') THEN
mw_L_Registerreg_cval <= L;
END IF;
END IF;
END PROCESS l_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'Negative_CCR_Register' of 'adff'
Negative_CCR_Out <= mw_Negative_CCR_Registerreg_cval;
negative_ccr_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (rst = '1') THEN
mw_Negative_CCR_Registerreg_cval <= '0';
ELSIF (VNZ_CCR_enable = '1') THEN
mw_Negative_CCR_Registerreg_cval <= Is_negative;
END IF;
END IF;
END PROCESS negative_ccr_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'Overflow_CCR_Register' of 'adff'
Overflow_CCR_Out <= mw_Overflow_CCR_Registerreg_cval;
overflow_ccr_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (rst = '1') THEN
mw_Overflow_CCR_Registerreg_cval <= '0';
ELSIF (VNZ_CCR_enable = '1') THEN
mw_Overflow_CCR_Registerreg_cval <= Is_ovfl;
END IF;
END IF;
END PROCESS overflow_ccr_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'R_Register' of 'adff'
R_Register_Out <= mw_R_Registerreg_cval;
r_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (load_enable = '1') THEN
mw_R_Registerreg_cval <= R;
END IF;
END IF;
END PROCESS r_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'Zero_CCR_Register' of 'adff'
Zero_CCR_Out <= mw_Zero_CCR_Registerreg_cval;
zero_ccr_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (rst = '1') THEN
mw_Zero_CCR_Registerreg_cval <= '0';
ELSIF (VNZ_CCR_enable = '1') THEN
mw_Zero_CCR_Registerreg_cval <= Is_zero;
END IF;
END IF;
END PROCESS zero_ccr_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'pcval_Register' of 'adff'
pcval_Register_Out <= mw_pcval_Registerreg_cval;
pcval_registerseq_proc: PROCESS (clk)BEGIN
IF (clk'EVENT AND clk='1') THEN
IF (load_enable = '1') THEN
mw_pcval_Registerreg_cval <= pcval;
END IF;
END IF;
END PROCESS pcval_registerseq_proc;
-- ModuleWare code(v1.12) for instance 'CCR_bitmask' of 'and'
dout13 <= Is_Branch AND dout6;
-- ModuleWare code(v1.12) for instance 'Carry_CCR_load_AND' of 'and'
Carry_CCR_enable <= Enable_Carry_CCR AND load_enable;
-- ModuleWare code(v1.12) for instance 'Carry_bitmask_AND' of 'and'
dout10 <= Carry_CCR_Out AND Dest_bit12;
-- ModuleWare code(v1.12) for instance 'Negative_bitmaskt_AND' of 'and'
dout12 <= Negative_CCR_Out AND Dest_bit10;
-- ModuleWare code(v1.12) for instance 'Overflow_bitmask_AND' of 'and'
dout11 <= Overflow_CCR_Out AND Dest_bit11;
-- ModuleWare code(v1.12) for instance 'VNZ_CCR_load_AND' of 'and'
VNZ_CCR_enable <= Enable_VNZ_CCR AND load_enable;
-- ModuleWare code(v1.12) for instance 'Zero_bitmask_AND' of 'and'
dout5 <= Zero_CCR_Out AND Dest_bit9;
-- ModuleWare code(v1.12) for instance 'jaddress_Buff' of 'buff'
jaddress <= Result_Intermediate;
-- ModuleWare code(v1.12) for instance 'ALU_MODE_ONE' of 'constval'
dout1 <= '1';
-- ModuleWare code(v1.12) for instance 'ALU_MODE_ZERO' of 'constval'
dout <= '0';
-- ModuleWare code(v1.12) for instance 'ALU_cin_ONE' of 'constval'
dout3 <= '1';
-- ModuleWare code(v1.12) for instance 'ALU_cin_ZERO' of 'constval'
dout2 <= '0';
-- ModuleWare code(v1.12) for instance 'Control_ZERO' of 'constval'
dout15 <= "0000000000000000";
-- ModuleWare code(v1.12) for instance 'FOURTEEN' of 'constval'
dout9 <= "1110";
-- ModuleWare code(v1.12) for instance 'jump_ONE' of 'constval'
dout4 <= '1';
-- ModuleWare code(v1.12) for instance 'Carry_CCR_inverter' of 'inv'
dout7 <= NOT(Carry_CCR_Out);
-- ModuleWare code(v1.12) for instance 'stall_inverter' of 'inv'
load_enable <= NOT(stall);
-- ModuleWare code(v1.12) for instance 'ALU_cin_MUX' of 'mux'
alu_cin_muxcombo_proc: PROCESS(dout2, Carry_CCR_Out, dout3, dout7,
ALU_cin_Control)
BEGIN
CASE ALU_cin_Control IS
WHEN "00" => dout8 <= dout2;
WHEN "01" => dout8 <= Carry_CCR_Out;
WHEN "10" => dout8 <= dout3;
WHEN "11" => dout8 <= dout7;
WHEN OTHERS => dout8 <= 'X';
END CASE;
END PROCESS alu_cin_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'ALU_mode_MUX' of 'mux'
alu_mode_muxcombo_proc: PROCESS(dout, dout1, ALU_mode_Control)
BEGIN
CASE ALU_mode_Control IS
WHEN '0' => dout14 <= dout;
WHEN '1' => dout14 <= dout1;
WHEN OTHERS => dout14 <= 'X';
END CASE;
END PROCESS alu_mode_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'Carry_CCR_MUX' of 'mux'
carry_ccr_muxcombo_proc: PROCESS(ALU_cout, to_Carry_CCR,
from_Shifter_Control)
BEGIN
CASE from_Shifter_Control IS
WHEN '0' => Carry_CCR_In <= ALU_cout;
WHEN '1' => Carry_CCR_In <= to_Carry_CCR;
WHEN OTHERS => Carry_CCR_In <= 'X';
END CASE;
END PROCESS carry_ccr_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'Control_Input_MUX' of 'mux'
control_input_muxcombo_proc: PROCESS(dout15, Control, can_move_on)
BEGIN
CASE can_move_on IS
WHEN '0' => dout16 <= dout15;
WHEN '1' => dout16 <= Control;
WHEN OTHERS => dout16 <= (OTHERS => 'X');
END CASE;
END PROCESS control_input_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'Dest_Execute_Out_MUX' of 'mux'
dest_execute_out_muxcombo_proc: PROCESS(Dest_Register_Out, dout9,
Is_JAL)
BEGIN
CASE Is_JAL IS
WHEN '0' => Dest_Execute_Out <= Dest_Register_Out;
WHEN '1' => Dest_Execute_Out <= dout9;
WHEN OTHERS => Dest_Execute_Out <= (OTHERS => 'X');
END CASE;
END PROCESS dest_execute_out_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'Result_Intermediate' of 'mux'
result_intermediatecombo_proc: PROCESS(ALU_Result, shifter_Out,
from_Shifter_Control)
BEGIN
CASE from_Shifter_Control IS
WHEN '0' => Result_Intermediate <= ALU_Result;
WHEN '1' => Result_Intermediate <= shifter_Out;
WHEN OTHERS => Result_Intermediate <= (OTHERS => 'X');
END CASE;
END PROCESS result_intermediatecombo_proc;
-- ModuleWare code(v1.12) for instance 'Result_MUX' of 'mux'
result_muxcombo_proc: PROCESS(Result_Intermediate, next_pc_val,
Is_JAL)
BEGIN
CASE Is_JAL IS
WHEN '0' => Result <= Result_Intermediate;
WHEN '1' => Result <= next_pc_val;
WHEN OTHERS => Result <= (OTHERS => 'X');
END CASE;
END PROCESS result_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'jump_MUX' of 'mux'
jump_muxcombo_proc: PROCESS(dout13, dout4, Is_Unconditional_Jumps)
BEGIN
CASE Is_Unconditional_Jumps IS
WHEN '0' => jump <= dout13;
WHEN '1' => jump <= dout4;
WHEN OTHERS => jump <= 'X';
END CASE;
END PROCESS jump_muxcombo_proc;
-- ModuleWare code(v1.12) for instance 'CCR_bitmask_OR' of 'or'
dout6 <= dout5 OR dout12 OR dout11 OR dout10;
-- ModuleWare code(v1.12) for instance 'Additional_Execute_Control_Splitter' of 'split'
mw_Additional_Execute_Control_Splittertemp_din <= Additional_Execute_Control;
additional_execute_control_splittercombo_proc: PROCESS (mw_Additional_Execute_Control_Splittertemp_din)
VARIABLE temp_din: std_logic_vector(3 DOWNTO 0);
BEGIN
temp_din := mw_Additional_Execute_Control_Splittertemp_din(3 DOWNTO 0);
Enable_VNZ_CCR <= temp_din(0);
Enable_Carry_CCR <= temp_din(1);
Is_JAL <= temp_din(2);
Is_Unconditional_Jumps <= temp_din(3);
END PROCESS additional_execute_control_splittercombo_proc;
-- ModuleWare code(v1.12) for instance 'Control_Splitter' of 'split'
mw_Control_Splittertemp_din <= Control_Register_Out;
control_splittercombo_proc: PROCESS (mw_Control_Splittertemp_din)
VARIABLE temp_din: std_logic_vector(15 DOWNTO 0);
BEGIN
temp_din := mw_Control_Splittertemp_din(15 DOWNTO 0);
Execute_Control <= temp_din(8 DOWNTO 0);
Additional_Execute_Control <= temp_din(12 DOWNTO 9);
Control_Out <= temp_din(15 DOWNTO 13);
END PROCESS control_splittercombo_proc;
-- ModuleWare code(v1.12) for instance 'Dest_Splitter' of 'split'
mw_Dest_Splittertemp_din <= Dest_Register_Out;
dest_splittercombo_proc: PROCESS (mw_Dest_Splittertemp_din)
VARIABLE temp_din: std_logic_vector(3 DOWNTO 0);
BEGIN
temp_din := mw_Dest_Splittertemp_din(3 DOWNTO 0);
Dest_bit9 <= temp_din(0);
Dest_bit10 <= temp_din(1);
Dest_bit11 <= temp_din(2);
Dest_bit12 <= temp_din(3);
END PROCESS dest_splittercombo_proc;
-- ModuleWare code(v1.12) for instance 'Execute_Control_Splitter' of 'split'
mw_Execute_Control_Splittertemp_din <= Execute_Control;
execute_control_splittercombo_proc: PROCESS (mw_Execute_Control_Splittertemp_din)
VARIABLE temp_din: std_logic_vector(8 DOWNTO 0);
BEGIN
temp_din := mw_Execute_Control_Splittertemp_din(8 DOWNTO 0);
Is_Branch <= temp_din(0);
from_Shifter_Control <= temp_din(1);
ALU_cin_Control <= temp_din(3 DOWNTO 2);
operation <= temp_din(7 DOWNTO 4);
ALU_mode_Control <= temp_din(8);
END PROCESS execute_control_splittercombo_proc;
-- Instance port mappings.
U_0 : mini_ALU
PORT MAP (
ALU_cin => dout8,
ALU_mode => dout14,
Left => L_Register_Out,
Right => R_Register_Out,
operation => operation,
pcval => pcval_Register_Out,
ALU_Result => ALU_Result,
ALU_cout => ALU_cout,
Is_negative => Is_negative,
Is_ovfl => Is_ovfl,
Is_zero => Is_zero,
next_pc_val => next_pc_val
);
U_1 : mini_Shifter
PORT MAP (
shifter_In => L_Register_Out,
shift_operation => operation,
shifter_Out => shifter_Out,
from_Carry_CCR => Carry_CCR_Out,
to_Carry_CCR => to_Carry_CCR
);
END struct;
|
library ieee;
use ieee.std_logic_1164.all;
use ieee.numeric_std.all;
library work;
use work.xtcpkg.all;
entity mmu is
generic (
TLB_ENTRY_BITS: natural := 3;
CONTEXT_SIZE_BITS: natural := 1;
SIMPLIFIED: boolean := true
);
port (
clk: in std_logic;
rst: in std_logic;
addr: in std_logic_vector(31 downto 0);
ctx: in std_logic_vector(CONTEXT_SIZE_BITS-1 downto 0);
en: in std_logic;
tlbw: in std_logic;
tlba: in std_logic_vector(TLB_ENTRY_BITS-1 downto 0);
tlbv: in tlb_entry_type;
paddr: out std_logic_vector(31 downto 0);
valid: out std_logic;
pw: out std_logic; -- Write permission
pr: out std_logic; -- Read permission
px: out std_logic; -- eXecute permission
ps: out std_logic -- Supervisor/User
);
end entity mmu;
architecture behave of mmu is
constant TLB_ENTRIES: integer := 2**TLB_ENTRY_BITS;
constant PAGE_4K: std_logic_vector(1 downto 0) := "00";
constant PAGE_256K: std_logic_vector(1 downto 0) := "01";
constant PAGE_1M: std_logic_vector(1 downto 0) := "10";
constant PAGE_16M: std_logic_vector(1 downto 0) := "11";
signal tlbmatch: std_logic_vector(TLB_ENTRIES-1 downto 0);
type tlb_array_type is array(TLB_ENTRIES-1 downto 0) of tlb_entry_type;
signal tlb: tlb_array_type;
subtype physaddr_t is std_logic_vector(31 downto 0);
type physaddr_a is array(TLB_ENTRIES-1 downto 0) of physaddr_t;
signal physaddr: physaddr_a;
begin
-- Match signals
tlbe: for n in 0 to TLB_ENTRIES-1 generate
process(tlb(n), addr, ctx)
variable match_4k, match_256k, match_1m, match_16m, match_ctx: std_logic;
variable e: tlb_entry_type;
begin
e:=tlb(n);
match_4k :='0';
match_256k :='0';
match_16m :='0';
match_1m :='0';
match_ctx :='0';
physaddr(n) <= (others => 'X');
if (e.ctx=ctx) then
match_ctx:='1';
end if;
if (e.vaddr(17 downto 12) = addr(17 downto 12)) then
match_4k := '1';
end if;
if SIMPLIFIED then
match_1m := '1';
match_16m := '1';
match_256k := '1';
else
if (e.vaddr(19 downto 18) = addr(19 downto 18)) then
match_256k := '1';
end if;
if (e.vaddr(23 downto 20) = addr(23 downto 20)) then
match_1m := '1';
end if;
if (e.vaddr(31 downto 24) = addr(31 downto 24)) then
match_16m := '1';
end if;
end if;
if SIMPLIFIED then
tlbmatch(n) <= match_ctx and match_16m and match_1m and match_256k and match_4k;
physaddr(n) <= e.paddr(31 downto 12) & addr(11 downto 0);
else
case (e.pagesize) is
when PAGE_4K =>
tlbmatch(n) <= match_ctx and match_16m and match_1m and match_256k and match_4k;
physaddr(n) <= e.paddr(31 downto 12) & addr(11 downto 0);
when PAGE_256K =>
tlbmatch(n) <= match_ctx and match_16m and match_1m and match_256k;
physaddr(n) <= e.paddr(31 downto 18) & addr(17 downto 0);
when PAGE_1M =>
tlbmatch(n) <= match_ctx and match_16m and match_1m;
physaddr(n) <= e.paddr(31 downto 20) & addr(19 downto 0);
when PAGE_16M =>
tlbmatch(n) <= match_ctx and match_16m;
physaddr(n) <= e.paddr(31 downto 24) & addr(23 downto 0);
when others =>
tlbmatch(n) <= '0';
end case;
end if;
end process;
end generate;
process(clk)
variable valid_i: std_logic;
begin
if rising_edge(clk) then
valid_i:='0';
if en='1' then
for i in 0 to TLB_ENTRIES-1 loop
if tlbmatch(i)='1' then
paddr <= physaddr(i);
valid_i:='1';
end if;
end loop;
valid<=valid_i;
end if;
if tlbw='1' then
tlb(to_integer(unsigned(tlba)))<=tlbv;
end if;
end if;
end process;
end behave;
|
package fifo_pkg is
attribute mark_debug of wr_en : signal is "true";
attribute mark_debug of almost_empty : signal is "true";
attribute mark_debug of full : signal is "true";
end package;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2581.vhd,v 1.2 2001-10-26 16:30:20 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c13s03b01x00p02n01i02581ent IS
END c13s03b01x00p02n01i02581ent;
ARCHITECTURE c13s03b01x00p02n01i02581arch OF c13s03b01x00p02n01i02581ent IS
BEGIN
TESTING: PROCESS
variable k! : integer := 0;
BEGIN
assert FALSE
report "***FAILED TEST: c13s03b01x00p02n01i02581 - Identifier can not end with '!'."
severity ERROR;
wait;
END PROCESS TESTING;
END c13s03b01x00p02n01i02581arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2581.vhd,v 1.2 2001-10-26 16:30:20 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c13s03b01x00p02n01i02581ent IS
END c13s03b01x00p02n01i02581ent;
ARCHITECTURE c13s03b01x00p02n01i02581arch OF c13s03b01x00p02n01i02581ent IS
BEGIN
TESTING: PROCESS
variable k! : integer := 0;
BEGIN
assert FALSE
report "***FAILED TEST: c13s03b01x00p02n01i02581 - Identifier can not end with '!'."
severity ERROR;
wait;
END PROCESS TESTING;
END c13s03b01x00p02n01i02581arch;
|
-- Copyright (C) 2001 Bill Billowitch.
-- Some of the work to develop this test suite was done with Air Force
-- support. The Air Force and Bill Billowitch assume no
-- responsibilities for this software.
-- This file is part of VESTs (Vhdl tESTs).
-- VESTs is free software; you can redistribute it and/or modify it
-- under the terms of the GNU General Public License as published by the
-- Free Software Foundation; either version 2 of the License, or (at
-- your option) any later version.
-- VESTs is distributed in the hope that it will be useful, but WITHOUT
-- ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
-- FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License
-- for more details.
-- You should have received a copy of the GNU General Public License
-- along with VESTs; if not, write to the Free Software Foundation,
-- Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
-- ---------------------------------------------------------------------
--
-- $Id: tc2581.vhd,v 1.2 2001-10-26 16:30:20 paw Exp $
-- $Revision: 1.2 $
--
-- ---------------------------------------------------------------------
ENTITY c13s03b01x00p02n01i02581ent IS
END c13s03b01x00p02n01i02581ent;
ARCHITECTURE c13s03b01x00p02n01i02581arch OF c13s03b01x00p02n01i02581ent IS
BEGIN
TESTING: PROCESS
variable k! : integer := 0;
BEGIN
assert FALSE
report "***FAILED TEST: c13s03b01x00p02n01i02581 - Identifier can not end with '!'."
severity ERROR;
wait;
END PROCESS TESTING;
END c13s03b01x00p02n01i02581arch;
|
-- Copyright 1986-2016 Xilinx, Inc. All Rights Reserved.
-- --------------------------------------------------------------------------------
-- Tool Version: Vivado v.2016.4 (win64) Build 1733598 Wed Dec 14 22:35:39 MST 2016
-- Date : Sun Apr 09 08:27:08 2017
-- Host : GILAMONSTER running 64-bit major release (build 9200)
-- Command : write_vhdl -force -mode synth_stub
-- c:/ZyboIP/examples/ov7670_hessian_split/ov7670_hessian_split.srcs/sources_1/bd/system/ip/system_vga_color_test_0_0/system_vga_color_test_0_0_stub.vhdl
-- Design : system_vga_color_test_0_0
-- Purpose : Stub declaration of top-level module interface
-- Device : xc7z020clg484-1
-- --------------------------------------------------------------------------------
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
entity system_vga_color_test_0_0 is
Port (
clk_25 : in STD_LOGIC;
xaddr : in STD_LOGIC_VECTOR ( 9 downto 0 );
yaddr : in STD_LOGIC_VECTOR ( 9 downto 0 );
rgb : out STD_LOGIC_VECTOR ( 23 downto 0 )
);
end system_vga_color_test_0_0;
architecture stub of system_vga_color_test_0_0 is
attribute syn_black_box : boolean;
attribute black_box_pad_pin : string;
attribute syn_black_box of stub : architecture is true;
attribute black_box_pad_pin of stub : architecture is "clk_25,xaddr[9:0],yaddr[9:0],rgb[23:0]";
attribute x_core_info : string;
attribute x_core_info of stub : architecture is "vga_color_test,Vivado 2016.4";
begin
end;
|
-- -*- vhdl -*-
-------------------------------------------------------------------------------
-- Copyright (c) 2012, The CARPE Project, All rights reserved. --
-- See the AUTHORS file for individual contributors. --
-- --
-- Copyright and related rights are licensed under the Solderpad --
-- Hardware License, Version 0.51 (the "License"); you may not use this --
-- file except in compliance with the License. You may obtain a copy of --
-- the License at http://solderpad.org/licenses/SHL-0.51. --
-- --
-- Unless required by applicable law or agreed to in writing, software, --
-- hardware and materials distributed under this License is distributed --
-- on an "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, --
-- either express or implied. See the License for the specific language --
-- governing permissions and limitations under the License. --
-------------------------------------------------------------------------------
library util;
use util.types_pkg.all;
architecture rtl of cpu_btb_miss is
begin
cpu_btb_miss_ctrl_out <= (
rvalid => '0'
);
cpu_btb_miss_dp_out <= (
rstate => void,
rtarget => (others => 'X')
);
end;
|
-- Copyright 1986-2018 Xilinx, Inc. All Rights Reserved.
-- --------------------------------------------------------------------------------
-- Tool Version: Vivado v.2018.2 (win64) Build 2258646 Thu Jun 14 20:03:12 MDT 2018
-- Date : Sun Sep 22 03:34:20 2019
-- Host : varun-laptop running 64-bit Service Pack 1 (build 7601)
-- Command : write_vhdl -force -mode synth_stub
-- d:/github/Digital-Hardware-Modelling/xilinx-vivado/gcd/gcd.srcs/sources_1/bd/gcd_block_design/ip/gcd_block_design_auto_pc_1/gcd_block_design_auto_pc_1_stub.vhdl
-- Design : gcd_block_design_auto_pc_1
-- Purpose : Stub declaration of top-level module interface
-- Device : xc7z010clg400-1
-- --------------------------------------------------------------------------------
library IEEE;
use IEEE.STD_LOGIC_1164.ALL;
entity gcd_block_design_auto_pc_1 is
Port (
aclk : in STD_LOGIC;
aresetn : in STD_LOGIC;
s_axi_awid : in STD_LOGIC_VECTOR ( 11 downto 0 );
s_axi_awaddr : in STD_LOGIC_VECTOR ( 31 downto 0 );
s_axi_awlen : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_awsize : in STD_LOGIC_VECTOR ( 2 downto 0 );
s_axi_awburst : in STD_LOGIC_VECTOR ( 1 downto 0 );
s_axi_awlock : in STD_LOGIC_VECTOR ( 1 downto 0 );
s_axi_awcache : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_awprot : in STD_LOGIC_VECTOR ( 2 downto 0 );
s_axi_awqos : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_awvalid : in STD_LOGIC;
s_axi_awready : out STD_LOGIC;
s_axi_wid : in STD_LOGIC_VECTOR ( 11 downto 0 );
s_axi_wdata : in STD_LOGIC_VECTOR ( 31 downto 0 );
s_axi_wstrb : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_wlast : in STD_LOGIC;
s_axi_wvalid : in STD_LOGIC;
s_axi_wready : out STD_LOGIC;
s_axi_bid : out STD_LOGIC_VECTOR ( 11 downto 0 );
s_axi_bresp : out STD_LOGIC_VECTOR ( 1 downto 0 );
s_axi_bvalid : out STD_LOGIC;
s_axi_bready : in STD_LOGIC;
s_axi_arid : in STD_LOGIC_VECTOR ( 11 downto 0 );
s_axi_araddr : in STD_LOGIC_VECTOR ( 31 downto 0 );
s_axi_arlen : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_arsize : in STD_LOGIC_VECTOR ( 2 downto 0 );
s_axi_arburst : in STD_LOGIC_VECTOR ( 1 downto 0 );
s_axi_arlock : in STD_LOGIC_VECTOR ( 1 downto 0 );
s_axi_arcache : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_arprot : in STD_LOGIC_VECTOR ( 2 downto 0 );
s_axi_arqos : in STD_LOGIC_VECTOR ( 3 downto 0 );
s_axi_arvalid : in STD_LOGIC;
s_axi_arready : out STD_LOGIC;
s_axi_rid : out STD_LOGIC_VECTOR ( 11 downto 0 );
s_axi_rdata : out STD_LOGIC_VECTOR ( 31 downto 0 );
s_axi_rresp : out STD_LOGIC_VECTOR ( 1 downto 0 );
s_axi_rlast : out STD_LOGIC;
s_axi_rvalid : out STD_LOGIC;
s_axi_rready : in STD_LOGIC;
m_axi_awaddr : out STD_LOGIC_VECTOR ( 31 downto 0 );
m_axi_awprot : out STD_LOGIC_VECTOR ( 2 downto 0 );
m_axi_awvalid : out STD_LOGIC;
m_axi_awready : in STD_LOGIC;
m_axi_wdata : out STD_LOGIC_VECTOR ( 31 downto 0 );
m_axi_wstrb : out STD_LOGIC_VECTOR ( 3 downto 0 );
m_axi_wvalid : out STD_LOGIC;
m_axi_wready : in STD_LOGIC;
m_axi_bresp : in STD_LOGIC_VECTOR ( 1 downto 0 );
m_axi_bvalid : in STD_LOGIC;
m_axi_bready : out STD_LOGIC;
m_axi_araddr : out STD_LOGIC_VECTOR ( 31 downto 0 );
m_axi_arprot : out STD_LOGIC_VECTOR ( 2 downto 0 );
m_axi_arvalid : out STD_LOGIC;
m_axi_arready : in STD_LOGIC;
m_axi_rdata : in STD_LOGIC_VECTOR ( 31 downto 0 );
m_axi_rresp : in STD_LOGIC_VECTOR ( 1 downto 0 );
m_axi_rvalid : in STD_LOGIC;
m_axi_rready : out STD_LOGIC
);
end gcd_block_design_auto_pc_1;
architecture stub of gcd_block_design_auto_pc_1 is
attribute syn_black_box : boolean;
attribute black_box_pad_pin : string;
attribute syn_black_box of stub : architecture is true;
attribute black_box_pad_pin of stub : architecture is "aclk,aresetn,s_axi_awid[11:0],s_axi_awaddr[31:0],s_axi_awlen[3:0],s_axi_awsize[2:0],s_axi_awburst[1:0],s_axi_awlock[1:0],s_axi_awcache[3:0],s_axi_awprot[2:0],s_axi_awqos[3:0],s_axi_awvalid,s_axi_awready,s_axi_wid[11:0],s_axi_wdata[31:0],s_axi_wstrb[3:0],s_axi_wlast,s_axi_wvalid,s_axi_wready,s_axi_bid[11:0],s_axi_bresp[1:0],s_axi_bvalid,s_axi_bready,s_axi_arid[11:0],s_axi_araddr[31:0],s_axi_arlen[3:0],s_axi_arsize[2:0],s_axi_arburst[1:0],s_axi_arlock[1:0],s_axi_arcache[3:0],s_axi_arprot[2:0],s_axi_arqos[3:0],s_axi_arvalid,s_axi_arready,s_axi_rid[11:0],s_axi_rdata[31:0],s_axi_rresp[1:0],s_axi_rlast,s_axi_rvalid,s_axi_rready,m_axi_awaddr[31:0],m_axi_awprot[2:0],m_axi_awvalid,m_axi_awready,m_axi_wdata[31:0],m_axi_wstrb[3:0],m_axi_wvalid,m_axi_wready,m_axi_bresp[1:0],m_axi_bvalid,m_axi_bready,m_axi_araddr[31:0],m_axi_arprot[2:0],m_axi_arvalid,m_axi_arready,m_axi_rdata[31:0],m_axi_rresp[1:0],m_axi_rvalid,m_axi_rready";
attribute X_CORE_INFO : string;
attribute X_CORE_INFO of stub : architecture is "axi_protocol_converter_v2_1_17_axi_protocol_converter,Vivado 2018.2";
begin
end;
|
-----------------------------------------------------------------------------
-- LEON3 Demonstration design test bench configuration
-- Copyright (C) 2009 Aeroflex Gaisler
------------------------------------------------------------------------------
library techmap;
use techmap.gencomp.all;
package config is
-- Technology and synthesis options
constant CFG_FABTECH : integer := inferred;
constant CFG_MEMTECH : integer := inferred;
constant CFG_PADTECH : integer := inferred;
constant CFG_NOASYNC : integer := 0;
constant CFG_SCAN : integer := 0;
-- Clock generator
constant CFG_CLKTECH : integer := inferred;
constant CFG_CLKMUL : integer := 2;
constant CFG_CLKDIV : integer := 2;
constant CFG_OCLKDIV : integer := 1;
constant CFG_OCLKBDIV : integer := 0;
constant CFG_OCLKCDIV : integer := 0;
constant CFG_PCIDLL : integer := 0;
constant CFG_PCISYSCLK: integer := 0;
constant CFG_CLK_NOFB : integer := 0;
-- AMBA settings
constant CFG_DEFMST : integer := (0);
constant CFG_RROBIN : integer := 1;
constant CFG_SPLIT : integer := 0;
constant CFG_FPNPEN : integer := 0;
constant CFG_AHBIO : integer := 16#FFF#;
constant CFG_APBADDR : integer := 16#800#;
constant CFG_AHB_MON : integer := 0;
constant CFG_AHB_MONERR : integer := 0;
constant CFG_AHB_MONWAR : integer := 0;
constant CFG_AHB_DTRACE : integer := 0;
-- DSU UART
constant CFG_AHB_UART : integer := 1;
-- JTAG based DSU interface
constant CFG_AHB_JTAG : integer := 0;
-- AHB RAM
constant CFG_AHBRAMEN : integer := 0;
constant CFG_AHBRSZ : integer := 1;
constant CFG_AHBRADDR : integer := 16#A00#;
constant CFG_AHBRPIPE : integer := 0;
-- Gaisler Ethernet core
constant CFG_GRETH : integer := 1;
constant CFG_GRETH1G : integer := 0;
constant CFG_ETH_FIFO : integer := 32;
-- PCI interface
constant CFG_PCI : integer := 2;
constant CFG_PCIVID : integer := 16#1AC8#;
constant CFG_PCIDID : integer := 16#0054#;
constant CFG_PCIDEPTH : integer := 16;
constant CFG_PCI_MTF : integer := 1;
-- PCI trace buffer
constant CFG_PCITBUFEN: integer := 0;
constant CFG_PCITBUF : integer := 256;
end;
|
-----------------------------------------------------------------------------
-- LEON3 Demonstration design test bench configuration
-- Copyright (C) 2009 Aeroflex Gaisler
------------------------------------------------------------------------------
library techmap;
use techmap.gencomp.all;
package config is
-- Technology and synthesis options
constant CFG_FABTECH : integer := inferred;
constant CFG_MEMTECH : integer := inferred;
constant CFG_PADTECH : integer := inferred;
constant CFG_NOASYNC : integer := 0;
constant CFG_SCAN : integer := 0;
-- Clock generator
constant CFG_CLKTECH : integer := inferred;
constant CFG_CLKMUL : integer := 2;
constant CFG_CLKDIV : integer := 2;
constant CFG_OCLKDIV : integer := 1;
constant CFG_OCLKBDIV : integer := 0;
constant CFG_OCLKCDIV : integer := 0;
constant CFG_PCIDLL : integer := 0;
constant CFG_PCISYSCLK: integer := 0;
constant CFG_CLK_NOFB : integer := 0;
-- AMBA settings
constant CFG_DEFMST : integer := (0);
constant CFG_RROBIN : integer := 1;
constant CFG_SPLIT : integer := 0;
constant CFG_FPNPEN : integer := 0;
constant CFG_AHBIO : integer := 16#FFF#;
constant CFG_APBADDR : integer := 16#800#;
constant CFG_AHB_MON : integer := 0;
constant CFG_AHB_MONERR : integer := 0;
constant CFG_AHB_MONWAR : integer := 0;
constant CFG_AHB_DTRACE : integer := 0;
-- DSU UART
constant CFG_AHB_UART : integer := 1;
-- JTAG based DSU interface
constant CFG_AHB_JTAG : integer := 0;
-- AHB RAM
constant CFG_AHBRAMEN : integer := 0;
constant CFG_AHBRSZ : integer := 1;
constant CFG_AHBRADDR : integer := 16#A00#;
constant CFG_AHBRPIPE : integer := 0;
-- Gaisler Ethernet core
constant CFG_GRETH : integer := 1;
constant CFG_GRETH1G : integer := 0;
constant CFG_ETH_FIFO : integer := 32;
-- PCI interface
constant CFG_PCI : integer := 2;
constant CFG_PCIVID : integer := 16#1AC8#;
constant CFG_PCIDID : integer := 16#0054#;
constant CFG_PCIDEPTH : integer := 16;
constant CFG_PCI_MTF : integer := 1;
-- PCI trace buffer
constant CFG_PCITBUFEN: integer := 0;
constant CFG_PCITBUF : integer := 256;
end;
|
-- Copyright (c) 2014 CERN
-- Maciej Suminski <maciej.suminski@cern.ch>
--
-- This source code is free software; you can redistribute it
-- and/or modify it in source code form under the terms of the GNU
-- General Public License as published by the Free Software
-- Foundation; either version 2 of the License, or (at your option)
-- any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program; if not, write to the Free Software
-- Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA
-- Tests if constants in packages can be initialized with expressions
-- that normally require elaboration to be properly emitted.
library IEEE;
use IEEE.STD_LOGIC_1164.all;
use work.const_package_pkg.all;
entity const_package is
end const_package;
architecture test of const_package is
signal bitstring : std_logic_vector(3 downto 0) := c_bitstring;
signal aggregate : std_logic_vector(7 downto 0);
begin
aggregate <= c_aggregate;
end test;
|
-- Copyright (c) 2014 CERN
-- Maciej Suminski <maciej.suminski@cern.ch>
--
-- This source code is free software; you can redistribute it
-- and/or modify it in source code form under the terms of the GNU
-- General Public License as published by the Free Software
-- Foundation; either version 2 of the License, or (at your option)
-- any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program; if not, write to the Free Software
-- Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA
-- Tests if constants in packages can be initialized with expressions
-- that normally require elaboration to be properly emitted.
library IEEE;
use IEEE.STD_LOGIC_1164.all;
use work.const_package_pkg.all;
entity const_package is
end const_package;
architecture test of const_package is
signal bitstring : std_logic_vector(3 downto 0) := c_bitstring;
signal aggregate : std_logic_vector(7 downto 0);
begin
aggregate <= c_aggregate;
end test;
|
-- Copyright (c) 2014 CERN
-- Maciej Suminski <maciej.suminski@cern.ch>
--
-- This source code is free software; you can redistribute it
-- and/or modify it in source code form under the terms of the GNU
-- General Public License as published by the Free Software
-- Foundation; either version 2 of the License, or (at your option)
-- any later version.
--
-- This program is distributed in the hope that it will be useful,
-- but WITHOUT ANY WARRANTY; without even the implied warranty of
-- MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
-- GNU General Public License for more details.
--
-- You should have received a copy of the GNU General Public License
-- along with this program; if not, write to the Free Software
-- Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA
-- Tests if constants in packages can be initialized with expressions
-- that normally require elaboration to be properly emitted.
library IEEE;
use IEEE.STD_LOGIC_1164.all;
use work.const_package_pkg.all;
entity const_package is
end const_package;
architecture test of const_package is
signal bitstring : std_logic_vector(3 downto 0) := c_bitstring;
signal aggregate : std_logic_vector(7 downto 0);
begin
aggregate <= c_aggregate;
end test;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
|
----------------------------------------------------------------------------
-- This file is a part of the GRLIB VHDL IP LIBRARY
-- Copyright (C) 2009 Aeroflex Gaisler
----------------------------------------------------------------------------
-- Entity: ahbrom
-- File: ahbrom.vhd
-- Author: Jiri Gaisler - Gaisler Research
-- Description: AHB rom. 0/1-waitstate read
----------------------------------------------------------------------------
library ieee;
use ieee.std_logic_1164.all;
library grlib;
use grlib.amba.all;
use grlib.stdlib.all;
use grlib.devices.all;
entity ahbrom is
generic (
hindex : integer := 0;
haddr : integer := 0;
hmask : integer := 16#fff#;
pipe : integer := 0;
tech : integer := 0;
kbytes : integer := 1);
port (
rst : in std_ulogic;
clk : in std_ulogic;
ahbsi : in ahb_slv_in_type;
ahbso : out ahb_slv_out_type
);
end;
architecture rtl of ahbrom is
constant abits : integer := 10;
constant bytes : integer := 560;
constant hconfig : ahb_config_type := (
0 => ahb_device_reg ( VENDOR_GAISLER, GAISLER_AHBROM, 0, 0, 0),
4 => ahb_membar(haddr, '1', '1', hmask), others => zero32);
signal romdata : std_logic_vector(31 downto 0);
signal addr : std_logic_vector(abits-1 downto 2);
signal hsel, hready : std_ulogic;
begin
ahbso.hresp <= "00";
ahbso.hsplit <= (others => '0');
ahbso.hirq <= (others => '0');
ahbso.hconfig <= hconfig;
ahbso.hindex <= hindex;
reg : process (clk)
begin
if rising_edge(clk) then
addr <= ahbsi.haddr(abits-1 downto 2);
end if;
end process;
p0 : if pipe = 0 generate
ahbso.hrdata <= ahbdrivedata(romdata);
ahbso.hready <= '1';
end generate;
p1 : if pipe = 1 generate
reg2 : process (clk)
begin
if rising_edge(clk) then
hsel <= ahbsi.hsel(hindex) and ahbsi.htrans(1);
hready <= ahbsi.hready;
ahbso.hready <= (not rst) or (hsel and hready) or
(ahbsi.hsel(hindex) and not ahbsi.htrans(1) and ahbsi.hready);
ahbso.hrdata <= ahbdrivedata(romdata);
end if;
end process;
end generate;
comb : process (addr)
begin
case conv_integer(addr) is
when 16#00000# => romdata <= X"81D82000";
when 16#00001# => romdata <= X"03000004";
when 16#00002# => romdata <= X"821060E0";
when 16#00003# => romdata <= X"81884000";
when 16#00004# => romdata <= X"81900000";
when 16#00005# => romdata <= X"81980000";
when 16#00006# => romdata <= X"81800000";
when 16#00007# => romdata <= X"A1800000";
when 16#00008# => romdata <= X"01000000";
when 16#00009# => romdata <= X"03002040";
when 16#0000A# => romdata <= X"8210600F";
when 16#0000B# => romdata <= X"C2A00040";
when 16#0000C# => romdata <= X"84100000";
when 16#0000D# => romdata <= X"01000000";
when 16#0000E# => romdata <= X"01000000";
when 16#0000F# => romdata <= X"01000000";
when 16#00010# => romdata <= X"01000000";
when 16#00011# => romdata <= X"01000000";
when 16#00012# => romdata <= X"80108002";
when 16#00013# => romdata <= X"01000000";
when 16#00014# => romdata <= X"01000000";
when 16#00015# => romdata <= X"01000000";
when 16#00016# => romdata <= X"01000000";
when 16#00017# => romdata <= X"01000000";
when 16#00018# => romdata <= X"87444000";
when 16#00019# => romdata <= X"8608E01F";
when 16#0001A# => romdata <= X"88100000";
when 16#0001B# => romdata <= X"8A100000";
when 16#0001C# => romdata <= X"8C100000";
when 16#0001D# => romdata <= X"8E100000";
when 16#0001E# => romdata <= X"A0100000";
when 16#0001F# => romdata <= X"A2100000";
when 16#00020# => romdata <= X"A4100000";
when 16#00021# => romdata <= X"A6100000";
when 16#00022# => romdata <= X"A8100000";
when 16#00023# => romdata <= X"AA100000";
when 16#00024# => romdata <= X"AC100000";
when 16#00025# => romdata <= X"AE100000";
when 16#00026# => romdata <= X"90100000";
when 16#00027# => romdata <= X"92100000";
when 16#00028# => romdata <= X"94100000";
when 16#00029# => romdata <= X"96100000";
when 16#0002A# => romdata <= X"98100000";
when 16#0002B# => romdata <= X"9A100000";
when 16#0002C# => romdata <= X"9C100000";
when 16#0002D# => romdata <= X"9E100000";
when 16#0002E# => romdata <= X"86A0E001";
when 16#0002F# => romdata <= X"16BFFFEF";
when 16#00030# => romdata <= X"81E00000";
when 16#00031# => romdata <= X"82102002";
when 16#00032# => romdata <= X"81904000";
when 16#00033# => romdata <= X"03000004";
when 16#00034# => romdata <= X"821060E0";
when 16#00035# => romdata <= X"81884000";
when 16#00036# => romdata <= X"01000000";
when 16#00037# => romdata <= X"01000000";
when 16#00038# => romdata <= X"01000000";
when 16#00039# => romdata <= X"83480000";
when 16#0003A# => romdata <= X"8330600C";
when 16#0003B# => romdata <= X"80886001";
when 16#0003C# => romdata <= X"02800024";
when 16#0003D# => romdata <= X"01000000";
when 16#0003E# => romdata <= X"07000000";
when 16#0003F# => romdata <= X"8610E178";
when 16#00040# => romdata <= X"C108C000";
when 16#00041# => romdata <= X"C118C000";
when 16#00042# => romdata <= X"C518C000";
when 16#00043# => romdata <= X"C918C000";
when 16#00044# => romdata <= X"CD18C000";
when 16#00045# => romdata <= X"D118C000";
when 16#00046# => romdata <= X"D518C000";
when 16#00047# => romdata <= X"D918C000";
when 16#00048# => romdata <= X"DD18C000";
when 16#00049# => romdata <= X"E118C000";
when 16#0004A# => romdata <= X"E518C000";
when 16#0004B# => romdata <= X"E918C000";
when 16#0004C# => romdata <= X"ED18C000";
when 16#0004D# => romdata <= X"F118C000";
when 16#0004E# => romdata <= X"F518C000";
when 16#0004F# => romdata <= X"F918C000";
when 16#00050# => romdata <= X"FD18C000";
when 16#00051# => romdata <= X"01000000";
when 16#00052# => romdata <= X"01000000";
when 16#00053# => romdata <= X"01000000";
when 16#00054# => romdata <= X"01000000";
when 16#00055# => romdata <= X"01000000";
when 16#00056# => romdata <= X"89A00842";
when 16#00057# => romdata <= X"01000000";
when 16#00058# => romdata <= X"01000000";
when 16#00059# => romdata <= X"01000000";
when 16#0005A# => romdata <= X"01000000";
when 16#0005B# => romdata <= X"10800005";
when 16#0005C# => romdata <= X"01000000";
when 16#0005D# => romdata <= X"01000000";
when 16#0005E# => romdata <= X"00000000";
when 16#0005F# => romdata <= X"00000000";
when 16#00060# => romdata <= X"87444000";
when 16#00061# => romdata <= X"8730E01C";
when 16#00062# => romdata <= X"8688E00F";
when 16#00063# => romdata <= X"12800015";
when 16#00064# => romdata <= X"03200000";
when 16#00065# => romdata <= X"05040E00";
when 16#00066# => romdata <= X"8410A033";
when 16#00067# => romdata <= X"C4204000";
when 16#00068# => romdata <= X"0539AE1B";
when 16#00069# => romdata <= X"8410A260";
when 16#0006A# => romdata <= X"C4206004";
when 16#0006B# => romdata <= X"050003FC";
when 16#0006C# => romdata <= X"C4206008";
when 16#0006D# => romdata <= X"82103860";
when 16#0006E# => romdata <= X"C4004000";
when 16#0006F# => romdata <= X"8530A00C";
when 16#00070# => romdata <= X"03000004";
when 16#00071# => romdata <= X"82106009";
when 16#00072# => romdata <= X"80A04002";
when 16#00073# => romdata <= X"12800005";
when 16#00074# => romdata <= X"03200000";
when 16#00075# => romdata <= X"0539A81B";
when 16#00076# => romdata <= X"8410A260";
when 16#00077# => romdata <= X"C4204000";
when 16#00078# => romdata <= X"05000080";
when 16#00079# => romdata <= X"82100000";
when 16#0007A# => romdata <= X"80A0E000";
when 16#0007B# => romdata <= X"02800005";
when 16#0007C# => romdata <= X"01000000";
when 16#0007D# => romdata <= X"82004002";
when 16#0007E# => romdata <= X"10BFFFFC";
when 16#0007F# => romdata <= X"8620E001";
when 16#00080# => romdata <= X"3D1003FF";
when 16#00081# => romdata <= X"BC17A3E0";
when 16#00082# => romdata <= X"BC278001";
when 16#00083# => romdata <= X"9C27A060";
when 16#00084# => romdata <= X"03100000";
when 16#00085# => romdata <= X"81C04000";
when 16#00086# => romdata <= X"01000000";
when 16#00087# => romdata <= X"01000000";
when 16#00088# => romdata <= X"00000000";
when 16#00089# => romdata <= X"00000000";
when 16#0008A# => romdata <= X"00000000";
when 16#0008B# => romdata <= X"00000000";
when 16#0008C# => romdata <= X"00000000";
when others => romdata <= (others => '-');
end case;
end process;
-- pragma translate_off
bootmsg : report_version
generic map ("ahbrom" & tost(hindex) &
": 32-bit AHB ROM Module, " & tost(bytes/4) & " words, " & tost(abits-2) & " address bits" );
-- pragma translate_on
end;
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