File size: 8,259 Bytes
cd886b3 | 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 202 203 204 205 206 207 208 209 210 211 212 213 214 215 216 217 218 219 220 221 222 223 224 225 226 227 228 229 230 231 232 233 234 235 236 237 238 239 240 241 242 243 244 245 246 247 248 249 250 251 252 253 254 255 256 257 258 259 260 261 262 263 264 265 266 267 268 269 270 271 272 273 274 275 276 277 278 279 280 281 282 283 284 285 286 287 288 289 290 291 292 293 294 295 296 297 298 299 300 301 302 303 304 305 306 307 308 309 310 311 312 313 314 315 316 317 318 319 320 321 322 323 324 325 326 327 328 329 330 331 332 333 334 335 336 337 338 339 340 341 342 343 344 345 346 347 | #include <stdint.h>
#define DEBUG_UART
extern void _exit_(void) __attribute__((noreturn));
void _boot_(void) __attribute__((weak));
struct cpu_regs {
uint32_t* pc;
uint32_t reson_code;
uint32_t* sys;
uint32_t regs[32];
};
static struct cpu_regs* const CPUregs = (struct cpu_regs* const)4;
static volatile uint32_t* const intc = (volatile uint32_t* const)0x20000000;
enum {
csr_mstatus,
csr_cyclel,
csr_mscratch,
csr_mtvec,
csr_mie,
csr_mip,
csr_mepc,
csr_mtval,
csr_mcause,
csr_mvendorid,
csr_misa,
csr_pc,
csr_extraflags,
csr_cycleh,
csr_timerl,
csr_timerh,
csr_timermatchl,
csr_timermatchh,
};
static const uint16_t csrnums[18] = {0x300,0xC00,0x340,0x305,0x304,0x344,0x341,0x343,0x342,0xf11,0x301};
volatile uint32_t CSRs[sizeof(csrnums)/sizeof(*csrnums)] = {0};
static int xRET(uint32_t instr);
static int FENCE(uint32_t instr);
static int CSRx(uint32_t instr);
static int ECALL(uint32_t instr);
static int AMOx(uint32_t instr);
static int bad_instruction(uint32_t instr);
static int csr_num(uint32_t csr);
static void csr_wr(uint32_t csr, uint32_t val);
static uint32_t csr_rd(uint32_t csr);
static inline uint32_t get_cause(void);
static inline void mask_int(uint32_t cause);
static inline void clear_int(uint32_t cause);
static int do_timer_int(void);
static int do_apb_bus_error(void);
static int do_unknown_int(void);
static inline void printC(uint8_t c);
static void printS(const char* s);
static void printH(uint32_t i);
void _boot_(void) {
return;
}
void entry(void) {
uint32_t instr = *(CPUregs->pc-1);
uint32_t opcode = instr & 0x0000007f;
int ret = 0;
int cause;
//printC('C');
(void)ret; //TODO: use ret for error checking
/* Check for unimplemented instructions FENCE/FENCE.I ECALL/EBREAK CSRx and xMRET*/
if((cause = get_cause())) {
for(int i = 0;cause;i++) {
if(cause&1) {
switch(i) {
case 0: // APB bus error
ret = do_apb_bus_error();
break;
case 1: // Timer interrupt
ret = do_timer_int();
break;
default:
ret = do_unknown_int();
break;
}
}
cause>>=1;
}
return;
}
switch(opcode) {
case 0x0F: // FENCE/FENCE.I
ret = FENCE(instr);
//printS("FENCE\n\r");
break;
case 0x73: { // ECALL/EBREAK // CSRRW/CSRRS/CSRRC/CSRRWI/CSRRSI/CSRRCI
uint32_t checkA = (instr&(~0x0010007F));
uint32_t checkB = (instr&(~0xFFF0007F));
uint32_t checkC = (instr>>12)&3;
if(checkA == 0x0) { // ECALL/EBREAK
ret = ECALL(instr);
//printS("ECALL\n\r");
break;
} else if(checkB == 0x0) { // xRET
ret = xRET(instr);
//printS("xRET\n\r");
break;
} else if (checkC != 4) { // CSRRW/CSRRS/CSRRC/CSRRWI/CSRRSI/CSRRCI
ret = CSRx(instr);
//printS("CSRx\n\r");
break;
}
ret = -1;
printS("Unimplemented\n\r");
goto *(void*)0x0;
break;
}
case 0x2F: // AMO
ret = AMOx(instr);
//printS("AMOx\n\r");
break;
default:
ret = bad_instruction(instr);
printS("Bad_instruction\n\r");
goto *(void*)0x0;
break;
}
{
uint32_t MIE = (CSRs[csr_mstatus]&0x8) != 0;
uint32_t MTIE = (CSRs[csr_mie] & (1 << 7)) != 0;
if(MIE && MTIE){
mask_int(2); // Enable timer interrupt
} else {
mask_int(0); // Disable timer interrupt
clear_int(2); // Clear timer interrupt
}
}
}
static int FENCE(uint32_t instr) {
// Fence is not implemented do nothing
uint32_t checkA = (instr&(~0x0000107F));
uint32_t checkB = (instr&(~0x0FF0007F));
if(checkA == 0x0 || checkB == 0x0)
return 0;
else
return -1;
}
static int ECALL(uint32_t instr) {
if(instr == 0x00000073) {
int mstatus = CSRs[csr_mstatus] ;
CSRs[csr_mepc] = ((uint32_t)CPUregs->pc)-4;
CSRs[csr_mcause] = (mstatus & (3<<11))?11:8; // ECALL
CSRs[csr_mtval] = 0x0; // ECALL
CPUregs->pc = (uint32_t*)CSRs[csr_mtvec];
mstatus = ((mstatus & 0x8) << 4) | (mstatus & ~0x8); // move mie to mpie
CSRs[csr_mstatus] = mstatus;
}
return 0;
}
static int bad_instruction(uint32_t instr) {
int mstatus = CSRs[csr_mstatus] ;
CSRs[csr_mepc] = ((uint32_t)CPUregs->pc)-4;
CSRs[csr_mcause] = 2; // Bad instruction
CSRs[csr_mtval] = ((uint32_t)CPUregs->pc)-4;
CPUregs->pc = (uint32_t*)CSRs[csr_mtvec];
mstatus = ((mstatus & 0x8) << 4) | (mstatus & ~0x8); // move mie to mpie
CSRs[csr_mstatus] = mstatus;
return 0;
}
static int csr_num(uint32_t csr) {
int csrno = -1;
for (int i = 0; i < 18; i++)
if (csr == csrnums[i]) {
csrno = i;
break;
}
return csrno;
}
static void csr_wr(uint32_t csr, uint32_t val) {
int csr_no = csr_num(csr);
if(csr_no == -1)
return;
CSRs[csr_no] = val;
}
static uint32_t csr_rd(uint32_t csr) {
int csr_no = csr_num(csr);
if(csr_no == -1)
return 0;
return CSRs[csr_no];
}
static int CSRx(uint32_t instr) {
uint32_t csrval;
uint32_t csr = (instr >> 20) & 0xfff;
uint32_t microop = (instr >> 12) & 0x7;
uint32_t rs1imm = (instr >> 15) & 0x1f;
uint32_t* rsd = &CPUregs->regs[(instr >> 7) & 0x1f];
if(!(microop>>2))
rs1imm = CPUregs->regs[rs1imm];
csrval = csr_rd(csr);
if((instr >> 7) & 0x1f)
*rsd = csrval;
switch( microop & 0x3){
case 0b01: csrval = rs1imm; break; //CSRW
case 0b10: csrval |= rs1imm; break; //CSRRS
case 0b11: csrval &= ~rs1imm; break; //CSRRC
}
csr_wr(csr,csrval);
return 0;
}
static int xRET(uint32_t instr) {
uint32_t imm_i = (instr >> 20) & 0xfff;
int mstatus = CSRs[csr_mstatus] ;
switch(imm_i) {
case 0x302: // MRET
// move mie to mpie and set mpie
mstatus |= ((mstatus & 0x80) >> 4) | 0x80 | (mstatus & ~(3 << 11));
break;
case 0x105: // WFI
break;
case 0x002: // URET
case 0x102: // SRET
case 0x202: // HRET
default:
return -1;
}
if(imm_i != 0x105) {
CSRs[csr_mstatus] = mstatus;
CPUregs->pc = (uint32_t*)CSRs[csr_mepc];
}
return 0;
}
static int AMOx(uint32_t instr) {
uint32_t irmid = (instr>>27)&0x1f;
uint32_t* rs1 = (uint32_t*)CPUregs->regs[(instr >> 15) & 0x1f];
uint32_t rs2 = CPUregs->regs[(instr >> 20) & 0x1f];
uint32_t* rsd = &CPUregs->regs[(instr >> 7) & 0x1f];
if((instr >> 7) & 0x1f) // If rd is not x0
*rsd = *rs1;
switch( irmid ){
case 0b00010: break; //LR.W
case 0b00011: {
if((instr >> 7) & 0x1f) // If rd is not x0
*rsd = 0;
*rs1 = rs2;
break; //SC.W (Lie and always say it's good)
}
case 0b00001: *rs1 = rs2; break; //AMOSWAP.W
case 0b00000: *rs1 += rs2; break; //AMOADD.W
case 0b00100: *rs1 ^= rs2; break; //AMOXOR.W
case 0b01100: *rs1 &= rs2; break; //AMOAND.W
case 0b01000: *rs1 |= rs2; break; //AMOOR.W
default:
return -1;
}
return 0;
}
static inline uint32_t get_cause(void) {
return intc[0] & intc[1];
}
static inline void mask_int(uint32_t cause){
intc[1] = cause;
}
static inline void clear_int(uint32_t cause){
intc[0] = cause;
}
static int do_timer_int(void){
mask_int(0); // Mask timer interrupt
clear_int(2); // Clear timer interrupt
uint32_t MIE = (CSRs[csr_mstatus]&0x8) != 0;
uint32_t MTIE = (CSRs[csr_mie] & (1 << 7)) != 0;
if(!(MIE && MTIE)) {
CPUregs->pc -= 1;
return 0;
}
int mstatus = CSRs[csr_mstatus] ;
CSRs[csr_mepc] = ((uint32_t)CPUregs->pc) - 4;
CSRs[csr_mcause] = 0x80000007; // Timer interrupt
CSRs[csr_mtval] = 0x0;
CPUregs->pc = (uint32_t*)CSRs[csr_mtvec];
mstatus = ((mstatus & 0x8) << 4) | (mstatus & ~0x8); // move mie to mpie
CSRs[csr_mstatus] = mstatus;
return 0;
}
static int do_apb_bus_error(void) {
int mstatus = CSRs[csr_mstatus] ;
CSRs[csr_mepc] = ((uint32_t)CPUregs->pc) - 4;
CSRs[csr_mcause] = 5; // Load access fault
CSRs[csr_mtval] = 0x0;
CPUregs->pc = (uint32_t*)CSRs[csr_mtvec];
mstatus = ((mstatus & 0x8) << 4) | (mstatus & ~0x8); // move mie to mpie
CSRs[csr_mstatus] = mstatus;
return 0;
}
static int do_unknown_int(void){
CPUregs->pc -= 1;
printS("\n\rUnknown interrupt\n\r");
printH((uint32_t)CPUregs->pc);
printS("\n\r");
goto *(void*)0x0;
return 0;
}
static inline void printC(uint8_t c){
static volatile uint8_t* const uart = (volatile uint8_t* const)0x10000000;
#ifdef DEBUG_UART
*uart = c;
#else
(void)c;
(void)uart;
#endif
}
static void printS(const char* s) {
while(*s)
printC(*s++);
}
static void printH(uint32_t i) {
static const char hex[16] = "0123456789abcdef";
static char s[9];
int j = 0;
do {
s[j++] = hex[i & 0xf];
i >>= 4;
} while(i);
while(j)
printC(s[--j]);
}
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