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|
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
4db0973bd922f96c218ea3a5e8dbeeb4f4707d32
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/257/CH8/EX8.22/ex_8_22.sce
|
36729e0ff166383af73ea88b3b0cb98f0b8dd423
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 358
|
sce
|
ex_8_22.sce
|
//terms in a row become infinite//
s=%s;
//P=s^5+2*s^4+3*s^3+6*s^2+2*s+1;//
//replace 's' by '1/z' to get F//
z=%z;
F=z^5+2*z^4+6*z^3+3*z^2+2*z+1
disp(routh_t(F))
r=coeff(F)
routh=routh_t(F)
n=length(r)
c=0;
for i=1:n
if (routh(i,1)<0)
c=c+1;
end
end
if(c>=1)
printf("system is unstable")
else printf("system is stable")
end
|
d9f86ce1afc6253cfc05a1ae92560e2eb87b8f2e
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/154/CH11/EX11.2/ch11_2.sce
|
8ce67ad13db3fe5a74d46c2d81cb7edf26316ee0
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 649
|
sce
|
ch11_2.sce
|
clc
disp("Problem 11.2")
printf("\n")
t=0:0.5:1;
i=ones(length(t),1);i1=-1;
figure
a=gca()
plot(t,i,t+1,i1)
xtitle("i vs t",'t in ms','i in mA')
//Voltage across capacitor vC=(1/C)*integrate(i*dt)
//On integration
t=0:0.0005:0.001
v=2000*t
v1=2-v;
figure
a=gca()
plot(t,v,t+0.001,v1,t+0.002,v,t+0.003,v1)
xtitle("v vs t",'t in ms','v in V')
//Power is p=v*i
t=0:.0005:.001
p=2000*t
p1=p-2;
figure
a=gca()
plot(t,p,t+0.001,p1,t+0.002,p,t+0.003,p1)
xtitle("p vs t",'t in ms','p in W')
//Work is (C*v^2)/2
t=0:.0005:.001
w=t.^2
w1=t.^2+1*10^-6-(2*10^-3*t);
figure
a=gca()
plot(t,w,t+0.001,w1,t+0.002,w,t+0.003,w1)
xtitle("w vs t",'t in ms','w in J')
|
ec35de50e52835c988e467197b4f074e5c52a8ee
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/506/CH9/EX9.3.a/Example9_3a.sce
|
8d304cc5e5abd5b0fd439b0e0a88ff80a5dff95a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,119
|
sce
|
Example9_3a.sce
|
clear;
clc;
//Caption:Variation of Ic in given Transistor
//Given Data at 25degree C
Re=4.7;//in K
Rb=7.75;//in K
B1=55;//beta at 25degree C
Ic1=1.5;//in mA
Ico1=1;
Vbe1=0.6;//in V
//Part a
Ico2=33000;//in nA
Vbe2=0.225;//in V
M1=1/(1+(Rb/(Re*B1)));//Stability Factor
disp(M1,'Stabitity Factor at 25deree C=');
B2=100;//at 175degree C
M2=1/(1+(Rb/(Re*B2)));//Stability Factor
disp(M2,'Stabitity Factor at 175degree C=');
if(M2>M1)
M1=1;
M2=1;
end
//Let k = (delta Ic)/(Ic1)
k=(1+(Rb/Re))*(M1*(Ico2-Ico1)*(10^-9)/Ic1*(10^-3))-(M1*(Vbe2-Vbe1)/(Ic1*Re))+(1+(Rb/Re))*(M2*(B2-B1)/(B2*B1));
deltaIc=k*Ic1;
disp('mA',deltaIc,'Change in Collector Current at 175degree C is =');
//Given Data at -65degree C
Ico2=1.95*(10^-3);
B2=25;
Vbe2=0.78;
M2=1/(1+(Rb/(Re*B2)));//Stability Factor
disp(M2,'Stabitity Factor at -65degree C=');
//Let k = (delta Ic)/(Ic1)
k=(1+(Rb/Re))*(M1*(Ico2-Ico1)*(10^-9)/Ic1*(10^-3))-(M1*(Vbe2-Vbe1)/(Ic1*Re))+(1+(Rb/Re))*(M2*(B2-B1)/(B2*B1));
deltaIc=k*Ic1;
disp('mA',deltaIc,'Change in Collector Current at -65degree C is =')
//End
|
96cd76d955dd8a8c8413041480385e5c6840f015
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/605/CH9/EX9.5/9_5.sce
|
f307046a97d4fe1a9de55e56dc83c1b65d82e5ba
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 178
|
sce
|
9_5.sce
|
Le=3
E=10^(Le/10)-1
L=15
Wc=1
W=1.3*Wc
n=1/2*(log10(10^(L/10)-1)-log10(E))/log10(W/Wc)
m=acosh(sqrt(10^(0.1*L)-1))/acosh(W/Wc)
printf("\nn=%.2f",n)
printf("\nm=%.3f",m)
|
ba6be8fed7ea9d755e4d2bca75fe1be1d6617090
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3862/CH2/EX2.21/Ex2_21.sce
|
e220de5383cfa14b4fba62841abaef8c0bc599b2
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 956
|
sce
|
Ex2_21.sce
|
clear
//
//A bar can develop a tensile force or a compressive force. Let the force developed be a compressive force S (push on the cylinder).
//variable declaration
W=10.0 //weight of Roller,KN
IL=7.0 //inclined loading at angle of 45°,KN
H=5.0 //Horizontal loading ,KN
theta=45.0*%pi/180 //angle of loading of IL
thetaS=30.0*%pi/180.0
//Since there are more than three forces in the system, Lami’s equations cannot be applied. Consider the components in horizontal and vertical directions.
//sum of vertical Fy & sum of horizontal forces Fx is zero
//Assume direction of Fx is right
//Assume direction of Fy is up
S=(-H+IL*cos(theta))/cos(thetaS)
printf("\n S= %0.3f N",S)
printf("\n Since the value of S is negative the force exerted by the bar is not a push, but it is pull (tensile force in bar) of magnitude %0.3f kN.",-S)
R=W+IL*sin(theta)-S*sin(thetaS)
printf("\n R= %0.3f kN",R)
|
0a74a6cf73c287c3e7da504d09ecaf3fc5a3d9b1
|
2d42a50f7f3b4a864ee19a42ea88a79be4320069
|
/source/scilab/frustum.sce
|
916cc8d3e93334927b81600e7689947ae04e2d57
|
[] |
no_license
|
Mikalai/punk_project_a
|
8a4f55e49e2ad478fdeefa68293012af4b64f5d4
|
8829eb077f84d4fd7b476fd951c93377a3073e48
|
refs/heads/master
| 2016-09-06T05:58:53.039941
| 2015-01-24T11:56:49
| 2015-01-24T11:56:49
| 14,536,431
| 1
| 0
| null | 2014-06-26T06:40:50
| 2013-11-19T20:03:46
|
C
|
UTF-8
|
Scilab
| false
| false
| 908
|
sce
|
frustum.sce
|
function b = normalize(a)
b = a / norm(a);
endfunction
function c = cross(a, b)
x = a(2)*b(3)-a(3)*b(2);
y = a(3)*b(1)-a(1)*b(3);
z = a(1)*b(2)-a(2)*b(1);
c = [x y z];
endfunction
function R = CreateViewMatrix(_eye, _center, _up)
disp(_eye);
disp(_center);
disp(_up);
F = _center - _eye;
_f = normalize(F);
up = normalize(_up);
_s = normalize(cross(_f, up));
u = cross(_s, _f);
disp(_f, "f")
disp(_s, "s")
disp(u, "u")
M = [_s(1) _s(2) _s(3) 0; u(1) u(2) u(3) 0; -_f(1) -_f(2) -_f(3) 0; 0 0 0 1]
disp(M)
T = [1 0 0 -_eye(1); 0 1 0 -_eye(2); 0 0 1 -_eye(3); 0 0 0 1]
disp(T)
R = M * T
endfunction
height = 50;
view_point = [0 0 0];
_eye = [0 0 height] + view_point + [0 50 0];
_dir = normalize(view_point - _eye);
up = [0 0 1];
view = CreateViewMatrix(_eye, _eye + _dir, up);
disp(view)
disp(cross([1 2 3], [5 4 3]))
|
e3bcc9baaf67ee0634f16f9f60e343f9d5f38e5a
|
1bb72df9a084fe4f8c0ec39f778282eb52750801
|
/test/U08.prev.tst
|
f3e53fa7c1a1c035f61daa7f9ba29723efbcc1e9
|
[
"Apache-2.0",
"LicenseRef-scancode-unknown-license-reference"
] |
permissive
|
gfis/ramath
|
498adfc7a6d353d4775b33020fdf992628e3fbff
|
b09b48639ddd4709ffb1c729e33f6a4b9ef676b5
|
refs/heads/master
| 2023-08-17T00:10:37.092379
| 2023-08-04T07:48:00
| 2023-08-04T07:48:00
| 30,116,803
| 2
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 2,499
|
tst
|
U08.prev.tst
|
0 0 0
1 0 0
-1 0 0
0 1 0
0 -1 0
1 1 0
-1 1 0
1 -1 0
-1 -1 0
0 0 1
0 0 -1
1 0 1
-1 0 1
1 0 -1
-1 0 -1
0 1 1
0 -1 1
0 1 -1
0 -1 -1
1 1 1
-1 1 1
1 -1 1
-1 -1 1
1 1 -1
-1 1 -1
1 -1 -1
-1 -1 -1
2 0 0
-2 0 0
2 1 0
-2 1 0
2 -1 0
-2 -1 0
0 2 0
0 -2 0
1 2 0
-1 2 0
1 -2 0
-1 -2 0
2 2 0
-2 2 0
2 -2 0
-2 -2 0
2 0 1
-2 0 1
2 0 -1
-2 0 -1
2 1 1
-2 1 1
2 -1 1
-2 -1 1
2 1 -1
-2 1 -1
2 -1 -1
-2 -1 -1
0 2 1
0 -2 1
0 2 -1
0 -2 -1
1 2 1
-1 2 1
1 -2 1
-1 -2 1
1 2 -1
-1 2 -1
1 -2 -1
-1 -2 -1
2 2 1
-2 2 1
2 -2 1
-2 -2 1
2 2 -1
-2 2 -1
2 -2 -1
-2 -2 -1
0 0 2
0 0 -2
1 0 2
-1 0 2
1 0 -2
-1 0 -2
2 0 2
-2 0 2
2 0 -2
-2 0 -2
0 1 2
0 -1 2
0 1 -2
0 -1 -2
1 1 2
-1 1 2
1 -1 2
-1 -1 2
1 1 -2
-1 1 -2
1 -1 -2
-1 -1 -2
2 1 2
-2 1 2
2 -1 2
-2 -1 2
2 1 -2
-2 1 -2
2 -1 -2
-2 -1 -2
0 2 2
0 -2 2
0 2 -2
0 -2 -2
1 2 2
-1 2 2
1 -2 2
-1 -2 2
1 2 -2
-1 2 -2
1 -2 -2
-1 -2 -2
2 2 2
-2 2 2
2 -2 2
-2 -2 2
2 2 -2
-2 2 -2
2 -2 -2
-2 -2 -2
3 0 0
-3 0 0
3 1 0
-3 1 0
3 -1 0
-3 -1 0
3 2 0
-3 2 0
3 -2 0
-3 -2 0
0 3 0
0 -3 0
1 3 0
-1 3 0
1 -3 0
-1 -3 0
2 3 0
-2 3 0
2 -3 0
-2 -3 0
3 3 0
-3 3 0
3 -3 0
-3 -3 0
3 0 1
-3 0 1
3 0 -1
-3 0 -1
3 1 1
-3 1 1
3 -1 1
-3 -1 1
3 1 -1
-3 1 -1
3 -1 -1
-3 -1 -1
3 2 1
-3 2 1
3 -2 1
-3 -2 1
3 2 -1
-3 2 -1
3 -2 -1
-3 -2 -1
0 3 1
0 -3 1
0 3 -1
0 -3 -1
1 3 1
-1 3 1
1 -3 1
-1 -3 1
1 3 -1
-1 3 -1
1 -3 -1
-1 -3 -1
2 3 1
-2 3 1
2 -3 1
-2 -3 1
2 3 -1
-2 3 -1
2 -3 -1
-2 -3 -1
3 3 1
-3 3 1
3 -3 1
-3 -3 1
3 3 -1
-3 3 -1
3 -3 -1
-3 -3 -1
3 0 2
-3 0 2
3 0 -2
-3 0 -2
3 1 2
-3 1 2
3 -1 2
-3 -1 2
3 1 -2
-3 1 -2
3 -1 -2
-3 -1 -2
3 2 2
-3 2 2
3 -2 2
-3 -2 2
3 2 -2
-3 2 -2
3 -2 -2
-3 -2 -2
0 3 2
0 -3 2
0 3 -2
0 -3 -2
1 3 2
-1 3 2
1 -3 2
-1 -3 2
1 3 -2
-1 3 -2
1 -3 -2
-1 -3 -2
2 3 2
-2 3 2
2 -3 2
-2 -3 2
2 3 -2
-2 3 -2
2 -3 -2
-2 -3 -2
3 3 2
-3 3 2
3 -3 2
-3 -3 2
3 3 -2
-3 3 -2
3 -3 -2
-3 -3 -2
0 0 3
0 0 -3
1 0 3
-1 0 3
1 0 -3
-1 0 -3
2 0 3
-2 0 3
2 0 -3
-2 0 -3
3 0 3
-3 0 3
3 0 -3
-3 0 -3
0 1 3
0 -1 3
0 1 -3
0 -1 -3
1 1 3
-1 1 3
1 -1 3
-1 -1 3
1 1 -3
-1 1 -3
1 -1 -3
-1 -1 -3
2 1 3
-2 1 3
2 -1 3
-2 -1 3
2 1 -3
-2 1 -3
2 -1 -3
-2 -1 -3
3 1 3
-3 1 3
3 -1 3
-3 -1 3
3 1 -3
-3 1 -3
3 -1 -3
-3 -1 -3
0 2 3
0 -2 3
0 2 -3
0 -2 -3
1 2 3
-1 2 3
1 -2 3
-1 -2 3
1 2 -3
-1 2 -3
1 -2 -3
-1 -2 -3
2 2 3
-2 2 3
2 -2 3
-2 -2 3
2 2 -3
-2 2 -3
2 -2 -3
-2 -2 -3
3 2 3
-3 2 3
3 -2 3
-3 -2 3
3 2 -3
-3 2 -3
3 -2 -3
-3 -2 -3
0 3 3
0 -3 3
0 3 -3
0 -3 -3
1 3 3
-1 3 3
1 -3 3
-1 -3 3
1 3 -3
-1 3 -3
1 -3 -3
-1 -3 -3
2 3 3
-2 3 3
2 -3 3
-2 -3 3
2 3 -3
-2 3 -3
2 -3 -3
-2 -3 -3
3 3 3
-3 3 3
3 -3 3
-3 -3 3
3 3 -3
-3 3 -3
3 -3 -3
-3 -3 -3
|
3119bce97670908942ea763350cc8c2c426abac8
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2882/CH3/EX3.20/Ex3_20.sce
|
be948042e90485a6d897f6298d2d4227f0a60089
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 576
|
sce
|
Ex3_20.sce
|
//Tested on Windows 7 Ultimate 32-bit
//Chapter 3 Semiconductor Diodes and Miscellaneous Devices Pg no. 119 and 120
clear;
clc;
//Given Data
Irelay=10;//relay current in milli-amperes
Int=400//light intensity in lm/m^2
Rc_d=100D3;//cell resistance in ohms when it is dark
Rc_i=1200;//cell resistance in ohms when illumination is 500lm/m^2
V=30;//source voltage in volts
//Solution
R=V/Irelay*1000-Rc_i;//series resistance in ohms
Id=V/(R+Rc_d)*1000;//dark current in milli-amperes
printf("Series resistance R = %d ohms\n Dark current = %.3f mA ",R,Id)
|
afa410698d29ed138c49bb6dfacfdbff4f97cf97
|
ab89c2161afc0845367b8e25f534e4f99bd36759
|
/LAB3/ex6.sce
|
429e3796b37426978c39795ee195b2cb08e4840d
|
[] |
no_license
|
PhiTruongCE/Digital_Signal_Processing
|
22446ebfa65765d1dfcd2c420e05c83dc861ec15
|
bacaf762f31a333a641ac48f6b5cc18f120c65be
|
refs/heads/main
| 2023-06-04T03:38:36.140107
| 2021-06-17T04:04:49
| 2021-06-17T04:04:49
| 377,699,926
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 731
|
sce
|
ex6.sce
|
clc;
clf;
clear all;
n=-2:1;
x=[1,-2,3,6];
subplot(221);
a=gca();
a.x_location='origin';
b=gca();
b.y_location='origin';
plot2d3(n,x,4);
title('x(n)');
xlabel('n');
ylabel('x(n)');
n=-1:2;
y1=[6,3,-2,1];
subplot(222);
a=gca();
a.x_location='origin';
b=gca();
b.y_location='origin';
plot2d3(n,y1,4);
title('y1(n)');
xlabel('n');
ylabel('y1(n)');
n=-5:0;
y2=[1,-2,3,6,0,0];
subplot(223);
a=gca();
a.x_location='origin';
b=gca();
b.y_location='origin';
plot2d3(n,y2,4);
title('y2(n)');
xlabel('n');
ylabel('y2(n)');
n=-3:0;
y3=[12,6,-4,2];
subplot(224);
a=gca();
a.x_location='origin';
b=gca();
b.y_location='origin';
plot2d3(n,y3,4);
title('y3(n)');
xlabel('n');
ylabel('y3(n)');
|
3af099a1c77bd9830a97fda383344edc4c6d1e70
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1640/CH5/EX5.23/5_23.sce
|
2c68246e8da89ff36aaaed7c8c3c21c0c8c7f06b
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 298
|
sce
|
5_23.sce
|
clc
//initialisation of variables
p= 60 //lb/in^2
l= 300 //ft
D= 2.5 //in
d= 7/8 //in
f= 0.018
g= 32.2 //ft/sec^2
w= 62.4 //lb/ft^3
//CALCULATIONS
r= (D/d)^4
V= sqrt(2*g*144*p/(w*(r+0.5+(4*f*l/(D/12)))))
Q= V*(%pi*(D/12)^2)/4
//RESULTS
printf ('Volume of flow = %.3f cu ft/sec ',Q)
|
24a5f7189057dae98ca983c8423cec8dbaf33368
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2657/CH2/EX2.4/Ex2_4.sce
|
7825c9424e6335dbf7443fcef5bd6b9033ae1e21
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 746
|
sce
|
Ex2_4.sce
|
//Calculations on constant volume cycle
clc,clear
//Given:
P1=97 //Pressure at the beginning(1) in kN/m^2
T1=40+273 //Temperature at the beginning(1) in K
r=7 //Compression ratio
Q=1200 //Heat supplied in kJ/kg
g=1.4 //Specific heat ratio(gamma)
cv=0.718 //Specific heat at constant volume in kJ/kgK
//Solution:
//(a)
T2=T1*(r)^(g-1),T3=round(Q/cv+T2) //Temperature at 2, 3 in K
//(b)
eta=1-1/r^(g-1) //Thermal efficiency
//(c)
W=Q*eta //Workdone per cycle in kJ/kg
//Results:
printf("\n (a)The maximum temperature attained in the cycle, T3 = %d degreeC",T3-273)
printf("\n (b)The thermal efficiency of the cycle, eta = %.1f percent",eta*100)
printf("\n (c)The workdone during the cycle/kg of working fluid, W = %d kJ\n\n",W)
|
327a1de835f78a383cce1962d45fa81319c3b844
|
d0eae76ce5fad31d0a6e879e2fe2c51079c1ec35
|
/scilab_SInalRuido_retangularWave.sce
|
5a823c719fb35f929574b26a22988d6efa1208f4
|
[] |
no_license
|
matheuslopesz/mathCode
|
b13ed33aa1e6884c172012abf2d2cdba8240f7a3
|
5cf7a2c81b995c9123bd5caefa869b8a77205490
|
refs/heads/master
| 2022-03-14T23:12:08.881066
| 2019-12-14T00:40:51
| 2019-12-14T00:40:51
| 103,522,973
| 0
| 0
| null | 2019-12-14T00:40:52
| 2017-09-14T11:13:15
|
Scilab
|
UTF-8
|
Scilab
| false
| false
| 384
|
sce
|
scilab_SInalRuido_retangularWave.sce
|
close;
N =100;
b = rand(1,N,'n'); // criando vetor de número aleatórios
b = sign(b); // transforma em -1 e 1
b = 0.5 * (b +1); // transformar em 0 e 1
p = ones(1,10); v = [];
var = 0.2; // determina o ruido
for k=1:N
v = [v,p*b(k)],
end;
n = sqrt(var)*rand(v,'n' );
vn = (v+n);
figure;
subplot(2,2,1); plot (v*1.01 - 0.005);
subplot(2,2,2); plot (n);
subplot(2,1,2); plot (vn);
|
2d435badf8cab2c6b425b9c393f9bdf009fae461
|
332591267a67ee8dd24d7949c1fda10218bf21a9
|
/SMTTests/tests/ok_ALL3_logic.tst-skip
|
1de48d7ebda2464c54206c5d743e16584640bbee
|
[] |
no_license
|
OpenJML-SeniorDesign/jSMTLIB
|
1914f3c36e7e07733834514edb4cc040354f245d
|
a109b104f3c294d322de0aa12d2b70b96dcf51f4
|
refs/heads/master
| 2023-08-27T11:59:47.972797
| 2021-10-20T13:44:16
| 2021-10-20T13:44:16
| null | 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 423
|
ok_ALL3_logic.tst-skip
|
; Using ALL logic with bit-vectors and integers
(set-option :produce-models true)
(set-logic ALL)
(declare-fun n () Int )
(declare-fun b () (_ BitVec 32))
(assert ( = b ((_ int2bv 32) n)))
(define-fun bb () (_ BitVec 32) (bvneg (bvand (bvneg b) #xfffffff0)))
(declare-fun nn () Int )
(assert (= nn ((_ bv2int 32) bb)))
(assert (not (and (>= nn n) (>= (+ n 15) nn) (= (mod nn 16) 0) )))
(check-sat)
(get-value (n nn b bb))
|
|
5467560159cb3a8bbaf0d0beb1b4817c0098cc60
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/896/CH3/EX3.5/5.sce
|
c12c2b432f3c7d266d74dac6d44a4e3b29c50424
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 491
|
sce
|
5.sce
|
clc
//Example 3.5
//calculate velocity and mass flow rate of natural in a pipe
d1=2;//ft diameter of pipe at position 1
a1=(%pi)/4*d1^2;//ft^2
v1=50;//ft/s vel of gas at position 1
rho1=2.58;//lbm/ft^3 density of gas at position 1
d2=3;//ft diameter of pipe at position 2
a2=(%pi)/4*d2^2;
rho2=1.54;//lbm/ft^3 density at position 2
v2=(rho1/rho2)*(a1/a2)*v1//ft/s
printf("Velocity is %f ft/s\n",v2);
m=rho1*v1*a1//lbm/s mass flow rate
printf("The mass flow rate is %f lbm/s",m);
|
6ad1e555daec88b1854939683ed3ee261486928e
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/536/CH8/EX8.5/Example_8_5.sce
|
2aafb3193e75345f27b50f9d16079eefa77b605b
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,191
|
sce
|
Example_8_5.sce
|
clc;
clear;
printf("\n Example 8.5\n");
Q_l=7.5e-4;
printf("\n Given:\n Volume flow rate of liquid = %.1f m^3/s",Q_l*1e4);
rho_l=1200;
printf("\n Density of liquid = %d kg/m^3",rho_l);
h=20;
printf("\n height to which liquid is raised = %d m",h);
P=450e3;
printf("\n Air is available at pressure = %d kN/m^2",P*1e-3);
eta=30/100;
printf("\n Efficiency = %d percent",eta*100);
P_atm=101.3e3;
Gamma=1.4;
G=Q_l*rho_l;//Mass flow of liquid
//Work per unit time done by the pump
W=G*9.81*h;
printf("\n\n Calculations:\n Work per unit time done by the pump = %.1f W",W);
//Actual work of expansion of air per unit time
W_act=W/eta;
printf("\n Actual work of expansion of air per unit time = %.1f W",W_act);
//Taking the molecular weight of air
M=28.9;
//the specific volume of air at 101.3 kN/m2 and 273 K
va=22.4/M;
//and in equation 8,49:
x=poly([0],'x');
Ga=roots(P_atm*va*x*log(P/P_atm)-W_act);
Q=Ga*va;
printf("\n volume flow rate of air = %.4f m^3/s",Q);
//From equation 8.37
//Power for compression
Power=(P_atm*Q)*(Gamma/(Gamma-1))*((P/P_atm)^((Gamma-1)/Gamma)-1);
Power_reqd=Power/1000;
printf("\n power requirement of the pump = %.3f kW",Power_reqd);
|
33db8fc6515a4eb6f210500486a4cb55ebc84cee
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1808/CH2/EX2.17/Chapter2_Example17.sce
|
ce9eb8720263c91a3654aedd0ae6e6326bcc17e6
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 565
|
sce
|
Chapter2_Example17.sce
|
clc
clear
//INPUT DATA
hc=4;//cylinders
mf=2;//mass flow rate in g/s
vd=2.8;//capacity in litres
N=1500;//speed in rpm
ta=303;//temperature in K
Pa=101.325;//atmospheric pressure in kPa
R=0.287;//gas constant in kJ/kgK
xs =15.14;//air fuel ratio
//C8H18+12.5(O2+3.773N2)=8CO2+9H2O+47.16 N2;//Chemical equation
//CALCULATIONS
ma1=xs*mf;//mass of air in g/s
ma=ma1/50;//mass of air in g/cylinder/cycle
ro=Pa/(R*ta);//density in kg/m^3
nv=ma/(ro*vd/4);//Volumetric efficiency
//OUTPUT
printf('Volumetric effiiciency is %3.4f ',nv)
|
bd1f5832fd3efecea76c50b76d1ffda4b8191d04
|
ab1416f6fd6655094298e6c7bab1ac47d2533342
|
/samples/Scilab/scilab_test.tst
|
c48521f496e273492aa465c7dfea7f59cf716227
|
[
"MIT",
"LicenseRef-scancode-unknown-license-reference",
"Apache-2.0"
] |
permissive
|
monkslc/hyperpolyglot
|
6ddc09e9d10d30bd8ce5c80a3bd755fa5714d621
|
a55a3b58eaed09b4314ef93d78e50a80cfec36f4
|
refs/heads/master
| 2023-05-26T15:26:14.686247
| 2023-05-17T13:51:31
| 2023-05-17T13:51:31
| 248,387,967
| 43
| 11
|
Apache-2.0
| 2023-05-17T13:51:35
| 2020-03-19T02:02:35
|
RenderScript
|
UTF-8
|
Scilab
| false
| false
| 55
|
tst
|
scilab_test.tst
|
assert_checkequal(1+1,2);
assert_checkfalse(%pi==%e);
|
fbccc251a995868fada9cb3c50faa3781214ac59
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/34/CH4/EX4.4/Ch4Exa4.sci
|
4eb4a90de1bd7aea39b6f482aff6949c9e9e8554
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 345
|
sci
|
Ch4Exa4.sci
|
n1= 3; //initial state
n2= 2; //final state
R= 1.097*(10^7); //Rydberg's constant, m^(-1)
k= (1/n2^2)-(1/n1^2);
l= 1/(k*R); //longest wavelength, m
l= l*(10^9); //converting to nm
disp(l,"The longest in Balmer series of Hydrogen, in nm, is: ")
//Result
// The longest in Balmer series of Hydrogen, in nm, is:
// 656.33546
|
8890a42dc33034b5ee8f7407cad9700c6c7fce8e
|
b68ae1fc3cd37c85031f69e42d92903b7f1a90ab
|
/projects/07/MemoryAccess/BasicTest/BasicTestVME.tst
|
9936246a634f8f351ffcd4921f6d81ee7f948d08
|
[] |
no_license
|
bricef/The-Elements-of-Computing-Systems
|
fb3aa100c18176ccfc876e9d30319c0b8a5c7635
|
6be81eacaa30ad57b06f018c0aecbcf7e04841bc
|
refs/heads/master
| 2021-01-18T13:43:02.653913
| 2011-04-06T19:23:52
| 2011-04-06T19:23:52
| 1,578,790
| 5
| 1
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 608
|
tst
|
BasicTestVME.tst
|
// This file is part of the materials accompanying the book
// "The Elements of Computing Systems" by Nisan and Schocken,
// MIT Press. Book site: www.idc.ac.il/tecs
// File name: projects/07/MemoryAccess/BasicTest/BasicTestVME.tst
load BasicTest.vm,
output-file BasicTest.out,
compare-to BasicTest.cmp,
output-list RAM[256]%D1.6.1 RAM[300]%D1.6.1 RAM[401]%D1.6.1
RAM[402]%D1.6.1 RAM[3006]%D1.6.1 RAM[3012]%D1.6.1
RAM[3015]%D1.6.1 RAM[11]%D1.6.1;
set sp 256,
set local 300,
set argument 400,
set this 3000,
set that 3010,
repeat 25 {
vmstep;
}
output;
|
5f223f40aff08afd08eed7e83ea0e97143ec6cbf
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1652/CH14/EX14.3/14_3.sce
|
418a1400c4e3f6eae807404938bfbb243e9c6985
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 165
|
sce
|
14_3.sce
|
clc
//Initialization of variables
c=0.01 //M
kc=1.749*10^-5 //M
//calculations
x2=c*kc
x=sqrt(x2)
//results
printf("Concentraton of Hplus ions = %.1e M",x)
|
843843d7c90c36d3444f392c9904ce5532a3477f
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/27/CH6/EX6.3.2/Example_6_3_2.sce
|
0596a36fbd797186bea4439b68edd7fd28cf5820
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,791
|
sce
|
Example_6_3_2.sce
|
clear;
clc;
close;
//On linearization we got the following Jacobian "A"
A=[0 -1;1 0];
t=det(A);
tau=trace(A);
disp("Since tau = 0 and t>0, thus from chapter 5, (0,0) is a Center")
disp("And this does not depends on value of a ")
a=-1;
function xd=linear632(t,x)
xd(1)=-x(2)+ a*x(1)*(x(1)^2+x(2)^2); //x(dot); x(2) means y.
xd(2)=x(1)+a*x(2)*(x(1)^2+x(2)^2); //y(dot); x(1) means x.;
endfunction
bound=[-4,-4,4,4]; //Bounds of x-axis and y-axis as [xmin ymin xmax ymax], change them according to your needs.
nrect=5; //increase it to get more number of curves, i.e. more information will be available.
set(gca(),"auto_clear","off") //hold on
x=linspace(bound(1),bound(3),nrect);
y=linspace(bound(2),bound(4),nrect);
x0=[];
for i=1:5
x0=[x(i);y(i)];
t0=0;
t=0:0.01:3000;
xout=ode(x0,t0,t,linear632);
plot2d(xout(1,:),xout(2,:));
end
xtitle('Phase Portrait','x-axis ( x )','y-axis ( y )')
figure
a=1;
function xd=linear6322(t,x)
xd(1)=-x(2)+ a*x(1)*(x(1)^2+x(2)^2); //x(dot); x(2) means y.
xd(2)=x(1)+a*x(2)*(x(1)^2+x(2)^2); //y(dot); x(1) means x.;
endfunction
bound=[-4,-4,4,4]; //Bounds of x-axis and y-axis as [xmin ymin xmax ymax], change them according to your needs.
nrect=35; //increase it to get more number of curves, i.e. more information will be available.
set(gca(),"auto_clear","off") //hold on
x=linspace(bound(1),bound(3),nrect);
y=linspace(bound(2),bound(4),nrect);
x0=[];
for i=1:35
x0=[x(i);y(i)];
t0=0;
t=0:0.01:3000;
xout=ode(x0,t0,t,linear6322);
plot2d(xout(1,:),xout(2,:));
end
xtitle('Phase Portrait','x-axis ( x )','y-axis ( y )')
|
9d6b95fa42b751820aa0320403f172d07d5be593
|
ca8a1752ffab27d706f447f6671fec785bff91f6
|
/ncp/cs2/project 01/Mux8Way16.tst
|
fbad3cb2efb25808e7b625da27a07f0d9a293b2e
|
[] |
no_license
|
aling94/school
|
0d01dbdd582107a58b0a59c564df2db6367777be
|
81d52961bc4c9244cf7abef2276ee69495eec351
|
refs/heads/master
| 2020-04-26T11:05:10.559842
| 2019-03-02T22:27:19
| 2019-03-02T22:27:19
| 173,504,921
| 0
| 1
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,294
|
tst
|
Mux8Way16.tst
|
// This file is part of the materials accompanying the book
// "The Elements of Computing Systems" by Nisan and Schocken,
// MIT Press. Book site: www.idc.ac.il/tecs
// File name: projects/01/Mux8Way16.tst
load Mux8Way16.hdl,
output-file Mux8Way16.out,
compare-to Mux8Way16.cmp,
output-list a%B1.16.1 b%B1.16.1 c%B1.16.1 d%B1.16.1 e%B1.16.1 f%B1.16.1 g%B1.16.1 h%B1.16.1 sel%B1.3.1 out%B1.16.1;
set a %B0000000000000000,
set b %B0000000000000000,
set c %B0000000000000000,
set d %B0000000000000000,
set e %B0000000000000000,
set f %B0000000000000000,
set g %B0000000000000000,
set h %B0000000000000000,
set sel %B000,
eval,
output;
set sel %B001,
eval,
output;
set sel %B010,
eval,
output;
set sel %B011,
eval,
output;
set sel %B100,
eval,
output;
set sel %B101,
eval,
output;
set sel %B110,
eval,
output;
set sel %B111,
eval,
output;
set a %B0001001000110100,
set b %B0010001101000101,
set c %B0011010001010110,
set d %B0100010101100111,
set e %B0101011001111000,
set f %B0110011110001001,
set g %B0111100010011010,
set h %B1000100110101011,
set sel %B000,
eval,
output;
set sel %B001,
eval,
output;
set sel %B010,
eval,
output;
set sel %B011,
eval,
output;
set sel %B100,
eval,
output;
set sel %B101,
eval,
output;
set sel %B110,
eval,
output;
set sel %B111,
eval,
output;
|
ad5dd6b02ca619639316c0b1b263011f7b0c822d
|
2a39d29b2cb27e98632f6810ed3c2a22a56fa8eb
|
/Materias/LabCalcNum/Rafael/simpson13tab.sci
|
f7fe350abc72cb76a748bb5e4a1b3e6b84c141b5
|
[] |
no_license
|
rafael747/my-stuff
|
74358384bc1a5b381d1951dfaef87efdf4cb53c2
|
8614aefdc3ca9afdc1534557f73719af8494f7fa
|
refs/heads/master
| 2021-01-17T12:47:48.206860
| 2020-06-04T15:10:20
| 2020-06-04T15:10:20
| 57,989,835
| 2
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 468
|
sci
|
simpson13tab.sci
|
function [I] = simpson13tab(x, fx)
nx=size(x,2)
nfx=size(fx,2)
if nx ~= nfx then
error("vetores de tamanhos diferentes")
end
if modulo(nx-1,2) ~= 0 then
error("O número de pontos deve ser par ")
end
h=x(2)-x(1)
soma=fx(1)+fx(nx)
for i=1:nx-2
if modulo(i,2) == 0 then
soma = soma + 2*fx(i+1)
else
soma = soma + 4*fx(i+1)
end
end
I=(h/3)*soma
endfunction
|
1a64930ff60eaf52dfaaa49f2f3d1179f1f79548
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2789/CH5/EX5.6/Ex5_6.sce
|
362ecdd2e4f2e9160147e38052183d8fb764b34b
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 666
|
sce
|
Ex5_6.sce
|
clear;
clc;
//page no. 166
V_0 = 586;// fps
t_0 = 0;// degreeF
P_0 = 13;// psia
a_0 = 1052;// fps
M_0 = 0.557;
V_A = 800;//fps
V_B = 900;//fps
gam = 1.4;
T_A = 488.5- V_A^2 /(2*32.2*186.5);
T_B = 488.5- V_B^2 /(2*32.2*186.5);
p_A = 16.18*(T_A/488.5)^(gam/(gam-1));
p_B = 16.18*(T_B/488.5)^(gam/(gam-1));
a_A = sqrt(gam*32.3*53.3*T_A);
a_B = sqrt(gam*32.3*53.3*T_B);
M_A = V_A/a_A;
M_B = V_B/a_B;
printf('At point A, p = %.2f psia, T = %.1f degreeR, a = %d fps, M = %.3f',p_A,T_A,a_A,M_A);
printf('\n At point B, p = %.2f psia, T = %.1f degreeR, a = %d fps, M = %.3f',p_B,T_B,a_B,M_B);
//there are errors in the answers given in textbook
|
1c2fbf6bc8a02f12271f74b5d72e55aee9d1c20f
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/69/CH2/EX2.17/2_17.sce
|
dcdaa46929108113664b0e6d3df55e080e289479
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 305
|
sce
|
2_17.sce
|
clear; clc; close;
Vi_max = 10;
Vo_max = 0.5*Vi_max;
Vdc = 0.636*Vo_max;
disp(Vdc,'Required Dc voltage :');
t = 0:0.1:2*%pi;
x = 10*sin(t);
for i=1:length(t)
if(x(i)>=0)
y(i) = x(i);
else y(i)=0;
end
end
plot(t,y)
xtitle('output waveform','t','Vo');
|
06a6f7d788ed2c336e8d494d794aebbe6f3254ee
|
931df7de6dffa2b03ac9771d79e06d88c24ab4ff
|
/Beginner flick 500ms by Lukettin.sce
|
743b037a6e18999401c454697df3e1ddbf2c5c6d
|
[] |
no_license
|
MBHuman/Scenarios
|
be1a722825b3b960014b07cda2f12fa4f75c7fc8
|
1db6bfdec8cc42164ca9ff57dd9d3c82cfaf2137
|
refs/heads/master
| 2023-01-14T02:10:25.103083
| 2020-11-21T16:47:14
| 2020-11-21T16:47:14
| null | 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 132,574
|
sce
|
Beginner flick 500ms by Lukettin.sce
|
Name=Beginner flick 500ms by Lukettin
PlayerCharacters=A_air_pistol_frozen slower
BotCharacters=500ms.bot
IsChallenge=true
Timelimit=60.0
PlayerProfile=A_air_pistol_frozen slower
AddedBots=500ms.bot
PlayerMaxLives=0
BotMaxLives=100
PlayerTeam=1
BotTeams=2
MapName=square_1wall_clip_big.map
MapScale=1.3
BlockProjectilePredictors=false
BlockCheats=true
InvinciblePlayer=false
InvincibleBots=false
Timescale=1.0
BlockHealthbars=false
TimeRefilledByKill=0.0
ScoreToWin=100.0
ScorePerDamage=0.0
ScorePerKill=1.0
ScorePerMidairDirect=0.0
ScorePerAnyDirect=0.0
ScorePerTime=0.0
ScoreLossPerDamageTaken=0.0
ScoreLossPerDeath=0.0
ScoreLossPerMidairDirected=0.0
ScoreLossPerAnyDirected=0.0
ScoreMultAccuracy=false
ScoreMultDamageEfficiency=false
ScoreMultKillEfficiency=false
GameTag=Flick
WeaponHeroTag=
DifficultyTag=5
AuthorsTag=banDiscord
BlockHitMarkers=false
BlockHitSounds=false
BlockMissSounds=true
BlockFCT=false
Description=A single target spawns and will self-damage to kill itself rapidly. Requires very fast reactions and precise aim.
GameVersion=2.0.1.1
ScorePerDistance=0.0
MBSEnable=false
MBSTime1=0.25
MBSTime2=0.5
MBSTime3=0.75
MBSTime1Mult=1.0
MBSTime2Mult=2.0
MBSTime3Mult=3.0
MBSFBInstead=false
MBSRequireEnemyAlive=false
LockFOVRange=false
LockedFOVMin=94.0
LockedFOVMax=94.0
LockedFOVScale=Clamped Horizontal
[Aim Profile]
Name=Aimbot
MinReactionTime=1.0
MaxReactionTime=1.0
MinSelfMovementCorrectionTime=0.001
MaxSelfMovementCorrectionTime=0.05
FlickFOV=90.0
FlickSpeed=10.0
FlickError=0.0
TrackSpeed=10.0
TrackError=0.0
MaxTurnAngleFromPadCenter=90.0
MinRecenterTime=0.0
MaxRecenterTime=0.0
OptimalAimFOV=90.0
OuterAimPenalty=0.0
MaxError=0.0
ShootFOV=15.0
VerticalAimOffset=0.0
MaxTolerableSpread=5.0
MinTolerableSpread=1.0
TolerableSpreadDist=2000.0
MaxSpreadDistFactor=2.0
AimingStyle=Original
ScanSpeedMultiplier=1.0
MaxSeekPitch=30.0
MaxSeekYaw=30.0
AimingSpeed=5.0
MinShootDelay=0.3
MaxShootDelay=0.6
[Aim Profile]
Name=Default
MinReactionTime=0.3
MaxReactionTime=0.4
MinSelfMovementCorrectionTime=0.001
MaxSelfMovementCorrectionTime=0.05
FlickFOV=30.0
FlickSpeed=1.5
FlickError=15.0
TrackSpeed=3.5
TrackError=3.5
MaxTurnAngleFromPadCenter=75.0
MinRecenterTime=0.3
MaxRecenterTime=0.5
OptimalAimFOV=30.0
OuterAimPenalty=1.0
MaxError=40.0
ShootFOV=15.0
VerticalAimOffset=0.0
MaxTolerableSpread=5.0
MinTolerableSpread=1.0
TolerableSpreadDist=2000.0
MaxSpreadDistFactor=2.0
AimingStyle=Original
ScanSpeedMultiplier=1.0
MaxSeekPitch=30.0
MaxSeekYaw=30.0
AimingSpeed=5.0
MinShootDelay=0.3
MaxShootDelay=0.6
[Bot Profile]
Name=500ms
DodgeProfileNames=no move for blink
DodgeProfileWeights=1.0
DodgeProfileMaxChangeTime=5.0
DodgeProfileMinChangeTime=1.0
WeaponProfileWeights=1.0;1.0;1.0;1.0;1.0;1.0;1.0;1.0
AimingProfileNames=Aimbot;Default;Default;Default;Default;Default;Default;Default
WeaponSwitchTime=3.0
UseWeapons=true
CharacterProfile=target_500ms
SeeThroughWalls=false
NoDodging=false
NoAiming=false
AbilityUseTimer=0.1
UseAbilityFrequency=1.0
UseAbilityFreqMinTime=0.3
UseAbilityFreqMaxTime=0.6
ShowLaser=false
LaserRGB=X=1.000 Y=0.300 Z=0.000
LaserAlpha=1.0
[Character Profile]
Name=A_air_pistol_frozen slower
MaxHealth=100.0
WeaponProfileNames=pistol slower;;;;;;;
MinRespawnDelay=1.0
MaxRespawnDelay=5.0
StepUpHeight=75.0
CrouchHeightModifier=0.5
CrouchAnimationSpeed=1.0
CameraOffset=X=0.000 Y=0.000 Z=0.000
HeadshotOnly=false
DamageKnockbackFactor=8.0
MovementType=Base
MaxSpeed=0.0
MaxCrouchSpeed=500.0
Acceleration=16000.0
AirAcceleration=16000.0
Friction=8.0
BrakingFrictionFactor=2.0
JumpVelocity=0.0
Gravity=0.0
AirControl=1.0
CanCrouch=true
CanPogoJump=false
CanCrouchInAir=false
CanJumpFromCrouch=false
EnemyBodyColor=X=255.000 Y=0.000 Z=0.000
EnemyHeadColor=X=255.000 Y=255.000 Z=255.000
TeamBodyColor=X=0.000 Y=0.000 Z=255.000
TeamHeadColor=X=255.000 Y=255.000 Z=255.000
BlockSelfDamage=false
InvinciblePlayer=false
InvincibleBots=false
BlockTeamDamage=false
AirJumpCount=0
AirJumpVelocity=800.0
MainBBType=Cylindrical
MainBBHeight=230.0
MainBBRadius=55.0
MainBBHasHead=true
MainBBHeadRadius=45.0
MainBBHeadOffset=0.0
MainBBHide=false
ProjBBType=Cylindrical
ProjBBHeight=230.0
ProjBBRadius=55.0
ProjBBHasHead=true
ProjBBHeadRadius=45.0
ProjBBHeadOffset=0.0
ProjBBHide=true
HasJetpack=false
JetpackActivationDelay=0.2
JetpackFullFuelTime=4.0
JetpackFuelIncPerSec=1.0
JetpackFuelRegensInAir=false
JetpackThrust=6000.0
JetpackMaxZVelocity=400.0
JetpackAirControlWithThrust=0.25
AbilityProfileNames=;;;
HideWeapon=false
AerialFriction=0.0
StrafeSpeedMult=1.0
BackSpeedMult=1.0
RespawnInvulnTime=0.0
BlockedSpawnRadius=0.0
BlockSpawnFOV=0.0
BlockSpawnDistance=0.0
RespawnAnimationDuration=0.5
AllowBufferedJumps=true
BounceOffWalls=false
LeanAngle=0.0
LeanDisplacement=0.0
AirJumpExtraControl=0.0
ForwardSpeedBias=1.0
HealthRegainedonkill=0.0
HealthRegenPerSec=0.0
HealthRegenDelay=0.0
JumpSpeedPenaltyDuration=0.0
JumpSpeedPenaltyPercent=0.0
ThirdPersonCamera=false
TPSArmLength=300.0
TPSOffset=X=0.000 Y=150.000 Z=150.000
BrakingDeceleration=2048.0
VerticalSpawnOffset=0.0
TerminalVelocity=0.0
CharacterModel=None
CharacterSkin=Default
SpawnXOffset=0.0
SpawnYOffset=0.0
InvertBlockedSpawn=false
ViewBobTime=0.0
ViewBobAngleAdjustment=0.0
ViewBobCameraZOffset=0.0
ViewBobAffectsShots=false
IsFlyer=false
FlightObeysPitch=false
FlightVelocityUp=800.0
FlightVelocityDown=800.0
[Character Profile]
Name=target_500ms
MaxHealth=1.0
WeaponProfileNames=;;;;;;;
MinRespawnDelay=0.55
MaxRespawnDelay=0.55
StepUpHeight=0.0
CrouchHeightModifier=0.5
CrouchAnimationSpeed=1.0
CameraOffset=X=0.000 Y=0.000 Z=0.000
HeadshotOnly=false
DamageKnockbackFactor=0.0
MovementType=Base
MaxSpeed=0.0
MaxCrouchSpeed=0.0
Acceleration=0.0
AirAcceleration=16000.0
Friction=0.0
BrakingFrictionFactor=0.0
JumpVelocity=0.0
Gravity=0.0
AirControl=0.0
CanCrouch=false
CanPogoJump=false
CanCrouchInAir=false
CanJumpFromCrouch=false
EnemyBodyColor=X=255.000 Y=0.000 Z=0.000
EnemyHeadColor=X=255.000 Y=255.000 Z=255.000
TeamBodyColor=X=0.000 Y=0.000 Z=255.000
TeamHeadColor=X=255.000 Y=255.000 Z=255.000
BlockSelfDamage=false
InvinciblePlayer=false
InvincibleBots=false
BlockTeamDamage=false
AirJumpCount=0
AirJumpVelocity=800.0
MainBBType=Spheroid
MainBBHeight=128.0
MainBBRadius=60.0
MainBBHasHead=false
MainBBHeadRadius=0.1
MainBBHeadOffset=0.0
MainBBHide=false
ProjBBType=Spheroid
ProjBBHeight=128.0
ProjBBRadius=60.0
ProjBBHasHead=false
ProjBBHeadRadius=0.1
ProjBBHeadOffset=0.0
ProjBBHide=true
HasJetpack=false
JetpackActivationDelay=0.2
JetpackFullFuelTime=100000.0
JetpackFuelIncPerSec=0.1
JetpackFuelRegensInAir=true
JetpackThrust=6000.0
JetpackMaxZVelocity=400.0
JetpackAirControlWithThrust=1.0
AbilityProfileNames=Self Destruct 500ms.abilwep;;;
HideWeapon=true
AerialFriction=0.0
StrafeSpeedMult=1.0
BackSpeedMult=1.0
RespawnInvulnTime=0.0
BlockedSpawnRadius=0.0
BlockSpawnFOV=0.0
BlockSpawnDistance=0.0
RespawnAnimationDuration=0.0
AllowBufferedJumps=false
BounceOffWalls=false
LeanAngle=0.0
LeanDisplacement=0.0
AirJumpExtraControl=0.0
ForwardSpeedBias=1.0
HealthRegainedonkill=0.0
HealthRegenPerSec=0.0
HealthRegenDelay=0.0
JumpSpeedPenaltyDuration=0.0
JumpSpeedPenaltyPercent=0.0
ThirdPersonCamera=false
TPSArmLength=300.0
TPSOffset=X=0.000 Y=150.000 Z=150.000
BrakingDeceleration=2048.0
VerticalSpawnOffset=0.0
TerminalVelocity=0.0
CharacterModel=None
CharacterSkin=Default
SpawnXOffset=0.0
SpawnYOffset=0.0
InvertBlockedSpawn=false
ViewBobTime=0.0
ViewBobAngleAdjustment=0.0
ViewBobCameraZOffset=0.0
ViewBobAffectsShots=false
IsFlyer=false
FlightObeysPitch=false
FlightVelocityUp=800.0
FlightVelocityDown=800.0
[Dodge Profile]
Name=no move for blink
MaxTargetDistance=100000.0
MinTargetDistance=10.0
ToggleLeftRight=true
ToggleForwardBack=true
MinLRTimeChange=0.2
MaxLRTimeChange=0.5
MinFBTimeChange=0.2
MaxFBTimeChange=0.5
DamageReactionChangesDirection=true
DamageReactionChanceToIgnore=0.5
DamageReactionMinimumDelay=0.125
DamageReactionMaximumDelay=0.25
DamageReactionCooldown=1.0
DamageReactionThreshold=0.0
DamageReactionResetTimer=0.1
JumpFrequency=0.2
CrouchInAirFrequency=0.0
CrouchOnGroundFrequency=0.0
TargetStrafeOverride=Ignore
TargetStrafeMinDelay=0.125
TargetStrafeMaxDelay=0.25
MinProfileChangeTime=0.0
MaxProfileChangeTime=0.0
MinCrouchTime=0.3
MaxCrouchTime=0.6
MinJumpTime=0.3
MaxJumpTime=0.6
LeftStrafeTimeMult=1.0
RightStrafeTimeMult=1.0
StrafeSwapMinPause=0.0
StrafeSwapMaxPause=0.25
BlockedMovementPercent=0.5
BlockedMovementReactionMin=0.125
BlockedMovementReactionMax=0.2
WaypointLogic=Ignore
WaypointTurnRate=200.0
MinTimeBeforeShot=0.15
MaxTimeBeforeShot=0.25
IgnoreShotChance=0.0
ForwardTimeMult=1.0
BackTimeMult=1.0
DamageReactionChangesFB=false
[Weapon Profile]
Name=pistol slower
Type=Hitscan
ShotsPerClick=1
DamagePerShot=25.0
KnockbackFactor=4.0
TimeBetweenShots=0.5
Pierces=false
Category=SemiAuto
BurstShotCount=1
TimeBetweenBursts=0.5
ChargeStartDamage=10.0
ChargeStartVelocity=X=500.000 Y=0.000 Z=0.000
ChargeTimeToAutoRelease=2.0
ChargeTimeToCap=1.0
ChargeMoveSpeedModifier=1.0
MuzzleVelocityMin=X=2000.000 Y=0.000 Z=0.000
MuzzleVelocityMax=X=2000.000 Y=0.000 Z=0.000
InheritOwnerVelocity=0.0
OriginOffset=X=0.000 Y=0.000 Z=0.000
MaxTravelTime=5.0
MaxHitscanRange=100000.0
GravityScale=1.0
HeadshotCapable=true
HeadshotMultiplier=2.0
MagazineMax=0
AmmoPerShot=1
ReloadTimeFromEmpty=0.5
ReloadTimeFromPartial=0.5
DamageFalloffStartDistance=100000.0
DamageFalloffStopDistance=100000.0
DamageAtMaxRange=25.0
DelayBeforeShot=0.0
ProjectileGraphic=Ball
VisualLifetime=0.1
BounceOffWorld=false
BounceFactor=0.5
BounceCount=0
HomingProjectileAcceleration=0.0
ProjectileEnemyHitRadius=1.0
CanAimDownSight=false
ADSZoomDelay=0.0
ADSZoomSensFactor=0.7
ADSMoveFactor=1.0
ADSStartDelay=0.0
ShootSoundCooldown=0.08
HitSoundCooldown=0.08
HitscanVisualOffset=X=0.000 Y=0.000 Z=-50.000
ADSBlocksShooting=false
ShootingBlocksADS=false
KnockbackFactorAir=4.0
RecoilNegatable=false
DecalType=1
DecalSize=30.0
DelayAfterShooting=0.0
BeamTracksCrosshair=false
AlsoShoot=
ADSShoot=
StunDuration=0.0
CircularSpread=true
SpreadStationaryVelocity=0.0
PassiveCharging=false
BurstFullyAuto=true
FlatKnockbackHorizontal=0.0
FlatKnockbackVertical=0.0
HitscanRadius=0.0
HitscanVisualRadius=6.0
TaggingDuration=0.0
TaggingMaxFactor=1.0
TaggingHitFactor=1.0
RecoilCrouchScale=1.0
RecoilADSScale=1.0
PSRCrouchScale=1.0
PSRADSScale=1.0
ProjectileAcceleration=0.0
AccelIncludeVertical=false
AimPunchAmount=0.0
AimPunchResetTime=0.05
AimPunchCooldown=0.5
AimPunchHeadshotOnly=false
AimPunchCosmeticOnly=false
MinimumDecelVelocity=0.0
PSRManualNegation=false
PSRAutoReset=true
AimPunchUpTime=0.05
AmmoReloadedOnKill=0
CancelReloadOnKill=false
FlatKnockbackHorizontalMin=0.0
FlatKnockbackVerticalMin=0.0
ADSScope=No Scope
ADSFOVOverride=72.099998
ADSFOVScale=Overwatch
ADSAllowUserOverrideFOV=true
IsBurstWeapon=false
ForceFirstPersonInADS=true
ZoomBlockedInAir=false
ADSCameraOffsetX=0.0
ADSCameraOffsetY=0.0
ADSCameraOffsetZ=0.0
QuickSwitchTime=0.0
WeaponModel=Heavy Surge Rifle
WeaponAnimation=Primary
UseIncReload=false
IncReloadStartupTime=0.0
IncReloadLoopTime=0.0
IncReloadAmmoPerLoop=1
IncReloadEndTime=0.0
IncReloadCancelWithShoot=true
WeaponSkin=Default
ProjectileVisualOffset=X=0.000 Y=0.000 Z=0.000
SpreadDecayDelay=0.0
ReloadBeforeRecovery=true
3rdPersonWeaponModel=Pistol
3rdPersonWeaponSkin=Default
ParticleMuzzleFlash=None
ParticleWallImpact=Gunshot
ParticleBodyImpact=Flare
ParticleProjectileTrail=None
ParticleHitscanTrace=None
ParticleMuzzleFlashScale=1.0
ParticleWallImpactScale=1.0
ParticleBodyImpactScale=1.0
ParticleProjectileTrailScale=1.0
Explosive=false
Radius=500.0
DamageAtCenter=100.0
DamageAtEdge=100.0
SelfDamageMultiplier=0.5
ExplodesOnContactWithEnemy=false
DelayAfterEnemyContact=0.0
ExplodesOnContactWithWorld=false
DelayAfterWorldContact=0.0
ExplodesOnNextAttack=false
DelayAfterSpawn=0.0
BlockedByWorld=false
SpreadSSA=1.0,1.0,-1.0,5.0
SpreadSCA=1.0,1.0,-1.0,5.0
SpreadMSA=1.0,1.0,-1.0,5.0
SpreadMCA=1.0,1.0,-1.0,5.0
SpreadSSH=0.0,0.1,0.0,0.0
SpreadSCH=1.0,1.0,-1.0,5.0
SpreadMSH=0.0,0.1,0.0,0.0
SpreadMCH=1.0,1.0,-1.0,5.0
MaxRecoilUp=0.0
MinRecoilUp=0.0
MinRecoilHoriz=0.0
MaxRecoilHoriz=0.0
FirstShotRecoilMult=1.0
RecoilAutoReset=false
TimeToRecoilPeak=0.05
TimeToRecoilReset=0.35
AAMode=0
AAPreferClosestPlayer=false
AAAlpha=1.0
AAMaxSpeed=360.0
AADeadZone=0.0
AAFOV=360.0
AANeedsLOS=true
TrackHorizontal=true
TrackVertical=true
AABlocksMouse=false
AAOffTimer=0.0
AABackOnTimer=0.0
TriggerBotEnabled=false
TriggerBotDelay=0.0
TriggerBotFOV=1.0
StickyLock=false
HeadLock=false
VerticalOffset=0.0
DisableLockOnKill=false
UsePerShotRecoil=false
PSRLoopStartIndex=0
PSRViewRecoilTracking=0.45
PSRCapUp=9.0
PSRCapRight=4.0
PSRCapLeft=4.0
PSRTimeToPeak=0.175
PSRResetDegreesPerSec=40.0
UsePerBulletSpread=false
PBS0=0.0,0.0
[Weapon Profile]
Name=explode500ms
Type=Hitscan
ShotsPerClick=1
DamagePerShot=0.0
KnockbackFactor=0.0
TimeBetweenShots=0.51
Pierces=false
Category=SemiAuto
BurstShotCount=3
TimeBetweenBursts=3.0
ChargeStartDamage=10.0
ChargeStartVelocity=X=500.000 Y=0.000 Z=0.000
ChargeTimeToAutoRelease=2.0
ChargeTimeToCap=1.0
ChargeMoveSpeedModifier=1.0
MuzzleVelocityMin=X=0.100 Y=0.000 Z=0.000
MuzzleVelocityMax=X=0.100 Y=0.000 Z=0.000
InheritOwnerVelocity=0.0
OriginOffset=X=0.000 Y=0.000 Z=0.000
MaxTravelTime=10.0
MaxHitscanRange=0.1
GravityScale=0.0
HeadshotCapable=false
HeadshotMultiplier=1.0
MagazineMax=0
AmmoPerShot=1
ReloadTimeFromEmpty=0.5
ReloadTimeFromPartial=0.5
DamageFalloffStartDistance=100000.0
DamageFalloffStopDistance=100000.0
DamageAtMaxRange=100.0
DelayBeforeShot=0.5
ProjectileGraphic=Ball
VisualLifetime=0.1
BounceOffWorld=false
BounceFactor=0.5
BounceCount=0
HomingProjectileAcceleration=0.0
ProjectileEnemyHitRadius=0.1
CanAimDownSight=false
ADSZoomDelay=0.0
ADSZoomSensFactor=0.7
ADSMoveFactor=1.0
ADSStartDelay=0.0
ShootSoundCooldown=0.0
HitSoundCooldown=0.0
HitscanVisualOffset=X=0.000 Y=0.000 Z=-50.000
ADSBlocksShooting=false
ShootingBlocksADS=false
KnockbackFactorAir=0.0
RecoilNegatable=false
DecalType=0
DecalSize=30.0
DelayAfterShooting=0.0
BeamTracksCrosshair=false
AlsoShoot=
ADSShoot=
StunDuration=0.0
CircularSpread=false
SpreadStationaryVelocity=300.0
PassiveCharging=false
BurstFullyAuto=true
FlatKnockbackHorizontal=0.0
FlatKnockbackVertical=0.0
HitscanRadius=0.0
HitscanVisualRadius=6.0
TaggingDuration=0.0
TaggingMaxFactor=1.0
TaggingHitFactor=1.0
RecoilCrouchScale=1.0
RecoilADSScale=1.0
PSRCrouchScale=1.0
PSRADSScale=1.0
ProjectileAcceleration=0.0
AccelIncludeVertical=true
AimPunchAmount=0.0
AimPunchResetTime=0.1
AimPunchCooldown=0.5
AimPunchHeadshotOnly=false
AimPunchCosmeticOnly=true
MinimumDecelVelocity=0.0
PSRManualNegation=false
PSRAutoReset=true
AimPunchUpTime=0.05
AmmoReloadedOnKill=0
CancelReloadOnKill=false
FlatKnockbackHorizontalMin=0.0
FlatKnockbackVerticalMin=0.0
ADSScope=No Scope
ADSFOVOverride=72.099998
ADSFOVScale=Overwatch
ADSAllowUserOverrideFOV=true
IsBurstWeapon=false
ForceFirstPersonInADS=true
ZoomBlockedInAir=false
ADSCameraOffsetX=0.0
ADSCameraOffsetY=0.0
ADSCameraOffsetZ=0.0
QuickSwitchTime=0.0
WeaponModel=Heavy Surge Rifle
WeaponAnimation=Primary
UseIncReload=false
IncReloadStartupTime=0.0
IncReloadLoopTime=0.0
IncReloadAmmoPerLoop=1
IncReloadEndTime=0.0
IncReloadCancelWithShoot=true
WeaponSkin=Default
ProjectileVisualOffset=X=0.000 Y=0.000 Z=0.000
SpreadDecayDelay=0.0
ReloadBeforeRecovery=true
3rdPersonWeaponModel=Pistol
3rdPersonWeaponSkin=Default
ParticleMuzzleFlash=None
ParticleWallImpact=None
ParticleBodyImpact=None
ParticleProjectileTrail=None
ParticleHitscanTrace=None
ParticleMuzzleFlashScale=1.0
ParticleWallImpactScale=1.0
ParticleBodyImpactScale=1.0
ParticleProjectileTrailScale=1.0
Explosive=true
Radius=10000.0
DamageAtCenter=1.0
DamageAtEdge=1.0
SelfDamageMultiplier=1.0
ExplodesOnContactWithEnemy=false
DelayAfterEnemyContact=0.0
ExplodesOnContactWithWorld=false
DelayAfterWorldContact=0.0
ExplodesOnNextAttack=false
DelayAfterSpawn=0.5
BlockedByWorld=false
SpreadSSA=1.0,1.0,-1.0,5.0
SpreadSCA=1.0,1.0,-1.0,5.0
SpreadMSA=1.0,1.0,-1.0,5.0
SpreadMCA=1.0,1.0,-1.0,5.0
SpreadSSH=0.0,0.1,0.0,0.0
SpreadSCH=1.0,1.0,-1.0,5.0
SpreadMSH=0.0,0.1,0.0,5.0
SpreadMCH=1.0,1.0,-1.0,5.0
MaxRecoilUp=0.0
MinRecoilUp=0.0
MinRecoilHoriz=0.0
MaxRecoilHoriz=0.0
FirstShotRecoilMult=1.0
RecoilAutoReset=false
TimeToRecoilPeak=0.05
TimeToRecoilReset=0.35
AAMode=0
AAPreferClosestPlayer=false
AAAlpha=0.05
AAMaxSpeed=1.0
AADeadZone=0.0
AAFOV=30.0
AANeedsLOS=true
TrackHorizontal=true
TrackVertical=true
AABlocksMouse=false
AAOffTimer=0.0
AABackOnTimer=0.0
TriggerBotEnabled=false
TriggerBotDelay=0.0
TriggerBotFOV=1.0
StickyLock=false
HeadLock=false
VerticalOffset=0.0
DisableLockOnKill=false
UsePerShotRecoil=false
PSRLoopStartIndex=0
PSRViewRecoilTracking=0.45
PSRCapUp=9.0
PSRCapRight=4.0
PSRCapLeft=4.0
PSRTimeToPeak=0.175
PSRResetDegreesPerSec=40.0
UsePerBulletSpread=false
PBS0=0.0,0.0
[Weapon Ability Profile]
Name=Self Destruct 500ms
MaxCharges=1.0
ChargeTimer=0.51
ChargesRefundedOnKill=0.0
DelayAfterUse=0.0
FullyAuto=true
WeaponProfile=explode500ms
BlockAttackTimer=0.0
AbilityBlockedWhenAttacking=false
AmmoPerShot=0
AIUseInCombat=true
AIUseOutOfCombat=true
AIUseOnGround=true
AIUseInAir=true
AIReuseTimer=0.01
AIMinSelfHealth=0.0
AIMaxSelfHealth=100.0
AIMinTargHealth=0.0
AIMaxTargHealth=100.0
AIMinTargDist=0.0
AIMaxTargDist=900000.0
AIMaxTargFOV=360.0
AIDamageReaction=false
AIDamageReactionIgnoreChance=0.0
AIDamageReactionMinDelay=0.125
AIDamageReactionMaxDelay=0.25
AIDamageReactionCooldown=1.0
AIDamageReactionThreshold=0.0
AIDamageReactionResetTimer=0.1
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|
6aa3c7186ab64b1eec1d0dfa193406dc15532469
|
a10c4fe2abd80779cead05e17d7b4508d5816c2b
|
/projects/04/SortLarge.tst
|
080536c71b7abe9b2ba376498d0538abba9703dd
|
[] |
no_license
|
MichaelCohenHUJI/NAND2TETRIS
|
ebf808f93a3fdae4c5424a1af1aec08ad4cc44de
|
36acc5a43f604ddc8197ad3e006cc8d43b99f800
|
refs/heads/master
| 2020-09-01T13:50:45.006520
| 2020-01-19T09:10:20
| 2020-01-19T09:10:20
| 218,971,878
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,386
|
tst
|
SortLarge.tst
|
// This file is part of www.nand2tetris.org
// written by Oded Wertheimer
// File name: projects/04/sort/SortLarge.tst
load Sort.hack,
output-file Sort.out,
compare-to SortLarge.cmp,
output-list
RAM[14]%D2.6.2
RAM[15]%D2.6.2
RAM[2048]%D2.6.2
RAM[2049]%D2.6.2
RAM[2050]%D2.6.2
RAM[2051]%D2.6.2
RAM[2052]%D2.6.2
RAM[2053]%D2.6.2
RAM[2054]%D2.6.2
RAM[2055]%D2.6.2
RAM[2056]%D2.6.2
RAM[2057]%D2.6.2
RAM[2058]%D2.6.2
RAM[2059]%D2.6.2
RAM[2060]%D2.6.2
RAM[2061]%D2.6.2
RAM[2062]%D2.6.2
RAM[2063]%D2.6.2
RAM[2064]%D2.6.2
RAM[2065]%D2.6.2;
set RAM[14] 2048, // Set test arguments
set RAM[15] 18,
set RAM[2048] 1;
set RAM[2049] 2;
set RAM[2050] 3;
set RAM[2051] 4;
set RAM[2052] 5;
set RAM[2053] 6;
set RAM[2054] 7;
set RAM[2055] 8;
set RAM[2056] 9;
set RAM[2057] 10;
set RAM[2058] 11;
set RAM[2059] 12;
set RAM[2060] 13;
set RAM[2061] 14;
set RAM[2062] 15;
set RAM[2063] 16;
set RAM[2064] 17;
set RAM[2065] 18;
repeat 10000 {
ticktock;
}
output;
set PC 0,
set RAM[14] 2048, // Set test arguments
set RAM[15] 18,
set RAM[2048] 1;
set RAM[2049] 2;
set RAM[2050] 3;
set RAM[2051] 4;
set RAM[2052] 5;
set RAM[2053] 6;
set RAM[2054] 7;
set RAM[2055] 8;
set RAM[2056] 20;
set RAM[2057] 10;
set RAM[2058] 11;
set RAM[2059] 1;
set RAM[2060] 13;
set RAM[2061] 20;
set RAM[2062] 15;
set RAM[2063] 6;
set RAM[2064] 17;
set RAM[2065] 18;
repeat 10000 {
ticktock;
}
output;
|
b60b85152a0b92f3692c1f18acb10f349fc09e6c
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3772/CH5/EX5.3/Ex5_3.sce
|
1e8ba01c6f81414689312591d077a33dd33e9376
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 641
|
sce
|
Ex5_3.sce
|
// Problem 5.3,Page no.123
clc;clear;
close;
b=10 //cm //width of beam
d=20 //cm depth of beam
//Calculations
//R_a and R_b are the reactions at A and B respectively.
//Moment of all forces about A
R_b=(4*4*4*2**-1-2*1.5)*(2)**-1 //KN
//R_a+R_b=18
R_a=18-R_b
//Consider a section at a distance x from A
//M_x=9.25*x-2(x-1.5)-4*x*x*2**-1=7.25*x+3-2*x**2
//Taking derivative of above equation to find max value of M_x we get
x=1.81 //m
M=7.25*x+3-2*x**2 //kN*m
I=b*d**3*12**-1 //cm**4 //M.I of the section
y=10
sigma=M*I**-1*y*10**8*(10**2)**-1 //Max bending stress
//Result
printf("The Max Bending stress is %.2f kN/m^2",sigma)
|
7819dd8de98f0b802a95aef680df917ad0b49973
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/462/CH2/EX2.31/ex_2_31.sce
|
858b7c41208e1e4493accae73a52aa69819e778c
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 359
|
sce
|
ex_2_31.sce
|
//example 2.31//
//conversion of binary to hexadecimal//
clc
//clears the screen//
clear
//clears already existing variables//
x=bin2dec('10100110101111')
//binary to decimal conversion//
a=dec2hex(x)
//decimal to hexadecimal conversion//
disp('conversion of given binary number to its hexadecimal form is:')
disp(a)
//answer in hexadecimal form//
|
de6fc9024e160d5acf679534e931c5e19b4e7f87
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1094/CH2/EX2.3.3/EX2_3_3.sce
|
acf4c03a16192e621d44d00aec813bc2f9784f53
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 287
|
sce
|
EX2_3_3.sce
|
//Exa:2.3.3
clc;
clear;
close;
P=10000;//in watts
I=60;//in amperes
V=400;//in volts
//When the coil is connected between phase A and Neutral;
theta=acosd(P/(V*I/sqrt(3)));//in degrees
alpha=90-theta;//in degrees
W=V*I*cosd(alpha)/1000;
disp(W,'Wattmeter Reading (in watts)=')
|
8fc7c5173252622100fd20e88aa9462d8dbaca3b
|
8217f7986187902617ad1bf89cb789618a90dd0a
|
/browsable_source/2.3.1/Unix-Windows/scilab-2.3/macros/percent/%lsss.sci
|
4bfb7367010b08daa9dae6d4e82f8e90166f85fb
|
[
"MIT",
"LicenseRef-scancode-warranty-disclaimer",
"LicenseRef-scancode-public-domain"
] |
permissive
|
clg55/Scilab-Workbench
|
4ebc01d2daea5026ad07fbfc53e16d4b29179502
|
9f8fd29c7f2a98100fa9aed8b58f6768d24a1875
|
refs/heads/master
| 2023-05-31T04:06:22.931111
| 2022-09-13T14:41:51
| 2022-09-13T14:41:51
| 258,270,193
| 0
| 1
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 65
|
sci
|
%lsss.sci
|
function s1=%lsss(s1)
// s=-s1
//!
s1(4)=-s1(4)
s1(5)=-s1(5)
|
975af8e48d59a384bb782e54e75890c017202b2a
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/24/CH5/EX5.3/Example5_3.sce
|
f471e40801e4a69fc9dfd1f1af808056f21b830b
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 372
|
sce
|
Example5_3.sce
|
exec("degree_rad.sci",-1)
//GIven that
F_A = 220 * [cos(dtor(180-47)),sin(dtor(180-47))] //in N
F_B_dir = [0,-1]
F_C_mag = 170 //in N
//Sample Problem 5-3
printf("**Sample Problem 5-3**\n")
//net sum of three forces must be zero
phi = acos(- F_A(1) / F_C_mag)
F_B_mag = F_C_mag * sin(phi) + F_A(2)
printf("The magnitude of Bettys force is %f N", F_B_mag)
|
accd9092dddff49daca6d197452c73b82cb3e5ce
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1092/CH7/EX7.8/Example7_8.sce
|
fc8a8afc0b91ce85b1cade68e26008b115e21482
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 2,910
|
sce
|
Example7_8.sce
|
// Electric Machinery and Transformers
// Irving L kosow
// Prentice Hall of India
// 2nd editiom
// Chapter 7: PARALLEL OPERATION
// Example 7-8
clear; clc; close; // Clear the work space and console.
// Given data
// EMF's are opposed exactly by 180 degrees
E_gp1 = 200 ; // Terminal voltage of alternator 1 in volt
E_gp2 = 220 ; // Terminal voltage of alternator 2 in volt
R_a1 = 0.2 ; // armature resistance of alternator 1 in ohm
R_a2 = 0.2 ; // armature resistance of alternator 2 in ohm
X_a1 = 2 ; // armature reactance of alternator 1 in ohm
X_a2 = 2 ; // armature reactance of alternator 2 in ohm
Z_p1 = R_a1 + %i*X_a1 ; // Effective impedance of alternator 1 in ohm
Z_p2 = R_a1 + %i*X_a2 ; // Effective impedance of alternator 2 in ohm
// Switches are closed at the proper instant for paralleling.
// Calculations
// case a
E_r = (E_gp2 - E_gp1) ; // Effective voltage generated in volt
I_s = E_r / (Z_p1 + Z_p2); // Synchronizing current in the armature in A
I_s_m = abs(I_s);//I_s_m=magnitude of I_s in A
I_s_a = atan(imag(I_s) /real(I_s))*180/%pi;//I_s_a=phase angle of I_s in degrees
P_2 = E_gp2 * I_s_m * cosd(I_s_a); // Generator action developed by alternator 2 in W
// case b
theta = I_s_a;
// P_1 = E_gp1 * I_s_m * cosd(180 - theta)
// P_1 = -E_gp1 * I_s_m * cosd(theta),
P_1 = -E_gp1 * I_s_m * cosd(theta); // Synchronizing power received by alternator 1 in W
// case c
// but consider +ve vlaue for P_1 for finding losses, so
P1 = abs(P_1);
losses = P_2 - P1 ; // Power losses in both armatures in W
check = E_r * I_s_m * cosd(I_s_a); // Verifying losses by Eq.7-7
double_check = (I_s_m)^2 * (R_a1 + R_a2); // Verifying losses by Eq.7-7
// case d
V_p2 = E_gp2 - I_s*Z_p1 ; // Generator action
V_p1 = E_gp1 + I_s*Z_p1 ; // Motor action
// Display the results
disp("Example 7-8 Solution : ");
printf(" \n a: E_r = %d V ",E_r);
printf(" \n I_s = %.2f <%.2f A ", I_s_m, I_s_a );
printf(" \n P_2 = %.1f W (total power delivered by alternator 2 ) \n", P_2);
printf(" \n b: P_1 = %f W (synchronizing power received by alternator 1)",P_1);
printf(" \n Note:Scilab considers phase angle of I_s as %f instead ",I_s_a);
printf(" \n of -84.3 degrees,so slight variation in the answer P_1.\n");
printf(" \n c: Consider +ve value of P_1 for calculating losses");
printf(" \n Losses: P_2 - P_1 = %.1f W ",losses );
printf(" \n Check: E_a*I_s*cos(theta) = %.1f W ",check );
printf(" \n Double check : (I_s)^2*(R_a1+R_a2) = %.1f W as given in Eq.(7-1)",double_check );
printf("\n\n d: From Fig.7-14, V_p2, the terminal phase voltage of ");
printf(" \n alternator 2, is, from Eq.(7-1)");
printf(" \n V_p2 = %d V (generator action)\n\n From section 7-2.1 ",V_p2);
printf(" \n V_p1 = %d V ( motor action)\n",V_p1);
printf(" \n e: The phasor diagram is shown in Fig.7-14.");
|
962cf8227a68d7c0ac8561af2fd224f3932d30f3
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1664/CH9/EX9.11/Ex9_11.sce
|
216a4bc7d01f3f2f9e3fee75b8c3dea42c9f3c92
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 985
|
sce
|
Ex9_11.sce
|
//Example No.9.11.
//Page No 272.
clc;clear;
p = 0.1;//Resistivity of P-type and N-type -[ohm m].
e = 1.6*10^(-19);//Electron charge.
Uh = 0.48;//Hole mobility -[m^2 V^-1 s^-1].
Ue = 1.35;//Electron mobility -[m^2 V^-1 s^-1].
ni = 1.5*10^(16);
d = (1/p);//Electrical conductivity
disp('For P-type material')
printf("\n1)The electrical conductivity is %.1f ohm^-1 m^-1",d);
Na = (d/(e*Uh));//Acceptor concentration.
printf("\n2)The acceptor concentration is %3.3e m^-3",Na);
n1 = (((ni)^(2))/(Na));//Minority carriers concentration.
printf("\n3)The minority carriers concentration is %3.3e m^-3",n1);
disp('For N-type semiconductor')
d = (1/p);//Electrical conductivity.
printf("\n2)The electrical conductivity is %.1f ohm^-1 m^-1",d);
Nd = (d/(e*Ue));//Donor concentration.
printf("\n2)The donor concentration is %3.3e m^-3",Nd);
n2 = (((ni)^(2))/(Nd));//Minority carriers concentration.
printf("\n3)The minority carriers concentration is %3.3e m^-3",n2);
|
6a23e7966b8bfc0a1b4ce6a1bd5c7898e2de1147
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1943/CH5/EX5.1/Ex5_1.sce
|
8caf9211e47d115ae0b752cc47bb5de71fc4757a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 394
|
sce
|
Ex5_1.sce
|
clc
clear
//Input data
Vs=2500;//The mass of a bed of solid particles in kg
p=2650;//The density of the solid in kg/m^3
d=800*10^-6;//The mean particle size in m
s=0.84;//The sphericity of the particle
//Calculations
As=(6*Vs)/(p*d*s);//The total surface area of the particles in the bed
//Output
printf(' The total surface area of the particles in the bed As = %3.0f m^2 ',As)
|
fd9d49fbbc76cbd58449557d8f6f4274ced47a44
|
676ffceabdfe022b6381807def2ea401302430ac
|
/utilities/NekMesh/Tests/MeshGen/GEO/2d_adapt.tst
|
9b4e1ff2ec9ce68fa5b3fddaad02b7717c45e2b0
|
[
"MIT"
] |
permissive
|
mathLab/ITHACA-SEM
|
3adf7a49567040398d758f4ee258276fee80065e
|
065a269e3f18f2fc9d9f4abd9d47abba14d0933b
|
refs/heads/master
| 2022-07-06T23:42:51.869689
| 2022-06-21T13:27:18
| 2022-06-21T13:27:18
| 136,485,665
| 10
| 5
|
MIT
| 2019-05-15T08:31:40
| 2018-06-07T14:01:54
|
Makefile
|
UTF-8
|
Scilab
| false
| false
| 768
|
tst
|
2d_adapt.tst
|
<?xml version="1.0" encoding="utf-8" ?>
<test>
<description>r-adaptation test</description>
<executable>NekMesh</executable>
<parameters>-v -m varopti:hyperelastic:scalingfile=2d_adapt.txt:maxiter=10:subiter=2:nq=2 2d_adapt.mcf 2d_adapt-out.xml:xml:test</parameters>
<files>
<file description="Input File">2d_adapt.mcf</file>
<file description="Input File 2">2d_adapt.geo</file>
<file description="Input File 3">2d_adapt.txt</file>
</files>
<metrics>
<metric type="regex" id="1">
<regex>^.*Invalid at end : (\d+)</regex>
<matches>
<match>
<field id="0">0</field>
</match>
</matches>
</metric>
</metrics>
</test>
|
cbac1ad77c7e9c5a2c85c7842d28bf6bdd681909
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1760/CH1/EX1.27/EX1_27.sce
|
90e6d07b6108379eb082bc232bf1d7e9a07c4a9f
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 326
|
sce
|
EX1_27.sce
|
//EXAMPLE 1-27 PG NO27
L1=50*10^-3; // Inductar
L2=100*10^-3; //Inductar
X=(L1/L2);
disp('i) (L1/L2) = '+string (X)+' ')
//Q1+Q2=600;
Q11=200; //flux
Q22=400 //flux
disp('ii) Flux Q11 = '+string (Q11)+' mWb');
disp('iii) Flux Q22 = '+string (Q22)+' mWb');
|
77369563ec48b28b90c5c9db4fda7858b010e260
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/680/CH14/EX14.05/14_05.sce
|
4e2afa7fe2c5a6a6c6358597783dad9bf3a45d08
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 357
|
sce
|
14_05.sce
|
//Problem 14.05:
//initializing the variables:
P = 0.5; // in atm
e = 0.3;
//calculation:
//From Equation (14.27)
//K = Ky*P^v
//y1 = (3-e)/(5-2e) \n y2 = (1-3e)/(5-2e) \n y3 = e/(5-2e) \n y4 = (1+e)/(5-2e)
v = 1+1-3-1
printf("\n\nResult\n\n")
printf("\n K = [(e/(5-2e))^1*(1+e)/(5-2e))^1/((3-e)/(5-2e))^3*((1-3e)/(5-2e))^1]*P^(%.0f)",v)
|
1aeac00fdea031c465ac4f24b3620d56e2014d1d
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2510/CH3/EX3.3/Ex3_3.sce
|
2eff7559d8091f9edf087d192d8c0a90a4911428
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 736
|
sce
|
Ex3_3.sce
|
//Variable Declaration:
Q1 = 32.2 //Gravitational acceleration (ft/s^2) (part 1)
CF = 32.2 //Conversion factor (lb.ft/lbf.s^2)
M = 100 //Mass (lb)
SA = 3 //Surface area (in^2)
FsIs = (1.0/12.0)**2 //Feet square in a inch square
Q2 = 14.7 //Atmospheric pressure (psi) (part 2)
GP = 35 //Gauge Pressure (psig)
//Caculations:
F = M*Q1/CF //Force (lbf)
P = F/SA/FsIs //Pressure at the base (lbf/ft^2)
Pa = GP+Q2 //Absolute pressure (psia)
//Results:
disp("1. Pressure at the base is:")
disp(P)
disp("lbf/ft^2")
disp("2. Absolute pressure is:")
disp(Pa)
disp("psia")
|
25dd7a9a14db1088c163cb67844810ee475cf819
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3878/CH22/EX22.2/Ex22_2.sce
|
72805a316ec0ebcb5d21fe692eddca9f4d221620
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 379
|
sce
|
Ex22_2.sce
|
clear
// Variable declaration
T_d=37// The dry bulb temperature of air in °C
T_w=25.4// The cooling temperature of water in °C
cf=0.80// Contact factor
// Calculation
T_df=T_d-(cf*(T_d-T_w))// The dry bulb temperature (final) in °C
printf("\n The dry bulb temperature (final)=%2.1f °C point D ",T_df)
printf("\n \nThe wet bulb is now 18.9°C and the enthalpy is 53 kJ/kg.")
|
433a4bafaececedb707f3f3f03bc4ff854e88329
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1322/CH3/EX3.3/29ex3.sce
|
d3e54ca14614779240aedfd18ddae5caf711b0e2
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 91
|
sce
|
29ex3.sce
|
//simplify 5x-(5y+2x)
clear;
clc;
close;
//on adding like terms
val=string('3x-5y')
|
eda3dec24c7a5d3920e18a547e403b4a9c7bfc43
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/965/CH2/EX2.72/72.sci
|
07e63fedb5f1b5148209fc9129276669dc2f827a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 502
|
sci
|
72.sci
|
clc;
clear all;
disp("heat flow through wire")
k=0.12;// W/(m*C)
r1=2/2;//mm
r2=r1+0.8;//mm
ho=35;// W/(m^2*K)
rc=1000*k/ho;//mm
disp("mm",rc,"critical radius of insulation =")
disp("i) heat flow through an insulated wire")
Rthcd=(log(r2/r1))/k;
Rthcv=1000/(ho*r2);
Rth12=Rthcd+Rthcv;
//Q12=2*pi*L*(t1-tair)/Rth12;
Rthcd=(log(rc/r1))/k;
Rthcv=1000/(ho*rc);
Rth1c=Rthcd+Rthcv;
//Q1c=2*pi*L*(t1-tair)/Rth1c;
//(Q1c-Q12)/Q12*100
change=(1/Rth1c-1/Rth12)*100/(1/Rth12)
disp("%")
|
dc319abad53f3c62adf68ef1386e04d54e9c8a4d
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1364/CH12/EX12.10.4/12_10_4.sce
|
227c2d7e26f89c5740c95fb3af278cb95c0f8a66
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 187
|
sce
|
12_10_4.sce
|
clc
//initialisation of variables
p= 14.7 //lbf/in^2
r= 14
r1= 15
r2= 1.4
//CALCULATIONS
R= (r/r1)^(r2/(r2-1))
P= p*144*R
//RESULTS
printf ('pressure drop = %.f lbf/ft^2',P+2)
|
e219184490b92d0f785a80057adec092e9fd47d8
|
72b0437731d44d03866f19e69d3356a2c65ef27f
|
/linearity.sce
|
e9dfa930175b403b1dc8f110c5e1ea8a688b1e2d
|
[] |
no_license
|
sonusharma55/Discrete-Time-Signal-Processing
|
217f1753fbacf4bd67e557d3630ce1cf018ce036
|
6c255a9ca331c984598a04b81bb67e903e2e4c16
|
refs/heads/master
| 2020-07-25T21:12:32.026102
| 2019-09-14T11:36:56
| 2019-09-14T11:36:56
| 208,425,368
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 688
|
sce
|
linearity.sce
|
// Title: Properties of DFT, || Sonu Sharma, RollNo -530
//A). Linearity Property
clear
function[X] = dft_s(x)
N = length(x)
n = 0:1:N-1
w = exp(-1*%i*2*%pi/N)
z = n'*n
TF = w.^z
X = x*TF
endfunction
clc
disp("To Verify : DFT[a1*x1(n) + a2*x2(n)] == a1*X(k) + a2*X(k)")
x1 = input("Enter a sequence x1(n)=")
x2 = input("Enter another sequence x2(n)=")
a1 = input("Enter a scalar a1 =")
a2 = input("Enter another scalar a2 =")
x = a1*x1 + a2*x2
disp(x,"x(n) = a1*x1(n) + a2*x2(n) = ")
LHS = dft_s(x)
disp(LHS,"LHS = ")
X1 = dft_s(x1)
disp(X1,"X1(k) = ")
X2 = dft_s(x2)
disp(X2,"X2(k) = ")
RHS = a1*X1 + a2*X2
disp(RHS, "RHS = ")
|
58a1c8e2f68145be30aaa9f0f3abf3551c1e2232
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/43/CH3/EX3.2/ex3_2.sce
|
8ee035f298620b197b77dd5e25619659ae8e24af
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 232
|
sce
|
ex3_2.sce
|
clc;
//k=2;
r=1;
k=0:1:2;
h=0.5^(k);
l1=convol(h,r);
s1=sum(l1);
disp(s1);
n=2;
subplot(2,1,1),plot2d3(n,s1);
//k=3;
r=1;
k=0:1:3;
h=0.5^(k);
l2=convol(h,r);
s2=sum(l2);
disp(s2);
m=3;
subplot(2,1,2),plot2d3(m,s2);
|
48bd15d726738c06cec080a1cec9d72e21ea59e1
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3637/CH5/EX5.3/Ex5_3.sce
|
eb7f2b010dddcccf70cbd96df7a94cb0ed2e2c05
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 298
|
sce
|
Ex5_3.sce
|
//problem 3 pagenumber 5.96
//given
freq1=2e3;//hz
w=0.75;format(6);
c1=0.1e-6;//farad
//determine ra rb
//for 0.75 dutycycle rb=0.5*ra
ra=1.44/freq1*(1/(c1*2));
rb=0.5*ra;
disp('Ra = '+string(ra)+' ohm');
disp('Rb = '+string(rb)+' ohm');
disp('C1 = '+string(c1*1e6)+' μfarad');
|
7ec59bef86fda51ffe960c49de8a13dee4fba48f
|
f2635c3a10a2508720f5d231581bbcf58664cf12
|
/pl/math/test/testcases/directed/asinhf.tst
|
eb76a5892a706253c46663d043139dcaaa75eec4
|
[
"LLVM-exception",
"MIT",
"Apache-2.0",
"LicenseRef-scancode-unknown-license-reference"
] |
permissive
|
xboxfanj/optimized-routines
|
9ed0fef9346076e3eaf952cecd9b6c39cca8d92b
|
e312306d13daf9c044145ca26fb34ef7704fae81
|
refs/heads/master
| 2023-01-21T08:14:26.298438
| 2022-12-21T00:02:54
| 2023-01-10T16:39:37
| 232,194,104
| 0
| 0
|
MIT
| 2020-01-06T22:07:31
| 2020-01-06T22:07:30
| null |
UTF-8
|
Scilab
| false
| false
| 883
|
tst
|
asinhf.tst
|
; asinhf.tst
;
; Copyright (c) 2007-2023, Arm Limited.
; SPDX-License-Identifier: MIT OR Apache-2.0 WITH LLVM-exception
func=asinhf op1=7fc00001 result=7fc00001 errno=0
func=asinhf op1=ffc00001 result=7fc00001 errno=0
func=asinhf op1=7f800001 result=7fc00001 errno=0 status=i
func=asinhf op1=ff800001 result=7fc00001 errno=0 status=i
func=asinhf op1=7f800000 result=7f800000 errno=0
func=asinhf op1=ff800000 result=ff800000 errno=0
func=asinhf op1=00000000 result=00000000 errno=0
func=asinhf op1=80000000 result=80000000 errno=0
; No exception is raised on certain machines (different version of glibc)
; Same issue encountered with other function similar to x close to 0
; Could be due to function so boring no flop is involved in some implementations
func=asinhf op1=00000001 result=00000001 errno=0 maybestatus=ux
func=asinhf op1=80000001 result=80000001 errno=0 maybestatus=ux
|
cae4ded6de112920bb73f264693433bbcfbd1a38
|
8217f7986187902617ad1bf89cb789618a90dd0a
|
/browsable_source/2.5/Unix-Windows/scilab-2.5/tests/examples/xstringb.man.tst
|
2ae347eac745e7729f22a8ffb589028ca3e7f5b4
|
[
"LicenseRef-scancode-public-domain",
"LicenseRef-scancode-warranty-disclaimer"
] |
permissive
|
clg55/Scilab-Workbench
|
4ebc01d2daea5026ad07fbfc53e16d4b29179502
|
9f8fd29c7f2a98100fa9aed8b58f6768d24a1875
|
refs/heads/master
| 2023-05-31T04:06:22.931111
| 2022-09-13T14:41:51
| 2022-09-13T14:41:51
| 258,270,193
| 0
| 1
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 403
|
tst
|
xstringb.man.tst
|
clear;lines(0);
str=["Scilab" "is";"not" "elisaB"];
plot2d(0,0,[-1,1],"010"," ",[0,0,1,1]);
r=[0,0,1,0.5];
xstringb(r(1),r(2),str,r(3),r(4),"fill");
xrect(r(1),r(2)+r(4),r(3),r(4))
r=[r(1),r(2)+r(4)+0.01,r(3),r(4)/2];
xrect(r(1),r(2)+r(4),r(3),r(4))
xstringb(r(1),r(2),str,r(3),r(4),"fill");
r=[r(1),r(2)+r(4)+0.01,r(3),r(4)/2];
xrect(r(1),r(2)+r(4),r(3),r(4))
xstringb(r(1),r(2),str,r(3),r(4),"fill");
|
e9fcee135a35cfb7024bd4398ffbe2d495dcec3a
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3768/CH10/EX10.7/Ex10_7.sce
|
35c1aec1118a9cecc21b78840d791fa779043b6d
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 309
|
sce
|
Ex10_7.sce
|
//Example number 10.7, Page number 226
clc;clear;
close;
//Variable declaration
Tc1=4.185; //critical temperature(K)
M1=199.5; //isotopic mass(amu)
M2=203.4; //isotopic mass(amu)
//Calculation
Tc2=Tc1*sqrt(M1/M2); //critical temperature(K)
//Result
printf("critical temperature is %.4f K",Tc2)
|
d0ffa7c5578c2621296754c598fe211cb6cb7ff7
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1100/CH13/EX13.1/13_1.sce
|
ac32c682b4d2681f219d420d868841fe1d7ef04f
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 372
|
sce
|
13_1.sce
|
clc
//initialisation of variables
P= 1 //psia
P1= 200 //psia
T= 750 //F
v3= 0.01614 //cu ft/lb
h1= 1399.2 //Bu/lb
h2= 976 //Btu/lb
h3= 69.7 //Btu/lb
//CALCULATIONS
dh= v3*(144/778)*(P1-P)
h4= h3+dh
Q1= h1-h4
Wt= h1-h2
Wp= h4-h3
n= (Wt-Wp)/Q1
w= 2545/Wt
//RESULTS
printf ('cycle efficency = %.3f ',n)
printf (' \n steam rate= %.2f lb steam per hphr',w)
|
21db4be4ca22b8774d6ed70b33ee28a65b530c92
|
33f77c32fb16283501d950b6fc6b43a07914f32e
|
/scilab_autopilot/lib/phys/screw/screw_new.sce
|
6b1ef77a30fbb862d3644c4200f563eab1e7e45f
|
[] |
no_license
|
CLUBMODELISMECEADSTOULOUSE/autopilot
|
26b79d6a2a632f08989a5528e82f553616617646
|
a6ffae2f8a86fbc79e636ddd5173af104e1af9cd
|
refs/heads/master
| 2021-01-21T00:59:06.271128
| 2015-10-25T09:31:54
| 2015-10-25T09:31:54
| 34,409,237
| 1
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 77
|
sce
|
screw_new.sce
|
function [screw] = screw_new(res, mom)
screw = [ res; mom ];
endfunction
|
e2a9c1eea470bc21b651dcee383495d022db2feb
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3269/CH2/EX2.14/Ex2_14.sce
|
67cf20dfe855fd09a5fe9b0948047bae970744f1
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,277
|
sce
|
Ex2_14.sce
|
// Example 2.14
clear all;
clc;
// Given data
rho = 1; // Density of water in gram/cm^3
// 1.
M_H = 1.00797; // Atomic weight of Hydrogen(H)
M_O = 15.9994; // Atomic weight of Oxygen(O)
// As in water, there is two atoms of Hydrogen(H) and one atom of Oxygen(O)
M = (2*M_H)+M_O; // Molecular weight of water
// From standard data table
NA = 0.6022*10^24; // Avagodro number
// Calculation
N = rho*NA/M;
// Result
printf("Atom density of water = %5.5E molecules/cm^3 \n",N);
// 2.
// As in water, there is two atoms of Hydrogen(H) and one atom of Oxygen(O)
N_H = 2*N; // Atom density of Hydrogen
N_O = N; // Atom density of Oxygen
// Result
printf("Atom density of Hydrogen(H) = %5.4E atoms/cm^3 \n",N_H);
printf("Atom density of Oxygen(O)= %5.4E atoms/cm^3 \n",N_O);
// 3.
// Using the data given in Table II.2, Appendix II for isotropic abundance of deuterium
isoab_H2 = 0.015;
// Calculation
N_H2 = isoab_H2*N_H/100;
// Result
printf("Atom density of Deuterium(H-2)= %5.4E atoms/cm^3 \n",N_H2);
|
f0a7ec786909e251fa0ae338bd8a96926d6c934e
|
f542bc49c4d04b47d19c88e7c89d5db60922e34e
|
/PresentationFiles_Subjects/CONT/ATWM1_Working_Memory_MEG_TP55FGX_Session2/ATWM1_Working_Memory_MEG_Nonsalient_Uncued_Run2.sce
|
72f5a585c13e24eec0aa712c5fb8645af1222dbf
|
[] |
no_license
|
atwm1/Presentation
|
65c674180f731f050aad33beefffb9ba0caa6688
|
9732a004ca091b184b670c56c55f538ff6600c08
|
refs/heads/master
| 2020-04-15T14:04:41.900640
| 2020-02-14T16:10:11
| 2020-02-14T16:10:11
| 56,771,016
| 0
| 1
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 48,617
|
sce
|
ATWM1_Working_Memory_MEG_Nonsalient_Uncued_Run2.sce
|
# ATWM1 MEG Experiment
scenario = "ATWM1_Working_Memory_MEG_salient_cued_run2";
#scenario_type = fMRI; # Fuer Scanner
#scenario_type = fMRI_emulation; # Zum Testen
scenario_type = trials; # for MEG
#scan_period = 2000; # TR
#pulses_per_scan = 1;
#pulse_code = 1;
pulse_width=6;
default_monitor_sounds = false;
active_buttons = 2;
response_matching = simple_matching;
button_codes = 10, 20;
default_font_size = 36;
default_font = "Arial";
default_background_color = 0 ,0 ,0 ;
write_codes=true; # for MEG only
begin;
#Picture definitions
box { height = 382; width = 382; color = 0, 0, 0;} frame1;
box { height = 369; width = 369; color = 255, 255, 255;} frame2;
box { height = 30; width = 4; color = 0, 0, 0;} fix1;
box { height = 4; width = 30; color = 0, 0, 0;} fix2;
box { height = 30; width = 4; color = 255, 0, 0;} fix3;
box { height = 4; width = 30; color = 255, 0, 0;} fix4;
box { height = 369; width = 369; color = 42, 42, 42;} background;
TEMPLATE "StimuliDeclaration.tem" {};
trial {
sound sound_incorrect;
time = 0;
duration = 1;
} wrong;
trial {
sound sound_correct;
time = 0;
duration = 1;
} right;
trial {
sound sound_no_response;
time = 0;
duration = 1;
} miss;
# Start of experiment (MEG only) - sync with CTF software
trial {
picture {
box frame1; x=0; y=0;
box frame2; x=0; y=0;
box background; x=0; y=0;
bitmap fixation_cross_black; x=0; y=0;
} expStart;
time = 0;
duration = 1000;
code = "ExpStart";
port_code = 80;
};
# baselinePre (at the beginning of the session)
trial {
picture {
box frame1; x=0; y=0;
box frame2; x=0; y=0;
box background; x=0; y=0;
bitmap fixation_cross_black; x=0; y=0;
}default;
time = 0;
duration = 10000;
#mri_pulse = 1;
code = "BaselinePre";
port_code = 91;
};
TEMPLATE "ATWM1_Working_Memory_MEG.tem" {
trigger_encoding trigger_retrieval cue_time preparation_time encoding_time single_stimulus_presentation_time delay_time retrieval_time intertrial_interval alerting_cross stim_enc1 stim_enc2 stim_enc3 stim_enc4 stim_enc_alt1 stim_enc_alt2 stim_enc_alt3 stim_enc_alt4 trial_code stim_retr1 stim_retr2 stim_retr3 stim_retr4 stim_cue1 stim_cue2 stim_cue3 stim_cue4 fixationcross_cued retr_code the_target_button posX1 posY1 posX2 posY2 posX3 posY3 posX4 posY4;
44 62 292 292 399 125 1742 2992 1992 fixation_cross gabor_109 gabor_133 gabor_078 gabor_051 gabor_109 gabor_133_alt gabor_078_alt gabor_051 "2_1_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1750_3000_2000_gabor_patch_orientation_109_133_078_051_target_position_1_4_retrieval_position_1" gabor_109_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_1_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_109_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1992 2992 2042 fixation_cross gabor_143 gabor_111 gabor_027 gabor_006 gabor_143 gabor_111_alt gabor_027_alt gabor_006 "2_2_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2000_3000_2050_gabor_patch_orientation_143_111_027_006_target_position_1_4_retrieval_position_1" gabor_093_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_2_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_093_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2142 2992 2142 fixation_cross gabor_141 gabor_081 gabor_106 gabor_016 gabor_141_alt gabor_081 gabor_106_alt gabor_016 "2_3_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2150_3000_2150_gabor_patch_orientation_141_081_106_016_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_016_framed blank blank blank blank fixation_cross_white "2_3_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_016_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2092 2992 2092 fixation_cross gabor_073 gabor_039 gabor_055 gabor_129 gabor_073_alt gabor_039 gabor_055 gabor_129_alt "2_4_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2100_3000_2100_gabor_patch_orientation_073_039_055_129_target_position_2_3_retrieval_position_2" gabor_circ gabor_039_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_4_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_039_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1792 2992 2092 fixation_cross gabor_020 gabor_091 gabor_128 gabor_059 gabor_020 gabor_091_alt gabor_128_alt gabor_059 "2_5_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_1800_3000_2100_gabor_patch_orientation_020_091_128_059_target_position_1_4_retrieval_position_3" gabor_circ gabor_circ gabor_128_framed gabor_circ blank blank blank blank fixation_cross_white "2_5_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_128_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1792 2992 1942 fixation_cross gabor_122 gabor_064 gabor_015 gabor_035 gabor_122_alt gabor_064_alt gabor_015 gabor_035 "2_6_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1800_3000_1950_gabor_patch_orientation_122_064_015_035_target_position_3_4_retrieval_position_3" gabor_circ gabor_circ gabor_015_framed gabor_circ blank blank blank blank fixation_cross_white "2_6_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_015_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1792 2992 2342 fixation_cross gabor_057 gabor_130 gabor_019 gabor_172 gabor_057_alt gabor_130 gabor_019_alt gabor_172 "2_7_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1800_3000_2350_gabor_patch_orientation_057_130_019_172_target_position_2_4_retrieval_position_2" gabor_circ gabor_084_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_7_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_084_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2142 2992 2192 fixation_cross gabor_157 gabor_094 gabor_134 gabor_076 gabor_157 gabor_094_alt gabor_134_alt gabor_076 "2_8_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2150_3000_2200_gabor_patch_orientation_157_094_134_076_target_position_1_4_retrieval_position_1" gabor_019_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_8_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_019_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1942 2992 2542 fixation_cross gabor_148 gabor_133 gabor_081 gabor_099 gabor_148_alt gabor_133 gabor_081 gabor_099_alt "2_9_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_1950_3000_2550_gabor_patch_orientation_148_133_081_099_target_position_2_3_retrieval_position_1" gabor_148_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_9_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_148_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2042 2992 2242 fixation_cross gabor_097 gabor_034 gabor_120 gabor_142 gabor_097 gabor_034_alt gabor_120_alt gabor_142 "2_10_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2050_3000_2250_gabor_patch_orientation_097_034_120_142_target_position_1_4_retrieval_position_1" gabor_052_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_10_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_052_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2192 2992 2592 fixation_cross gabor_152 gabor_109 gabor_041 gabor_072 gabor_152_alt gabor_109 gabor_041_alt gabor_072 "2_11_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2200_3000_2600_gabor_patch_orientation_152_109_041_072_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_023_framed blank blank blank blank fixation_cross_white "2_11_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_023_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2042 2992 2042 fixation_cross gabor_038 gabor_060 gabor_145 gabor_086 gabor_038_alt gabor_060 gabor_145 gabor_086_alt "2_12_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2050_3000_2050_gabor_patch_orientation_038_060_145_086_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_145_framed gabor_circ blank blank blank blank fixation_cross_white "2_12_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_145_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1742 2992 2042 fixation_cross gabor_134 gabor_074 gabor_007 gabor_093 gabor_134_alt gabor_074 gabor_007_alt gabor_093 "2_13_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1750_3000_2050_gabor_patch_orientation_134_074_007_093_target_position_2_4_retrieval_position_2" gabor_circ gabor_074_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_13_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_074_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1992 2992 2442 fixation_cross gabor_014 gabor_159 gabor_102 gabor_174 gabor_014 gabor_159_alt gabor_102 gabor_174_alt "2_14_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2000_3000_2450_gabor_patch_orientation_014_159_102_174_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_102_framed gabor_circ blank blank blank blank fixation_cross_white "2_14_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_102_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2042 2992 1892 fixation_cross gabor_037 gabor_158 gabor_013 gabor_122 gabor_037_alt gabor_158 gabor_013_alt gabor_122 "2_15_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2050_3000_1900_gabor_patch_orientation_037_158_013_122_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_075_framed blank blank blank blank fixation_cross_white "2_15_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_075_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1992 2992 1892 fixation_cross gabor_161 gabor_115 gabor_135 gabor_075 gabor_161 gabor_115 gabor_135_alt gabor_075_alt "2_16_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_2000_3000_1900_gabor_patch_orientation_161_115_135_075_target_position_1_2_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_075_framed blank blank blank blank fixation_cross_white "2_16_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_075_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1742 2992 2042 fixation_cross gabor_084 gabor_160 gabor_019 gabor_142 gabor_084_alt gabor_160_alt gabor_019 gabor_142 "2_17_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1750_3000_2050_gabor_patch_orientation_084_160_019_142_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_142_framed blank blank blank blank fixation_cross_white "2_17_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_142_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1842 2992 1942 fixation_cross gabor_010 gabor_124 gabor_096 gabor_146 gabor_010 gabor_124 gabor_096_alt gabor_146_alt "2_18_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1850_3000_1950_gabor_patch_orientation_010_124_096_146_target_position_1_2_retrieval_position_2" gabor_circ gabor_079_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_18_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_079_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1892 2992 2442 fixation_cross gabor_021 gabor_143 gabor_053 gabor_171 gabor_021 gabor_143_alt gabor_053 gabor_171_alt "2_19_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1900_3000_2450_gabor_patch_orientation_021_143_053_171_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_053_framed gabor_circ blank blank blank blank fixation_cross_white "2_19_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_053_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 1942 2992 2092 fixation_cross gabor_028 gabor_082 gabor_116 gabor_009 gabor_028_alt gabor_082_alt gabor_116 gabor_009 "2_20_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_1950_3000_2100_gabor_patch_orientation_028_082_116_009_target_position_3_4_retrieval_position_1" gabor_163_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_20_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_163_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2242 2992 2392 fixation_cross gabor_180 gabor_045 gabor_155 gabor_124 gabor_180 gabor_045 gabor_155_alt gabor_124_alt "2_21_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2250_3000_2400_gabor_patch_orientation_180_045_155_124_target_position_1_2_retrieval_position_2" gabor_circ gabor_093_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_21_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_093_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1942 2992 2192 fixation_cross gabor_066 gabor_177 gabor_045 gabor_008 gabor_066_alt gabor_177 gabor_045_alt gabor_008 "2_22_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1950_3000_2200_gabor_patch_orientation_066_177_045_008_target_position_2_4_retrieval_position_2" gabor_circ gabor_127_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_22_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_127_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2142 2992 1942 fixation_cross gabor_064 gabor_002 gabor_109 gabor_091 gabor_064_alt gabor_002 gabor_109_alt gabor_091 "2_23_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2150_3000_1950_gabor_patch_orientation_064_002_109_091_target_position_2_4_retrieval_position_2" gabor_circ gabor_002_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_23_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_002_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2192 2992 1992 fixation_cross gabor_125 gabor_179 gabor_057 gabor_040 gabor_125_alt gabor_179_alt gabor_057 gabor_040 "2_24_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2200_3000_2000_gabor_patch_orientation_125_179_057_040_target_position_3_4_retrieval_position_3" gabor_circ gabor_circ gabor_105_framed gabor_circ blank blank blank blank fixation_cross_white "2_24_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_105_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 1792 2992 2242 fixation_cross gabor_029 gabor_143 gabor_158 gabor_086 gabor_029 gabor_143 gabor_158_alt gabor_086_alt "2_25_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_1800_3000_2250_gabor_patch_orientation_029_143_158_086_target_position_1_2_retrieval_position_3" gabor_circ gabor_circ gabor_112_framed gabor_circ blank blank blank blank fixation_cross_white "2_25_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_112_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1842 2992 2292 fixation_cross gabor_119 gabor_096 gabor_011 gabor_150 gabor_119 gabor_096_alt gabor_011 gabor_150_alt "2_26_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1850_3000_2300_gabor_patch_orientation_119_096_011_150_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_061_framed gabor_circ blank blank blank blank fixation_cross_white "2_26_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_061_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2092 2992 2492 fixation_cross gabor_088 gabor_056 gabor_170 gabor_117 gabor_088_alt gabor_056 gabor_170 gabor_117_alt "2_27_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2100_3000_2500_gabor_patch_orientation_088_056_170_117_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_170_framed gabor_circ blank blank blank blank fixation_cross_white "2_27_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_170_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2092 2992 2492 fixation_cross gabor_026 gabor_090 gabor_106 gabor_179 gabor_026_alt gabor_090 gabor_106_alt gabor_179 "2_28_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2100_3000_2500_gabor_patch_orientation_026_090_106_179_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_043_framed blank blank blank blank fixation_cross_white "2_28_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_043_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1942 2992 1892 fixation_cross gabor_138 gabor_094 gabor_024 gabor_004 gabor_138 gabor_094 gabor_024_alt gabor_004_alt "2_29_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1950_3000_1900_gabor_patch_orientation_138_094_024_004_target_position_1_2_retrieval_position_2" gabor_circ gabor_094_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_29_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_094_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2142 2992 2192 fixation_cross gabor_021 gabor_143 gabor_074 gabor_006 gabor_021_alt gabor_143 gabor_074_alt gabor_006 "2_30_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2150_3000_2200_gabor_patch_orientation_021_143_074_006_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_006_framed blank blank blank blank fixation_cross_white "2_30_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_006_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 1842 2992 2442 fixation_cross gabor_175 gabor_044 gabor_117 gabor_065 gabor_175 gabor_044_alt gabor_117 gabor_065_alt "2_31_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_1850_3000_2450_gabor_patch_orientation_175_044_117_065_target_position_1_3_retrieval_position_2" gabor_circ gabor_089_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_31_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_089_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1742 2992 1992 fixation_cross gabor_127 gabor_001 gabor_110 gabor_161 gabor_127 gabor_001_alt gabor_110 gabor_161_alt "2_32_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1750_3000_2000_gabor_patch_orientation_127_001_110_161_target_position_1_3_retrieval_position_1" gabor_127_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_32_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_127_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1892 2992 2242 fixation_cross gabor_117 gabor_033 gabor_164 gabor_141 gabor_117 gabor_033_alt gabor_164_alt gabor_141 "2_33_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1900_3000_2250_gabor_patch_orientation_117_033_164_141_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_141_framed blank blank blank blank fixation_cross_white "2_33_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_141_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2242 2992 2342 fixation_cross gabor_043 gabor_102 gabor_013 gabor_124 gabor_043 gabor_102 gabor_013_alt gabor_124_alt "2_34_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2250_3000_2350_gabor_patch_orientation_043_102_013_124_target_position_1_2_retrieval_position_1" gabor_043_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_34_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_043_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2042 2992 1992 fixation_cross gabor_086 gabor_164 gabor_137 gabor_107 gabor_086_alt gabor_164 gabor_137 gabor_107_alt "2_35_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2050_3000_2000_gabor_patch_orientation_086_164_137_107_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_001_framed gabor_circ blank blank blank blank fixation_cross_white "2_35_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_001_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1842 2992 2492 fixation_cross gabor_148 gabor_086 gabor_103 gabor_039 gabor_148 gabor_086_alt gabor_103_alt gabor_039 "2_36_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1850_3000_2500_gabor_patch_orientation_148_086_103_039_target_position_1_4_retrieval_position_1" gabor_148_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_36_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_148_retrieval_position_1" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2142 2992 2292 fixation_cross gabor_126 gabor_048 gabor_077 gabor_017 gabor_126 gabor_048_alt gabor_077_alt gabor_017 "2_37_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2150_3000_2300_gabor_patch_orientation_126_048_077_017_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_017_framed blank blank blank blank fixation_cross_white "2_37_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_017_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 2042 2992 1892 fixation_cross gabor_019 gabor_078 gabor_104 gabor_150 gabor_019 gabor_078_alt gabor_104_alt gabor_150 "2_38_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_2050_3000_1900_gabor_patch_orientation_019_078_104_150_target_position_1_4_retrieval_position_2" gabor_circ gabor_128_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_38_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_128_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2042 2992 2192 fixation_cross gabor_173 gabor_117 gabor_146 gabor_001 gabor_173_alt gabor_117 gabor_146 gabor_001_alt "2_39_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2050_3000_2200_gabor_patch_orientation_173_117_146_001_target_position_2_3_retrieval_position_2" gabor_circ gabor_067_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_39_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_067_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1892 2992 2092 fixation_cross gabor_167 gabor_149 gabor_125 gabor_093 gabor_167_alt gabor_149 gabor_125_alt gabor_093 "2_40_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_1900_3000_2100_gabor_patch_orientation_167_149_125_093_target_position_2_4_retrieval_position_3" gabor_circ gabor_circ gabor_125_framed gabor_circ blank blank blank blank fixation_cross_white "2_40_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_125_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1992 2992 1942 fixation_cross gabor_013 gabor_063 gabor_044 gabor_083 gabor_013 gabor_063_alt gabor_044_alt gabor_083 "2_41_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2000_3000_1950_gabor_patch_orientation_013_063_044_083_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_132_framed blank blank blank blank fixation_cross_white "2_41_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_132_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1992 2992 2542 fixation_cross gabor_095 gabor_044 gabor_076 gabor_132 gabor_095 gabor_044_alt gabor_076 gabor_132_alt "2_42_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2000_3000_2550_gabor_patch_orientation_095_044_076_132_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_026_framed gabor_circ blank blank blank blank fixation_cross_white "2_42_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_026_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1842 2992 1892 fixation_cross gabor_137 gabor_082 gabor_116 gabor_061 gabor_137 gabor_082_alt gabor_116_alt gabor_061 "2_43_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1850_3000_1900_gabor_patch_orientation_137_082_116_061_target_position_1_4_retrieval_position_1" gabor_001_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_43_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_001_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2092 2992 2092 fixation_cross gabor_091 gabor_022 gabor_062 gabor_180 gabor_091_alt gabor_022_alt gabor_062 gabor_180 "2_44_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2100_3000_2100_gabor_patch_orientation_091_022_062_180_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_133_framed blank blank blank blank fixation_cross_white "2_44_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_133_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1742 2992 2442 fixation_cross gabor_118 gabor_007 gabor_167 gabor_152 gabor_118_alt gabor_007 gabor_167_alt gabor_152 "2_45_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_1750_3000_2450_gabor_patch_orientation_118_007_167_152_target_position_2_4_retrieval_position_3" gabor_circ gabor_circ gabor_167_framed gabor_circ blank blank blank blank fixation_cross_white "2_45_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_167_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2192 2992 2042 fixation_cross gabor_014 gabor_083 gabor_142 gabor_034 gabor_014 gabor_083_alt gabor_142_alt gabor_034 "2_46_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2200_3000_2050_gabor_patch_orientation_014_083_142_034_target_position_1_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_171_framed blank blank blank blank fixation_cross_white "2_46_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_171_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1942 2992 2142 fixation_cross gabor_117 gabor_092 gabor_149 gabor_066 gabor_117_alt gabor_092 gabor_149 gabor_066_alt "2_47_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1950_3000_2150_gabor_patch_orientation_117_092_149_066_target_position_2_3_retrieval_position_3" gabor_circ gabor_circ gabor_149_framed gabor_circ blank blank blank blank fixation_cross_white "2_47_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_149_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2192 2992 2292 fixation_cross gabor_007 gabor_023 gabor_038 gabor_070 gabor_007 gabor_023_alt gabor_038 gabor_070_alt "2_48_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2200_3000_2300_gabor_patch_orientation_007_023_038_070_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_087_framed gabor_circ blank blank blank blank fixation_cross_white "2_48_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_087_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1742 2992 2142 fixation_cross gabor_147 gabor_097 gabor_033 gabor_121 gabor_147 gabor_097 gabor_033_alt gabor_121_alt "2_49_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_1750_3000_2150_gabor_patch_orientation_147_097_033_121_target_position_1_2_retrieval_position_3" gabor_circ gabor_circ gabor_033_framed gabor_circ blank blank blank blank fixation_cross_white "2_49_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_033_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1842 2992 2192 fixation_cross gabor_048 gabor_110 gabor_175 gabor_129 gabor_048 gabor_110_alt gabor_175 gabor_129_alt "2_50_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1850_3000_2200_gabor_patch_orientation_048_110_175_129_target_position_1_3_retrieval_position_1" gabor_002_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_50_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_002_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2092 2992 2392 fixation_cross gabor_021 gabor_095 gabor_134 gabor_045 gabor_021 gabor_095_alt gabor_134_alt gabor_045 "2_51_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2100_3000_2400_gabor_patch_orientation_021_095_134_045_target_position_1_4_retrieval_position_1" gabor_160_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_51_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_160_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2092 2992 2142 fixation_cross gabor_126 gabor_075 gabor_044 gabor_107 gabor_126 gabor_075_alt gabor_044 gabor_107_alt "2_52_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2100_3000_2150_gabor_patch_orientation_126_075_044_107_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_091_framed gabor_circ blank blank blank blank fixation_cross_white "2_52_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_091_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1892 2992 2542 fixation_cross gabor_145 gabor_077 gabor_166 gabor_058 gabor_145_alt gabor_077_alt gabor_166 gabor_058 "2_53_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1900_3000_2550_gabor_patch_orientation_145_077_166_058_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_008_framed blank blank blank blank fixation_cross_white "2_53_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_008_retrieval_position_4" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 64 292 292 399 125 1992 2992 2292 fixation_cross gabor_004 gabor_051 gabor_114 gabor_074 gabor_004 gabor_051_alt gabor_114 gabor_074_alt "2_54_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_300_300_399_2000_3000_2300_gabor_patch_orientation_004_051_114_074_target_position_1_3_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_074_framed blank blank blank blank fixation_cross_white "2_54_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_UncuedRetriev_retrieval_patch_orientation_074_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1792 2992 2392 fixation_cross gabor_169 gabor_015 gabor_128 gabor_149 gabor_169_alt gabor_015_alt gabor_128 gabor_149 "2_55_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1800_3000_2400_gabor_patch_orientation_169_015_128_149_target_position_3_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_149_framed blank blank blank blank fixation_cross_white "2_55_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_149_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1792 2992 2592 fixation_cross gabor_051 gabor_028 gabor_074 gabor_137 gabor_051 gabor_028 gabor_074_alt gabor_137_alt "2_56_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1800_3000_2600_gabor_patch_orientation_051_028_074_137_target_position_1_2_retrieval_position_1" gabor_003_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_56_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_003_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1942 2992 2292 fixation_cross gabor_069 gabor_130 gabor_043 gabor_148 gabor_069_alt gabor_130 gabor_043_alt gabor_148 "2_57_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1950_3000_2300_gabor_patch_orientation_069_130_043_148_target_position_2_4_retrieval_position_2" gabor_circ gabor_130_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_57_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_130_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1892 2992 2142 fixation_cross gabor_067 gabor_018 gabor_087 gabor_131 gabor_067 gabor_018_alt gabor_087 gabor_131_alt "2_58_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1900_3000_2150_gabor_patch_orientation_067_018_087_131_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_087_framed gabor_circ blank blank blank blank fixation_cross_white "2_58_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_087_retrieval_position_3" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2192 2992 1942 fixation_cross gabor_157 gabor_088 gabor_001 gabor_127 gabor_157 gabor_088 gabor_001_alt gabor_127_alt "2_59_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2200_3000_1950_gabor_patch_orientation_157_088_001_127_target_position_1_2_retrieval_position_2" gabor_circ gabor_038_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_59_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_038_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1892 2992 2592 fixation_cross gabor_162 gabor_009 gabor_135 gabor_178 gabor_162 gabor_009 gabor_135_alt gabor_178_alt "2_60_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1900_3000_2600_gabor_patch_orientation_162_009_135_178_target_position_1_2_retrieval_position_2" gabor_circ gabor_009_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_60_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_009_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 2192 2992 2242 fixation_cross gabor_063 gabor_128 gabor_178 gabor_105 gabor_063_alt gabor_128_alt gabor_178 gabor_105 "2_61_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_2200_3000_2250_gabor_patch_orientation_063_128_178_105_target_position_3_4_retrieval_position_1" gabor_018_framed gabor_circ gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_61_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_018_retrieval_position_1" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1842 2992 2342 fixation_cross gabor_051 gabor_029 gabor_013 gabor_103 gabor_051_alt gabor_029 gabor_013 gabor_103_alt "2_62_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1850_3000_2350_gabor_patch_orientation_051_029_013_103_target_position_2_3_retrieval_position_2" gabor_circ gabor_029_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_62_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_029_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 1792 2992 2242 fixation_cross gabor_029 gabor_140 gabor_102 gabor_074 gabor_029 gabor_140_alt gabor_102 gabor_074_alt "2_63_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_1800_3000_2250_gabor_patch_orientation_029_140_102_074_target_position_1_3_retrieval_position_3" gabor_circ gabor_circ gabor_055_framed gabor_circ blank blank blank blank fixation_cross_white "2_63_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_055_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1892 2992 2592 fixation_cross gabor_092 gabor_151 gabor_076 gabor_027 gabor_092_alt gabor_151 gabor_076 gabor_027_alt "2_64_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1900_3000_2600_gabor_patch_orientation_092_151_076_027_target_position_2_3_retrieval_position_2" gabor_circ gabor_151_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_64_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_151_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2242 2992 1992 fixation_cross gabor_045 gabor_092 gabor_030 gabor_014 gabor_045_alt gabor_092 gabor_030_alt gabor_014 "2_65_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2250_3000_2000_gabor_patch_orientation_045_092_030_014_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_014_framed blank blank blank blank fixation_cross_white "2_65_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_014_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 2142 2992 2342 fixation_cross gabor_119 gabor_137 gabor_152 gabor_094 gabor_119 gabor_137_alt gabor_152_alt gabor_094 "2_66_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_2150_3000_2350_gabor_patch_orientation_119_137_152_094_target_position_1_4_retrieval_position_3" gabor_circ gabor_circ gabor_012_framed gabor_circ blank blank blank blank fixation_cross_white "2_66_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_012_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 1742 2992 2392 fixation_cross gabor_001 gabor_113 gabor_165 gabor_043 gabor_001_alt gabor_113 gabor_165_alt gabor_043 "2_67_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_1750_3000_2400_gabor_patch_orientation_001_113_165_043_target_position_2_4_retrieval_position_4" gabor_circ gabor_circ gabor_circ gabor_043_framed blank blank blank blank fixation_cross_white "2_67_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_043_retrieval_position_4" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 61 292 292 399 125 2242 2992 2542 fixation_cross gabor_153 gabor_136 gabor_119 gabor_031 gabor_153_alt gabor_136 gabor_119 gabor_031_alt "2_68_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_300_300_399_2250_3000_2550_gabor_patch_orientation_153_136_119_031_target_position_2_3_retrieval_position_2" gabor_circ gabor_091_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_68_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_CuedRetrieval_retrieval_patch_orientation_091_retrieval_position_2" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 62 292 292 399 125 2242 2992 2492 fixation_cross gabor_046 gabor_135 gabor_064 gabor_007 gabor_046 gabor_135 gabor_064_alt gabor_007_alt "2_69_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_300_300_399_2250_3000_2500_gabor_patch_orientation_046_135_064_007_target_position_1_2_retrieval_position_2" gabor_circ gabor_135_framed gabor_circ gabor_circ blank blank blank blank fixation_cross_white "2_69_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_NoChange_CuedRetrieval_retrieval_patch_orientation_135_retrieval_position_2" 1 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
44 63 292 292 399 125 2242 2992 2342 fixation_cross gabor_016 gabor_166 gabor_085 gabor_149 gabor_016 gabor_166_alt gabor_085_alt gabor_149 "2_70_Encoding_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_300_300_399_2250_3000_2350_gabor_patch_orientation_016_166_085_149_target_position_1_4_retrieval_position_3" gabor_circ gabor_circ gabor_035_framed gabor_circ blank blank blank blank fixation_cross_white "2_70_Retrieval_Working_Memory_MEG_P5_LR_Nonsalient_DoChange_UncuedRetriev_retrieval_patch_orientation_035_retrieval_position_3" 2 58.69 58.69 -58.69 58.69 -58.69 -58.69 58.69 -58.69;
};
# baselinePost (at the end of the session)
trial {
picture {
box frame1; x=0; y=0;
box frame2; x=0; y=0;
box background; x=0; y=0;
bitmap fixation_cross_black; x=0; y=0;
};
time = 0;
duration = 5000;
code = "BaselinePost";
port_code = 92;
};
|
e755cc76bf967e705a1b58063145990df748edf7
|
4e7aac39f36916a964f4664f3198d7c87e762253
|
/scilab/make_combination_.sci
|
59df62d5b831a23ffd23bf2d367ee55a7f15db09
|
[] |
no_license
|
kirillin/manipulator_dynamics
|
349c01fd5aef8b42734edc497a7d48ee49aced9c
|
a773091ea5a62493b77885a0e2df6491282faa4c
|
refs/heads/master
| 2021-10-22T13:15:09.489858
| 2019-03-10T23:00:56
| 2019-03-10T23:00:56
| 108,987,774
| 1
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 465
|
sci
|
make_combination_.sci
|
global count flag
count = 0;
flag = %f;
function make_combination(n,m, num)
global count flag
pos = pos + 1
for i = num:n
if m == 1 then
count = count + 1;
flag = %t
printf("finish! %d\n", count)
else
make_combination(n, m-1, i+1);
if flag == %t then
return;
end
end
end
pos = pos - 1
endfunction
make_combination(54,54,1)
|
862864dbc6b1a6435f5137548e143b94cd92231d
|
e657bbadea88191ece0e48eb447173a4c5f816f6
|
/gradeOfEulersFunction.sci
|
8800022457b88454cc1229a2b2a0dec8f374c6d9
|
[] |
no_license
|
vainia/Learning-SCILAB
|
c37d6071907ea4fad811071a3164454a927602d8
|
d77877b1316b8b3546cb32cb9e29e7ad70d25280
|
refs/heads/master
| 2020-03-10T09:51:08.444686
| 2018-04-12T23:13:06
| 2018-04-12T23:13:06
| 129,320,183
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 139
|
sci
|
gradeOfEulersFunction.sci
|
for k=1:10
x(k)=k
e1(k)=euler(k)
e2(k)=0.5772156649
end
err=abs(e2-e1)
X=log(x)
Y=log(err)
[a,b]= methodOfLeastSquares(X,Y)
|
e3b852b11ad7e334b3c86ac0e5387f192900bf3a
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1511/CH1/EX1.2/ex1_2.sce
|
f029c24f812e6e0cdc3de2e0ad0395e0ec80327f
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 267
|
sce
|
ex1_2.sce
|
// Example 1.2 page no-9
clear
clc
e=1.6*10^-19//C
m=9.1*10^-31//kg
Vmax=1.5 //v
w=2*%pi*60*10^6//rad/sec
d=8*10^-3 //m
Max_Vel=2*e*Vmax/(m*d*w)
Max_Vel=ceil(Max_Vel*10^-3)
printf("The Maximum value of Velocity is, \n dx/dt=%.2f*10^5 m/sec",Max_Vel/100)
|
8b4c0a1a943c3c6fe73a6ba6e68ef8063dabdc2d
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2279/CH2/EX2.3/eg_2_3.sce
|
2168406b96f890e3a59c5e9087c0bdc7e626bac7
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 528
|
sce
|
eg_2_3.sce
|
//Example 2.3
clear
clc
clf
n=-20:1:20;
x=[zeros(1,19),1,1,2,3,4,0.5, zeros(1,16)];
subplot(3,1,1);
plot(n,x,".");
xtitle("x(n) vs n","n","x(n)");
subplot(3,1,2);
plot(n+3,x,'.');
xtitle("x(n-3) vs n","n","x(n-3)");
subplot(3,1,3);
plot(n-2,x,'.');
xtitle("x(n+2) vs n","n","x(n+2)");
figure(1)
subplot(3,1,1);
plot(-n,x,'.');
xtitle("x(-n) vs n","n","x(-n)");
subplot(3,1,2);
plot(-n+2,x,'.');
xtitle("x(-n+2) vs n","n","x(-n+2)");
subplot(3,1,3)
plot(-n-3,x,'.')
xtitle("x(-n-3) vs n","n","x(-n-3)");
|
1be935086203fe1bacb8473888720fd0154531b6
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1523/CH7/EX7.20/ex7_20.sce
|
77aac3a7d4f6b978603e75f3b664ceefef5d8f4d
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 905
|
sce
|
ex7_20.sce
|
//Graph Theory : example 7.20 :(pg 7.35 & 7.36)
printf("\nf-cutset1={1,4,5,6} \nf-cutset2={2,4,5} \nf-cutset3={3,4,6}");
Q=[1 0 0 -1 -1 1;0 1 0 -1 -1 0;0 0 1 -1 0 1];
printf("\nQ=");
disp(Q);
printf("\nThe KCL equation in matrix form is given by");
printf("\nQ.Yb.(Q^T).Vl=Q.Is-Q.Yb.Vs");
printf("\nQ.Yb.(Q^T).Vl=Q.Is");//Is=0
Yb=diag([0.2,0.2,0.2,0.1,0.5,0.1]);
Vs=[910;0;0;0;0;0];
Is=[0;0;0;0;0;0];
printf("\nYb=");
disp(Yb);
printf("\nVs=");
disp(Vs);
printf("\nIs=");
disp(Is);
x=(Q*Yb);
printf("\nQ.Yb=");
disp(x);
y=(x*Q');
printf("\nQ.Yb.(Q^T)=");
disp(y);
z=(x*Vs);
printf("\nQ.Yb.Vs=");
disp(z);
printf("\nQ.Is=");
u=(Q*Is);
disp(Q*Is);
v=(u-z);
printf("\nQ.Is-Q.Yb.Vs=");
disp(v);
printf("\nLoad voltages:");
M=[0.9 0.6 0.2;0.6 0.8 0.1;0.2 0.1 0.3];
P=inv(M);
N=[-182;0;0];
X=(P*N);
disp(X);
printf("\nvl1=-460 V \nvl2=320 V \nvl3=200 V");
|
23e6112dc806d8d349ef0421c143b71a641f7f1d
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1472/CH21/EX21.5/21_5.sce
|
1fa60522d34f11e4ffdc6141eeeef8f68ffdd52a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 273
|
sce
|
21_5.sce
|
clc
//initialization of varaibles
P1=5 //psia
P2=83.5 //psia
n=1.25
per=0.03
//calculations
nv1=1- per*((P2/P1)^(1/n) -1)
nv2=1-per*((sqrt(P2/P1))^(1/n) -1)
//results
printf("For single stage machine = %.3f",nv1)
printf("\n For Two stage machine = %.3f",nv2)
|
5190e3b65fc4e9d64287463fb0878c3002447149
|
8c802fb8c6a8dc8ed61222ce257eb61f580a462e
|
/projects/02/HalfAdder.tst
|
4a84ea36f768ec3f84431105fb16756ee759cfa8
|
[] |
no_license
|
radavis/nand2tetris
|
0703b55695378cd8ec279599a34114cbfba48ef7
|
021ba06dbbe203206b44360f162a0d64e2dc41f9
|
refs/heads/master
| 2021-01-01T20:05:37.036752
| 2015-05-16T19:13:31
| 2015-05-16T19:13:31
| 34,955,667
| 8
| 3
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 327
|
tst
|
HalfAdder.tst
|
// File name: projects/02/HalfAdder.tst
load HalfAdder.hdl,
output-file HalfAdder.out,
compare-to HalfAdder.cmp,
output-list a%B3.1.3 b%B3.1.3 sum%B3.1.3 carry%B3.1.3;
set a 0,
set b 0,
eval,
output;
set a 0,
set b 1,
eval,
output;
set a 1,
set b 0,
eval,
output;
set a 1,
set b 1,
eval,
output;
|
d4dcca426c29f43558a8fa6565466096be5c6d71
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3825/CH9/EX9.4/Ex9_4.sce
|
727a59e5f5691d06327d85653c0ce3ba3bab29f3
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,023
|
sce
|
Ex9_4.sce
|
clc
T1=300
P1=100 //pressure in kPa
ro=8 //=V1/V2
gama=1.4
T2=T1*ro^(gama-1)
mprintf("T2=%fK\n",T2)//ans vary due to roundoff error
P2=P1*ro^gama
mprintf("P2=%fkPa\n",P2)//ans vary due to roundoff error
deltau=1840
Cv=0.7176
T3=(deltau/Cv)+T2
mprintf("T3=%fK\n",T3)//ans vary due to roundoff error
P3=(P2*T3)/T2
mprintf("P3=%fkPa\n",P3)//ans vary due to roundoff error
a=1/8 //=V3/V4
T4=T3*a^(gama-1)
mprintf("T4=%fK\n",T4)//ans vary due to roundoff error
P4=P3*a^gama
mprintf("P4=%fkPa\n",P4)//ans vary due to roundoff error
Eta=1-(1/ro)^(gama-1)
mprintf("Thermal efficiency=%f\n",Eta)//ans vary due to roundoff error
q1=deltau
mprintf("Work done=%fkJ/kg\n",q1*Eta)//ans vary due to roundoff error
N=1
R=8.314*10^3
P1=28.97 //pressure in bar
V1=(N*R*T1)/(P1*10^5)
mprintf("V1=%fmetre-cube/kg\n",V1)//ans vary due to roundoff error
V2=V1/ro
mprintf("V2=%fmetre-cube/kg\n",V2)//ans vary due to roundoff error
Pm=(q1*Eta)/(V1-V2)
mprintf("Pm=%fkPa",Pm)//ans vary due to roundoff error
|
435ab57c2f524c7c67d862604d2d87fe826ddfd3
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/380/CH1/EX1.4/ex1_4.sce
|
ca08efb71700a64ea18a3c5b858bf9aecb3e6abe
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 2,486
|
sce
|
ex1_4.sce
|
//Caption:Determine the line current and phase currents,power absorbed by the load and power dessipated by transmission line
//Ex no:1.4
clc;
clear;
close;
//Make delta -star conversion of load
Z_L=1+%i*2;//Impedance of each wire (in Ohms)
Z_p=(177-%i*246);//per-phase impedance (in Ohms)
Z_pY=(177-%i*246)/3;//per-phase impedance in Y-connection (in Ohms)
Z=Z_L+Z_pY;//Total per phase impedance (in Ohms)
V=866/sqrt(3);//Per-phase voltage (in Volts)
V_phase=0;
I=V/Z;//Current in the circuit (in Ampere)
r=real(I);
i=imag(I);
I_mag=sqrt((r^2)+(i^2));//magnitude of current (in Amperes)
I_phase=atand(i/r);//phase of current (in Degrees)
pf=cosd(I_phase);//power factor
//Refer to fig:1.13(b)
//Source are connected in star,so phase currents = line currents
I_na_mag=I_mag;//Magnitude of Source current through n-a (in Amperes)
I_nb_mag=I_mag;//Magnitude of Source current through n-b (in Amperes)
I_nc_mag=I_mag;//Magnitude of Source current through n-c (in Amperes)
I_na_phase=I_phase+(0);//phase angle of current through n-a (in Degree)
I_nb_phase=I_phase+(-120);//phase angle of current through n-b (in Degree)
I_nc_phase=I_phase+(120);//phase angle of current through n-c (in Degree)
disp(I_na_mag,'I_na_mag (in Amperes)=');
disp(I_na_phase,'I_na_phase (in Degrees)=');
disp(I_nb_mag,'I_nb_mag (in Amperes)=');
disp(I_nb_phase,'I_nb_phase (in Degrees)=');
disp(I_nc_mag,'I_nc_mag (in Amperes)=');
disp(I_nc_phase,'I_nc_phase (in Degrees)=');
//Load is connected in delta network
I_AB_mag=I_mag/sqrt(3);//magnitude of current through AB (in Amperes)
I_BC_mag=I_mag/sqrt(3);//magnitude of current through BC (in Amperes)
I_CA_mag=I_mag/sqrt(3);//magnitude of current through CA (in Amperes)
I_AB_phase=I_na_phase+30;//phase angle of current through AB (in Degrees)
I_BC_phase=I_nb_phase+30;//phase angle of current through BC (in Degrees)
I_CA_phase=I_nb_phase-90;//phase angle of current through CA (in Degrees)
disp(I_AB_mag,'I_AB_mag (in Amperes)=');
disp(I_AB_phase,'I_AB_phase (in Degrees)=');
disp(I_BC_mag,'I_BC_mag (in Amperes)=');
disp(I_BC_phase,'I_BC_phase (in Degrees)=');
disp(I_CA_mag,'I_CA_mag (in Amperes)=');
disp(I_CA_phase,'I_CA_phase (in Degrees)=');
I_AB=I_AB_mag*(cosd(I_AB_phase)+%i*sind(I_AB_phase));//(in Amperes)
P_load=3*I_AB_mag^2*real(Z_p);//in watts
disp(real (P_load),'Power dissipated (in Watts)=');
P_line=3*I_mag^2*real(Z_L);//in watts
disp(P_line,'Power dissipated by transmission line (in Watts)=')
|
f7a672dc95d6d329e0f054592a075abd2f998ac5
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/22/CH4/EX4.11/ch4ex11.sce
|
d331bc68a94caaa27b9c479a0dcba251f85c91f1
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 254
|
sce
|
ch4ex11.sce
|
//signals and systems
//Unilateral Laplace Transform:Solving Differential Equation
//example 4.11
s = %s;
syms t;
[A] = pfss((2*s)/(s^2+2*s+5));
F1 = ilaplace(A(1),s,t)
//F2 = ilaplace(A(2),s,t)
//F3 = ilaplace(A(3),s,t)
F = F1+F2+F3
disp(F)
|
27df9d67dff8a34e13e6e841f1e203344b98fd0a
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2015/CH9/EX9.3/9_3.sce
|
9cf6e611641f2c3b537f8cc617d34bc032e4147a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 698
|
sce
|
9_3.sce
|
clc
//initialisation of variables
p2=3.24 //pressure in bar
p1=1 //pressure in bar
v1=16 //volume in m*m*m
n=1.35
rp=3.24 //pressure
r=10.5
t1=294 //temparature in k
t2=294 //temparature in k
cp=1.005 //kj/kg
rx=0.287
//CALCULATIONS
w1=(2*n/(n-1))*p1*v1*100*0.35630 //(3.24)^0.2592-1
w2=(n/(n-1))*p1*v1*100*0.8396 //(10.5)^0.2592-1
pr1=w1/60
pr2=w2/60
tb=t1*(r)^(n-1/n)
t3=t2*(rp)^((n-1)/n)
m=(p1*v1*100)/(rx*t1)
hr=m*cp*(t3-t2)
ma=hr/(4.18*25)
//RESULTS
printf('minimum power required are %2fkw and %2fkw',pr1,pr2)
printf('\nmass of air compressed is %2fkg/min',m)
printf('\nheat rejected by air compressor is %2fkj/min',hr)
printf('\nmass of water is %2fkg/min',ma)
|
b316251b45d3f1b2c4bc882dee8e5caaaa4fefc1
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1955/CH4/EX4.1/example1.sce
|
daaaedbdfcbe46fd3e4d41f7725d9025e266b43a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,321
|
sce
|
example1.sce
|
clc
clear
//input data
b1=60//The angle made by the relative velocity vector at exit in degree
db=30//The turning angle in degree
dCx=100//The change in the tangential velocities in m/s
DR=0.5//Degree of reaction
N=36000//The speed of the compressor in rpm
D=0.14//Mean blade diameter in m
P1=2//Inlet pressure in bar
T1=330//Inlet temperature in K
b=0.02//Blade height in m
R=287//The universal gas constant in J/kg.K
Cp=1.005//The specific heat of air at constant pressure in kJ/kg.K
r=1.4//The ratio of specific heats of air
//calculations
b2=b1-db//The angle made by the relative velocity vector at entry in degree
a1=b2//Air flow angle at exit in degree as DR=0.5
U=(3.1415*D*N)/60//The blade mean speed in m/s
T2=((U*dCx)/(Cp*1000))+T1//The exit air temperature in K
P2=P1*(T2/T1)^(r/(r-1))//The exit air pressure in bar
dP=P2-P1//The pressure rise in bar
Ca=(2*U*DR)/(tand(b2)+tand(b1))//The axial velocity in m/s
A1=3.1415*D*b//The inlet flow area in m^2
d1=(P1*10^5)/(R*T1)//The inlet air density in kg/m^3
m=d1*A1*Ca//The amount of air handled in kg/s
W=m*Cp*(T2-T1)//The power developed in kW
//output
printf('(a)Air flow angle at exit is %3i degree\n(b)The pressure rise is %3.2f bar\n(c)The amount of air handled is %3.2f kg/s\n(d)The power developed is %3.1f kW',a1,dP,m,W)
|
78c2a18f9200a621e3f3ff643a53cc23759512b2
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3250/CH3/EX3.8/Ex3_8.sce
|
16904a7750a3b8598422358770f0d9ac14b95652
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 743
|
sce
|
Ex3_8.sce
|
clc
// Given that
Ri = 30 // Inside radius of cup in mm
t = 3 // Thickness in mm
Rb = 40 // Radius of the blank in mm
K = 210 // Shear yield stress of the material in N/mm^2
Y = 600 // Maximum allowable stress in N/mm^2
Beta = 0.05
mu = 0.1// Cofficient of friction between the job and the dies
// Sample Problem 8 on page no. 130
printf("\n # PROBLEM 3.8 # \n")
Fh = Beta*%pi*(Rb^2)*K
Y_r = (mu*Fh/(%pi*Rb*t))+(2*K*log(Rb/Ri))
Y_z = Y_r*exp(mu*%pi/2)
F = 2*%pi*Ri*t*Y_z
Y_r_ = Y/exp(mu*%pi/2)
Rp = (Rb/exp((Y_r_/(2*K)) - ((mu*Fh)/(2*%pi*K*Rb*t))))-t
printf("\n Drawing force = %d N, \n Minimum passible radius of the cup which can drawn from the given blank without causing a fracture = %f mm",F,Rp)
// Answer in the book given as 62680 N
|
90a714b76087875842cf27a5c85c5282065fd843
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/767/CH4/EX4.5.1/Ch04Exa4_5_1.sci
|
249edb0907f991293aca25c6d62ead4389e0a616
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 426
|
sci
|
Ch04Exa4_5_1.sci
|
// Scilab code Exa4.5.1: To calculate Q-value for given reaction : Page 182 (2011)
M_n = 1.00866501; // Mass of neutron, amu
M_Hp = 2.014102; // Mass of proton, amu
M_Hd = 3.016049; // Mass of deutron, amu
M_He = 4.002603; // Mass of alpha particle, amu
Q = [M_Hp+M_Hd-M_He-M_n]*931.49; // Q-value, MeV
printf("\nThe Q-value for the reaction : %4.1f MeV", Q)
// Result
// The Q-value for the reaction : 17.6 MeV
|
35fa3e90a37c9664a47bf3ea3a22ae061e7a38f2
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/32/CH4/EX4.13/4_13.sce
|
965fb3b180a456d21556dfd20e12f083e3cfbc6d
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 698
|
sce
|
4_13.sce
|
//pathname=get_absolute_file_path('4.13.sce')
//filename=pathname+filesep()+'4.13-data.sci'
//exec(filename)
//Temperature of the reservoir(in K):
T3=3+273
//Lower temperature limit(in K):
T1=77+273
//Higher temperature limit(in K):
T2=1077+273
//Energy supplied to the reservoir(in kJ/s):
E=100
//Efficiency:
n=1-T1/T2
//Energy taken from the reservoir Q1 can be found by solving the simultaneous equations
//n=1-Q2/Q1
//We get Q2=0.2593*Q1
//COP for heat pump = Q4/(Q4-Q3) = T1/(T1-T3)
//We get Q4=1.27*Q3
//It is given that Q2+Q4=E
//Solving all the equations, we get:
Q1=26.71
printf("\nRESULT\n")
printf("\nEnergy taken from reservoir at 1077 degree celcius = %f kJ",Q1)
|
84b8781ae1f10c0fdf442fb208a5f132605d8f94
|
a62e0da056102916ac0fe63d8475e3c4114f86b1
|
/set7/s_Electronic_Devices_T._L._Floyd_61.zip/Electronic_Devices_T._L._Floyd_61/CH10/EX10.16/ex10_16.sce
|
61d65d839f13d0fe5dcc35a8b2f8074c68f500d5
|
[] |
no_license
|
hohiroki/Scilab_TBC
|
cb11e171e47a6cf15dad6594726c14443b23d512
|
98e421ab71b2e8be0c70d67cca3ecb53eeef1df6
|
refs/heads/master
| 2021-01-18T02:07:29.200029
| 2016-04-29T07:01:39
| 2016-04-29T07:01:39
| null | 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 137
|
sce
|
ex10_16.sce
|
errcatch(-1,"stop");mode(2);//ex10.16;
f_T=175*10^6; //in hertz
A_v_mid=50;
BW=f_T/A_v_mid;
disp(BW,'bandwidth in hertz')
exit();
|
00be5f6966d4fd70989af6c71660cd9c106fefc8
|
27fecbbeb6c49dcf03b9bddf1b867c31e13a3825
|
/Modelagem e controle/T2_controle.sce
|
ca47cfd4df9ddf2ac0d28a052a7e1cb42a5e98b5
|
[] |
no_license
|
LucasHattoriCosta/Poli
|
42c9fc2d34c31e01336265fbdac3e4921d56e096
|
b1ac609c3675539b4e921909c35ea196ffc44df3
|
refs/heads/master
| 2023-03-15T12:22:03.745943
| 2020-06-29T17:32:48
| 2020-06-29T17:32:48
| null | 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 973
|
sce
|
T2_controle.sce
|
// T2
t = 0:0.01:10
s = %s
// G(F,x)
num_1 = 0.1573 * s^4 - 3.438*10^-5*s^3 + 9.259*s^2 - 0.0006746*s+116.8
// F(T1, theta1)
num_2 = 2.292*s^4 + 0.0005447*s^3 + 78.36*s^2 + 0.05651*s
// F(T2, theta2)
num_3 = 7.281*s^4 + 0.01002*s^3 + 238.1*s^2 + 0.1695*s
den = s^4 + 3*s^3 + 12*s^2 - 16*s
clear()
// Parametros do sistema
b = 7.12e-3
m = 2
M = 6
g = 9.81
L = 0.5
c = 8.5e-5
dt = 0.1
// Espaco de estados
A_til = [
[0 1 0 0 0 0],
[0 -b*L 0 0 0 0],
[0 0 0 1 0 0],
[0 0 -3*m*g*L/2 -c -m*g*L/2 0],
[0 0 0 0 0 1],
[0 0 0 c -m*g*L/2 -c]
]
B_til = [
[0 0 0 0 0 0],
[L 0 0 0 0 0],
[0 0 0 0 0 0],
[0 1 0 0 0 0],
[0 0 0 0 0 0],
[0 0 1 0 0 0]
]
M = [
[1 0 0 0 0 0],
[0 (2*m+M)*L 0 3*m*L^2/2 0 m*L^2/2],
[0 0 1 0 0 0],
[0 2*m*L 0 2*m*L^2/2 0 2*m*L^2/3],
[0 0 0 0 1 0],
[0 m*L/2 0 m*L^2/6 0 m*L^2/3]
]
A = M' * A_til
B = M' * B_til
C = eye(6,6)
//D = zeros(6,6)
ee = syslin('c',A,B,C)
disp(ss2tf(ee))
|
1b84ec2c90614501b635002302f32f08ced88bc1
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1106/CH1/EX1.1/ex1_1.sce
|
39410512c4ce589ad732561070ee328a5e4e8183
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 191
|
sce
|
ex1_1.sce
|
// Example 1.1, page no-23
clear
clc
Rs=200
R=5000
luponw= R/Rs
printf('L upon W =%d', luponw)
printf("\n5kohm resistor can be fabricated by using a pattern of %d mil*1mil",luponw)
|
3ab477316ce3e7d7c3cff0820f975f60fa6b1991
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3888/CH11/EX11.4/Ex11_4.sce
|
e8c9538ba084c886e4ee710cca9a189427b49ba0
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 3,624
|
sce
|
Ex11_4.sce
|
//Electric Power Generation, Transmission and Distribution by S.N.Singh
//Publisher:PHI Learning Private Limited
//Year: 2012 ; Edition - 2
//Example 11.4
//Scilab Version : 6.0.0 ; OS : Windows
clc;
clear;
f=50; //Supply frequency in Hz
l=450; //Length of the line in km
V=400; //Supply voltage in kV
R=0.033; //Resistance of the line in Ohm/km
L=1.067; //Inductance of the line in mH/km
C=0.0109; //Capacitance of the line in microFarad/km
P=420; //Power in MW
pf=0.95; //Power factor
Z=R+%i*(2*%pi*f*L*10^(-3)); //Impedance of the line in Ohm/km
Y=%i*(2*%pi*f*C); //Admittance of the line in mho/km
Zc=((Z/Y)^(1/2))*10^(3); //Characteristic impedance of the line in Ohm/km
pro_const=(Z*Y)^(1/2); //Propagation constant of the line
angle=pro_const*l*10^(-3);
s=sinh(angle); //Sinusoidal angle
c=cosh(angle); //Cosine angle
Ir=P*10^(6)/((3)^(1/2)*V*10^(3)*pf); //Magnitude of receiving end current in A
Ir1=(Ir*(cosd(-acosd(pf))+%i*sind(-acosd(pf))))*10^(-3); //Receiving end current including power factor angle
Vr=V/(3)^(1/2); //Receiving end phase voltage in kV
Vs=Vr*c+(Zc*Ir1*s); //Sending end voltage in kV
llv=abs(Vs)*sqrt(3); //Line to line voltage in kV
Is=((Vr*10^(3)/Zc)*s)+(Ir1*c); //Sending end current in A
pfs=cosd(atan(imag(Vs),real(Vs))-atan(imag(Is),real(Is))); //Sending end power factor
delta=atand(imag(Vs),real(Vs)); //Load angle in degree
A=cosh(angle); //Parameter of voltage and current eqn in degree
B=Zc*sinh(angle); //Parameter of voltage and current eqn in Ohm
C=sinh(angle)/Zc; //Parameter of voltage and current eqn in mho
D=A; //Parameter of voltage and current eqn in degree
reg=(((abs(Vs)/abs(A))-Vr)/Vr)*100; //Regulation of the line
inp_pow=(3*abs(Vs)*abs(Is)*pfs)*10^(-3); //Input power in MW
eff=(P/inp_pow)*100; //Efficiency of the line
printf("\nVoltage at sending end of the line is %.2f kV",Vs);
printf("\nCurrent at sending end of the line is %.2f A",abs(Is));
printf("\nSending end powerfactor and Load angle of the line is %.4f and %.2f",pfs,delta);
printf("\nABCD parameters of the line is %.3f and %.2f ohm and %.3e mho and %.3f ",A,abs(B),abs(C),D);
printf("\nRegulation of the line is %.1f percentage",reg);
printf("\nEfficiency of the line is %.2f percentage",eff);
//Variation present in result due to wrong substitution in Vs
|
bb39c0dd61c366b6de577f8f704667853012ab85
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1913/CH6/EX6.3/ex3.sce
|
adbd808d0ebacb527740dea378449d0606f4ee8d
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,287
|
sce
|
ex3.sce
|
clc
clear
//Input data
L=0.012;//Wall thickness of a mild steel tank in m
t1=100;//Temperature of water in tank in degree centigrade
t4=20;//Atmospheric temperature of air in degree centigrade
K=50;//Thermal conductivity of mild steel in W/m-K
hi=2850;//Convection heat transfer coefficient on water side in W/m^2-K
ho=10;//Convection heat transfer coefficient on air side in W/m^2-K
Q1=60;//Heat trasfer from the incandicent lamp in W
s=5.67*10^-8;//Stefan boltzmann constant in W/m^2/K^4
T1=2500;//Lamp surface temperature in K
T2=300;//Room temperature in K
A=1;//Assuming area in m^2
//Calculations
T=t1-t4;//Temperature difference in degree centigrade
Q=(T)/((1/hi)+(L/K)+(1/ho));//Rate of heat loss per m^2 area of surface of tank in W
t3=(Q/(ho*A))+(t4);//Temperature of the outside surface in degree centigrade
U=(Q)/(A*T);//Overall Heat transfer coefficient in W/m^2/K
a=(Q1)/(s*(T1^4-T2^4));//surface area of the coil in m^2
a1=a*10^6;//Surface area of the coil in mm^2
//Output
printf('(a) The rate of heat loss per sq m area of the tank Q = %3.2f W \n (b) Overall heat transfer coefficient U = %3.2f W/m^2/K \n (c) Temperature of the outside surface of tank t3 = %3.2f degree centigrade \n (d)The surface area of the coil is %3.3f mm^2',Q,U,t3,a1)
|
366b0511d19ab88091f7701a30e66a8e06caee72
|
564beb66e232557765505973f93cc322a394133a
|
/KONA/scilab/lusolver_no_pivot.sci
|
cae8a4ba64dad857f40ef49c8ecde5f8efd3941f
|
[] |
no_license
|
KeithEvanSchubert/Keith_On
|
2442bb74b9d531c96d9f10da8df1dede54423094
|
fe8dd1e90e695957346aa176b7e0d0fea30171e3
|
refs/heads/master
| 2021-01-18T22:08:18.862471
| 2019-09-04T17:39:58
| 2019-09-04T17:39:58
| 51,767,267
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 672
|
sci
|
lusolver_no_pivot.sci
|
function [u,linvb]=lusoler_no_pivot(A,b)
[m,n]=size(A);
l=eye(m,m);
u=A;
linvb=b
for colPivot=1:n
// pivot is on main diagonal (row=col)
rowPivot=colPivot;
// make sure the pivot isn't zero, as
// we must divide by it
if u(rowPivot,colPivot)==0 then
break;
end
// calculate the next col of l
for row=rowPivot+1:n
l(row,colPivot)=u(row,colPivot)/u(rowPivot,colPivot);
end
// update u
for row=rowPivot+1:n
u(row,colPivot)=0;
for col=colPivot+1:n
update=l(row,colPivot)*u(rowPivot,col)
u(row,col)=u(row,col)-update;
end
update=l(row,colPivot)*linvb(rowPivot);
linvb(row)=linvb(row)-update;
end
end
endfunction
|
faa27e03dfa8afabbfec6d4103abf31241c60be4
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2534/CH2/EX2.15/Ex2_15.sce
|
046c4b2d1002fc860e3bdf5be8e4302345522a1a
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 309
|
sce
|
Ex2_15.sce
|
//Ex2_15
clc
flux1 = 100*10^-6
flux2 = 50*10^-6
flux12 = flux1 - flux2
disp("flux1 = "+string(flux1)+"Wb")//flux of coil 1
disp("flux2 = "+string(flux2)+"Wb")//flux of coil 2
disp("K = flux linkage between coil 1 and coil 2/flux of coil 1")//coefficient of coupling
disp(" = "+string(flux12/flux1))
|
c316eed657e0c056269c899f057abf40a90920a2
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2153/CH9/EX9.2/ex_9_2.sce
|
ee20bcedec761301a948d7f664524a03a892cd9c
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 248
|
sce
|
ex_9_2.sce
|
//Example 9.2 : the fracture strength and compare
clc;
clear;
close;
format('v',10)
//given data :
E=70*10^9; // in N/m^2
C=(4.2*10^-6)/2;// in m
gama=1.1; // in J/m^2
sigma=sqrt((2*E*gama)/(%pi*C));
disp(sigma,"fracture strength,sigma(N/m^2) = ")
|
f7c01eac65665551403eb2d34308539a165daac7
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1439/CH23/EX23.2/23_2.sce
|
8c2483f07f7ee16bf7e73016cfccc9e6edcc59c6
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 306
|
sce
|
23_2.sce
|
clc
//initialisation of variables
h= 6.62*10^-27 //ergs/sec
c= 3*10^10 //cm/sec
wl= 4358 //A
I= 14000 //ergs sec^-1
p= 80.1 //percent
t= 1105 //sec
n= 0.075 //millimole
//CALCULATIONS
E= h*c/(wl*10^-8)
q= I*p*t/(100*E)
M= 6*10^23*n*10^-3
P= M/q
//RESULTS
printf ('quantum yield = %.1f ',P)
|
d74960841c519abae144b65eb1af781018e4b53e
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2411/CH1/EX1.5/Ex1_5.sce
|
e66a2cbbf6a76927ef88476fc1e2baf6fd642b93
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 597
|
sce
|
Ex1_5.sce
|
// Scilab Code Ex1.5: Page-11 (2008)
clc; clear;
m1 = 2; // Mass of first body, kg
m2 = 1; // Mass of second body, kg
F = 3; // The horizontal force applied to the mass m1, N
F_prime = m2/(m1 + m2)*F; // Force of contact between m1 and m2, N
printf("\nThe force of contact between m1 and m2 = %3.1f N", F_prime);
F_prime = m1/(m1 + m2)*F; // Force of contact when F is applied to m2, N
printf("\nThe force of contact when F is applied to m2 = %3.1f N", F_prime);
// Result
// The force of contact between m1 and m2 = 1.0 N
// The force of contact when F is applied to m2 = 2.0 N
|
f6db50cd3b6712abfc716e5592037a71798cade3
|
bc4afd13b6991b1fc667832b7e1bf237ad99428a
|
/exercicio29-04/ex9.sce
|
d228e73dfded26da9b3eb3d79d44d98f92859839
|
[] |
no_license
|
furiossam/Scilab
|
9cadd58c451431c44294d79d4d74f03e0601e56d
|
c4837aa23cfae7d791b3e8bc947b2df007355df2
|
refs/heads/master
| 2021-01-20T08:29:26.345689
| 2017-05-03T13:52:01
| 2017-05-03T13:52:01
| 90,151,705
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 395
|
sce
|
ex9.sce
|
matriz1=zeros(4,4)
disp("Digite a primeira matriz:")
for i=1 :1:4
for j=1:1:4
matriz1(i,j)=input("Digite o elemento ")
disp("Lido com sucesso")
end
end
matriz2=zeros(4,4)
disp("Digite a segunda matriz")
for i=1 :1:4
for j=1:1:4
matriz2(i,j)=input("Digite o elemento ")
disp("Lido com sucesso")
end
end
soma=matriz1+matriz2
disp(soma)
|
45ac301c3917b372443272562eabd6c9753dd639
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/842/CH5/EX5.5/Example5_5.sce
|
e9ee44b328e9db2f8c29a34ec3bc432f091904e4
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 414
|
sce
|
Example5_5.sce
|
//clear//
//Example5.5:Discrete Time Fourier Transform:x[n]= cos(nWo)
clear;
clc;
close;
N = 5;
Wo = 2*%pi/N;
W = [-Wo,0,Wo];
XW =[%pi,0,%pi];
//
figure
a = gca();
a.y_location ="origin";
a.x_location ="origin";
plot2d3('gnn',W,XW,2);
poly1 = a.children(1).children(1);
poly1.thickness = 3;
xlabel(' W');
title('DTFT of cos(nWo)')
disp(Wo)
|
49a335e175553aa10a7bd42b448ee4310ed6e248
|
b9c6de66a61d6f9a57edaa44baf92266ccbab3db
|
/macros/distfun_binoinv.sci
|
05d92b95395c426242750dd3bec225d81aff07c9
|
[] |
no_license
|
papriwalprateek/distfun-scilab
|
81b3edef0af1d1908e05472dfb15b0a55f61571d
|
82fd34521d1e6ebb6513773264b54a0d48f5f3f9
|
refs/heads/master
| 2016-09-03T07:08:47.605240
| 2013-10-13T05:53:43
| 2013-10-13T05:53:43
| null | 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 3,344
|
sci
|
distfun_binoinv.sci
|
// Copyright (C) 2012 - Prateek Papriwal
//
// This file must be used under the terms of the CeCILL.
// This source file is licensed as described in the file COPYING, which
// you should have received as part of this distribution. The terms
// are also available at
// http://www.cecill.info/licences/Licence_CeCILL_V2-en.txt
//
function x = distfun_binoinv(varargin)
// Binomial Inverse CDF
//
// Calling Sequence
// x = distfun_binoinv(p,N,pr)
// x = distfun_binoinv(p,N,pr,lowertail)
//
//Parameters
// p : a nxm matrix of doubles, the probability.
// N : a 1x1 or nxm matrix of doubles , the total number of binomial trials . N belongs to the set {1,2,3,4,.......}
// pr : a 1x1 or nxm matrix of doubles, the probability of success in a Bernoulli trial
// lowertail : a 1x1 matrix of booleans, the tail (default lowertail=%t). If lowertail is true (the default), then considers P(X<=x) otherwise P(X>x).
// x : a 1x1 or nxm matrix of doubles, the number of Bernoulli trials after in which success occurs . x belongs to the set {0,1,2,3,...,N}
//
// Description
// Computes the Inverse cumulative distribution function of
// the Binomial distribution function.
//
// Any scalar input argument is expanded to a matrix of doubles
// of the same size as the other input arguments.
//
//Examples
//
// // Check with all arguments scalar
// x = distfun_binoinv(0.21,162,0.5)
// expected = 76
//
// // check with p expanded
// x = distfun_binoinv([0.05 0.95],162,0.5)
// expected = [71 91]
//
// // Check with N expanded
// x = distfun_binoinv(0.05,[100 162],0.5)
// expected = [42 71]
//
// // Check with expanded pr
// x = distfun_binoinv(0.05,162,[0.2 0.5])
// expected = [24 71]
//
// //Check with all arguments expanded
// x = distfun_binoinv([0.05 0.95],[100 162],[0.2 0.5])
// expected = [14 91]
//
// Bibliography
// http://en.wikipedia.org/wiki/Binomial_distribution
//
// Authors
// Copyright (C) 2012 - Prateek Papriwal
[lhs,rhs] = argn()
apifun_checkrhs("distfun_binoinv",rhs,3:4)
apifun_checklhs("distfun_binoinv",lhs,0:1)
p = varargin(1)
N = varargin(2)
pr = varargin(3)
lowertail = apifun_argindefault(varargin,4,%t)
//
// Check type
apifun_checktype("distfun_binoinv",p,"p",1,"constant")
apifun_checktype("distfun_binoinv",N,"N",2,"constant")
apifun_checktype("distfun_binoinv",pr,"pr",3,"constant")
apifun_checktype("distfun_binoinv",lowertail,"lowertail",4,"boolean")
//
// Check size
apifun_checkscalar("distfun_binoinv",lowertail,"lowertail",4)
//
// Check Content
apifun_checkrange("distfun_binoinv",p,"p",1,0,1)
apifun_checkgreq("distfun_binoinv",N,"N",2,1)
apifun_checkflint("distfun_binoinv",N,"N",2)
apifun_checkrange("distfun_binoinv",pr,"pr",3,0,1)
[p,N,pr] = apifun_expandvar(p,N,pr)
if(p == []) then
x = []
return
end
if(lowertail) then
x = ceil(distfun_invcdfbin(N,pr,1-pr,p,1-p))
else
x = floor(distfun_invcdfbin(N,pr,1-pr,1-p,p))
end
endfunction
|
a55708e0c5ee8671ccf49ee1863ce4b7d7a377d3
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2102/CH4/EX4.14/exa_4_14.sce
|
b849b079d0bd0085a999981566c1661c3ef01ffc
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 208
|
sce
|
exa_4_14.sce
|
// Exa 4.14
clc;
clear;
close;
// Given data
lamda= 800;// in nm
EpIn_eV= 1248/lamda;// in eV
h_int= 5/100;
I=50;// in mA
P= h_int*EpIn_eV*I;// in mW
disp(P,"Power radiated by an LED in mW is : ")
|
4ba26f28dbee40e24e2597f8bf0d0dda5e755f81
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2006/CH8/EX8.6/ex8_6.sce
|
dc1562d12e41bfd91b512c43e687cad73e9c22e8
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 745
|
sce
|
ex8_6.sce
|
clc;
ps=6.89+1; // Pressure of steam produced in bar (Absolute)
x=0.96; // Quality of steam produced
f=75; // Steady flow of water in litres
t=9.5; // Time consumption of water in minutes
tf=685; //Time consumption of 10 litre fuel in seconds
Vf=10; // consumption of fuel in litres
Sf=0.85; // specific gravity of water
CV=43125; // Calorific value of fuel in kJ/kg
ms=f/(t*60);// Steam generation
mf=Vf*Sf/tf; // consumption of fuel
// From steam tables at ps
hf=718.5; hfg=2050; // specific enthalpy in kJ/kg
hs=hf+x*hfg; // specific enthalpy of steam produced
hFW=146.7; // Enthalpy of feed water at 35 degree celcius
eff_boiler=(ms*(hs-hFW))/(mf*CV); // Boiler Efficiency
disp ("%",eff_boiler*100,"Boiler Efficiency = ");
|
7fb86cb12a8051b45d111e2f1ea65bbb03a72742
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/869/CH15/EX15.3/15_3.sce
|
a1ebdd6356b8b870e8c4f74f360cca7bebf52567
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 379
|
sce
|
15_3.sce
|
clc
//initialisation of variables
d= 3/8 //in
d1= 1/8 //in
y= 1 //in
T= 15000 //psi
sigmab= 32000 //psi
sigmat= 18000 //psi
//CALCULATIONS
Ps= %pi*T*(d/2)^2
Pt= sigmat*d1*(y-d)
Pb= sigmab*d1*d
Pmin=Ps
sigma=T
if(Pt<Pmin)
Pmin=Pt
sigma=sigmat
else
Pmin=Pb
sigma=sigmab
end
e= Pmin*100/(sigma*d1*y)
//RESULTS
printf ('e= %.2f per cent',e)
|
b110f3928624f46d41261c088bbaa4259410ddca
|
70882f8f71a98cdb0e190c773094ea9547a339e8
|
/Codigo/Relacao2a2.sci
|
89778d00e32e096ad860f165d7b4ee09b244e59d
|
[] |
no_license
|
joycebrum/Calculo-numerico-projeto
|
6e6efb9375bc5cfd45df2aedb35c59f4e431c6ee
|
3402d8d1f79738400e57b2b93ec92214e7a3531e
|
refs/heads/master
| 2021-08-19T14:55:33.670571
| 2017-11-26T19:31:59
| 2017-11-26T19:31:59
| 111,951,685
| 1
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,701
|
sci
|
Relacao2a2.sci
|
//relacao em 1d entre :
//nivel e nota
//taxa e nota
function[ret, erro] = RelacaoNivelNota()//estabelece uma relacao linear entre o nivel e a nota usando minimos quadrados
//nota = a*nivel + b
T = Entrada()
N = size(T)
n = N(1,1)//numero de linhas da matriz T
A = zeros(n,2)
b = zeros(n,1)
for i=1:1:n
A(i,1) = T(i,1)//nivel
A(i,2) = 1
b(i,1) = T(i,3)/10//nota de 0 a 100
end
At = A'*A
bt = A'*b
ret = At\bt
a = ret(1,1)
b = ret(2,1)
//desenhar a funcao
deff("[y]=f(x)","y= a*x + b")
x=[0:0.1:100];
fplot2d(x,f)
erro = Erro(A, ret, b);
endfunction
function[ret, erro] = RelacaoTaxaNota()//estabelece uma relação linear entre taxa e nota usando minimos quadrados
//nota = a*taxa + b
T = Entrada()
N = size(T)
n = N(1,1)//numero de linhas da matriz T
A = zeros(n,2)
b = zeros(n,1)
for i=1:1:n
A(i,1) = T(i,2)//taxa de aprovacao
A(i,2) = 1
b(i,1) = T(i,3)/10//nota de 0 a 100
end
At = A'*A
bt = A'*b
ret = At\bt
a = ret(1,1)
b = ret(2,1)
//desenhar a funcao
deff("[y]=f(x)","y= a*x + b")
x=[0:0.1:100];
fplot2d(x,f)
erro = Erro(A, ret, b);
endfunction
function[nota] = preveNota(ponto, y)//recebe um ponto do tipo (nivel socio-economico ou taxa de aprovação) e o vetor retornado em Aproximacao Linear e retonar a Nota possivel
nota = y(1,1)*ponto(1,1) + y(2,1)//calculo serve tanto para a RelacaoTaxaNota quanto para a RelacaoNivelNota
if nota>100 then
nota = 100
end
if nota < 0 then
nota = 0
end
endfunction
|
7d3ec0422f309d5007adee75e5db734934cea9ac
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/764/CH14/EX14.3.b/solution14_3.sce
|
4f7d4f4e0e4ea8b29d8921ea67a3963899d8e2db
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 948
|
sce
|
solution14_3.sce
|
//Obtain path of solution file
path = get_absolute_file_path('solution14_3.sce')
//Obtain path of data file
datapath = path + filesep() + 'data14_3.sci'
//Clear all
clc
//Execute the data file
exec(datapath)
//Calculate the kW rating of the chain
kW = kWd * Ks/(K1 * K2)
printf("\nChoose appropriate chain from table 14.2 on page 550 for %f kW power transmitted at %f rpm\n",kW,n1)
printf("\nHere, we choose chain 8A (5.28 kW rating)\n")
//Calculate the number of teeth on driven sprocket z2
z2 = i * z1
//Calculate the number of chain links Ln
Ln = 2*(a/p) + (z1 + z2)/2 + ((z2 - z1)/(2*%pi))^2 * (p/a)
Lnround = ceil(Ln)
val = (Lnround - (z1 + z2)/2)
//Calculate the correct centre distance anew (mm)
anew = (p/4)*(val + sqrt(val^2 - 8*((z2 - z1)/(2*%pi))^2))
//Print results
printf("\nNumber of chain links(Ln) = %f or %f\n",Ln,Lnround)
printf("\nCorrect centre distance between the sprocket axes(a) = %f mm\n",anew)
|
bed9c5e39289c9f030e1ae23085b22220157d01d
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1691/CH1/EX1.29/Example1_29.sce
|
b87398e3fd8680c1f5819be3ec1060ec1dd85e6c
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,092
|
sce
|
Example1_29.sce
|
//Example 1.29
clc
disp("Fig 1.83 shows current shunt feedback amplifier open circuit transfer gain")
disp("A_I = -I_c2/I_s = -I_c2/I_b2 * I_b2/I_c1 * I_c1/I_b1 * I_b1/I_s")
disp("I_c2/I_b2 = A_i2 = -h_fe = -100")
disp("-I_c1/I_b1 = 100")
ri2=1+(101*(1/10.1))
format(3)
disp(ri2,"R_i2(in k-ohm) = h_ie + (1+h_fe)(R_e2||R'') =")
ibc=-2.2/14.2
format(6)
disp(ibc,"I_b2/I_c1 = -R_c1 / R_c1+(R_i2+R_b2) =")
disp("I_b1/I_s = R/R+h_ie")
r=(10.1*10^3)/11.1
disp(r,"R(in ohm) = R_s || (R''+R_e) =")
ibs=0.9099/1.9099
disp(ibs,"Therefore, I''_b/I_s =")
ai=100*0.155*100*0.476
disp(ai,"Therefore, A_I =")
disp("Calculate of beta:")
disp("I_f = -I_o*R_e2 / R_e2+R''")
disp("beta = I_f/Io = R_e2/R_e2+R'' = 100/100+10K")
d=1+(9.9*737.8*10^-3)
format(4)
disp(d,"D = 1 + beta*A_I =")
disp("A_if = A_I/D = 88.89")
avf=88.89*2.2
format(8)
disp(avf,"A_vf = Vo/V_s = -I_c2/I_s * R_c2/R_s = A_if*R_c2 / R_s =")
ri1=(909.9*1000)/1909.9
format(4)
disp(ri1,"R_i1(in ohm) = R || h_ie =")
rif=476/8.3
format(6)
disp(rif,"R_if(in ohm) = R_i/D =")
disp("R_of = R_c2 = 2.2 k-ohm")
|
98c813fa80c6444acc96c3d98ed8322c1542dc77
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/593/CH6/EX6.7/ex6_7.sce
|
74b671184f674afbc1f2305f447abab4cbc90830
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 880
|
sce
|
ex6_7.sce
|
clear;
//clc();
// Example 6.7
// Page: 117
printf("Example-6.7 Page no.-117\n\n");
//***Data***//
x_sulph = 0.6;
x_water = 0.4;
Temp = 200;//[F]
// In the given figure 6.8 in the book, drawing the tangent to the 200F curve at 60 wt% H2SO4, we find that it intersects the 0%(pure water) axis at 25 Btu/lbm, and the 100% H2SO4 axis at -100Btu/lbm. i.e.
h_water_per_pound = 25;//[Btu/lbm]
h_sulph_per_pound = -100;//[Btu/lbm]
// also molecular weight of water and sulphuric acid are
M_water = 18;//[lbm/lbmol]
M_sulph = 98;//[lbm/lbmol]
// Using equation 6.20 given in the book we have
h_water = h_water_per_pound*M_water;//[Btu/lbmol]
h_sulph = h_sulph_per_pound*M_sulph;//[Btu/lbmol]
printf("Partial molar enthalpy of water in the mixture is %f Btu/lbmol\n",h_water);
printf(" Partial molar enthalpy of H2SO4 in the mixture is %f Btu/lbmol",h_sulph);
|
75ef8e0bb627f949308a329490ddc350f0d4c338
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1016/CH10/EX10.5/ex10_5.sce
|
730d7a45bc6734e39c6b3e733dc9bea214d050a5
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 303
|
sce
|
ex10_5.sce
|
clc;clear;
//Example 10.5
//given data
m1=1.008665;//mass of 0n1 in a.m.u
m2=1.007825;//mass of 1H1 in a.m.u
m3=34.9800;//mass 17Cl35 in a.m.u
n=17+18;
//calculations
dm=(17*m2)+(18*m1)-m3;
Q=dm*931;
disp(Q,'Binding energy in MeV');
BEn=Q/n;
disp(BEn,'Binding energy per nucleon in MeV')
|
16fedb98185a8d9137b8e4b6e5d53991d0487064
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/377/CH4/EX4.9/4_9.sce
|
3edfad6f7e50fb9eba85d89e7c69f15f12e7dea7
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,049
|
sce
|
4_9.sce
|
disp("Nc=2((2*pi*me*K*T)/(h^2))^(3/2)");
disp("Nv=2((2*pi*mh*K*T)/(h^2))^(3/2)");
c=1.08*9.1*(10^-31); //say effective mass of electrons=me=c
d=0.56*9.1*(10^-31); //say effective mass of holes=mh=d
pi=3.14;
K=1.38*(10^-23);
T=300;
h=6.63*(10^-34);
a=2*(((2*pi*c*K*T)/(h^2))^(3/2)); //value in (m^-3)
b=2*(((2*pi*d*K*T)/(h^2))^(3/2)); //value in (m^-3)
e=a*(10^-6); //value in (cm^-3)
f=b*(10^-6); //value in (cm^-3)
printf('\nthe value of Nc = %f (cm^-3)',e);
printf('\nthe value of Nv = %f (cm^-3)',f);
disp("ni=sqrt(NcNv)*exp((-Eg)/(2*K*T))");
g=1.10; //say g=Eg
K1=8.62*(10^-5);
l=(sqrt(e*f))*exp((-g)/(2*K1*T)); //say K1 is in eV/K;
printf('\nthe value of ni = %f (cm^-3)',l);
disp("σ = [e*n*μ(e) + e*p*μ(h)] = e*ni*(μ(e)+ μ(h))");
n=1.6*(10^-19); //say e(in formula)=n
p=1350; //say μ(e)(in formula)=p
q=450; //say μ(h)(in formula)=q
m=n*l*(p+q);
printf('\n the value of Conductivity,σ = %f (ohm^-1)(cm^-1)',m);
disp("ρ=1/σ");
r=(1/m);
printf('\n the value of Resistivity,ρ = %f (ohm)(cm)',r);
|
fd1db75bcaef9c825868303afb66f5570ea1b991
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/2465/CH10/EX10.3/Example_3.sce
|
e6f950fa8e6fd1d0d653391418a25fb4132c4915
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 482
|
sce
|
Example_3.sce
|
//Chapter-10,Example 3,Page 252
clc();
close();
//Cell reaction is ...Zn+2 +2Ag <----> Zn + 2Ag+
E0_Zn=-0.762 //standard electrode potential for Zn
E0_Ag=0.798 //standard electrode potential for Ag
R=8.314 //gas constant
F=96500 //Farade's constant
n=2
T=298 //temperature in Kelvin
Zn= 0.2
Ag= 0.1
E_cell= (E0_Zn + (R*T/(n*F))*log(Zn))-(E0_Ag + (R*T/(n*F))*log(Ag^2))
printf('the cell voltage at 25 degree is %.3f V',E_cell)
|
e82ccc3a136942b20e1cfd2951f75277642c2e8c
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3831/CH12/EX12.13/Ex12_13.sce
|
ee219a0477af2c711257b155bf1e00513a111137
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 1,406
|
sce
|
Ex12_13.sce
|
// Example 12_13
clc;funcprot(0);
// Given data
V_a1=2000;// ft^3/min
T_DB1=50.0+459.67;// R
phi_1=80.0/100;// The relative humidity
V_a2=1000;// ft^3/min
T_DB2=100.0+459.67;// R
phi_2=40.0/100;// The relative humidity
R_a=53.34;// ft.lbf/(lbm.R)
p_m=14.7// lbf/in^2
// Calculation
p_sat1=0.178;// psia
p_w1=phi_1*p_sat1;// psia
p_a1=p_m-p_w1;// lbf/in^2
v_a1=(R_a*T_DB1)/(p_a1*144);// ft^3/(lbm dry air)
p_sat2=0.9503;// psia
p_w2=phi_2*p_sat2;// psia
p_a2=p_m-p_w2;// lbf/in^2
v_a2=(R_a*T_DB2)/(p_a2*144);// ft^3/(lbm dry air)
m_a1=V_a1/v_a1;// lbmdry air/min
m_a2=V_a2/v_a2;// lbmdry air/min
m_a3=m_a1+m_a2;// lbmdry air/min
// Then, from the psychrometric chart (Chart D.5), we find
w_1=44/7000;// lbm water vapor/(lbm dry air)
w_2=115/7000;// lbm water vapor/(lbm dry air)
h_1=19;// Btu/(lbm dry air)
h_2=42;// Btu/(lbm dry air)
w_3=((m_a1/m_a3)*w_1)+((m_a2/m_a3)*w_2);// grains of water vapor/(lbm dry air)
h_3=((m_a1/m_a3)*h_1)+((m_a2/m_a3)*h_2);// Btu/(lbm dry air)
// From the point where the lines ω = 65.8 grains/(lbm dry air) = constant and h = 26 Btu/(lbm dry air) = constant intersect on the psychrometric chart, we can read from this chart that
T_DB=63;// °F
T_WB=59;// °F
phi=75;// %
T_DP=56;// °F
printf("\nThe dry bulb temperature of the outlet mixture,T_DB=%2.0f°F \nThe relative humidity of the outlet mixture,phi=%2.0f percentage",T_DB,phi);
|
f70e0db7126f3cce2a8370abeab173440b089ac9
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/1859/CH8/EX8.9/exa_8_9.sce
|
2b0413707ba66b5a2ea629352b77a355b9218d67
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 388
|
sce
|
exa_8_9.sce
|
// Exa 8.9
clc;
clear;
close;
// Given data
Y= 2+1/2;// Positive Y-peaks in pattern
X= 1/2+1/2;// Positive X-peaks in pattern
f_h= 3// frequency of horizontal voltage signal in kHz
f_yBYf_x= Y/X;
// frequency of vertical voltage signal= f_yBYf_x * f_h
f_v= f_yBYf_x * f_h;// frequency of vertical voltage signal in kHz
disp(f_v,"frequency of vertical voltage signal in kHz");
|
45259d0bf0aa086ce8039ed4ee20c2b9fe8e3c43
|
45e046b9cab35a22858077ef405f8c8b8125a87f
|
/Assignment-1/Questn-4/quick.sci
|
72d6ae662d5d6c0ea4b86799a22b6e2be866762f
|
[] |
no_license
|
shilpasunil/AP-laboratory
|
4a67e510a05e5ce48f200ee73183627a12a19d55
|
87d55510d6f3c4a80ce1779e9b39430ee20e69b2
|
refs/heads/main
| 2023-02-09T16:13:34.048845
| 2021-01-07T04:43:35
| 2021-01-07T04:43:35
| 327,504,813
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 355
|
sci
|
quick.sci
|
function[cmp,a]=quick(a,low,high,cmp)
//len = length(a);
if(high-low+1 > 12) then
if low < high then
[pi,cmp,a]= hybrid_partition(a,low,high,cmp);
[cmp,a]= quick(a,low,pi-1,cmp);
[cmp,a]= quick(a,pi+1,high,cmp);
end
else
[a,cmp]=sorttest_insertion(a,low,high,cmp);
end
endfunction
|
c7b899837f1b683bf81f150ea1f288a304be73ca
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/284/CH13/EX13.3/ex3.sce
|
0510f067115d3fcdc544c37f9c9ef9c4d84b5983
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 384
|
sce
|
ex3.sce
|
// Chapter 13_Optical Devices
//Caption_Solar cells
//Ex_3//page 602
Na=5*10^18
Nd=10^16
Dn=25
e=1.6*10^-19
ni=1.5*10^10
Dp=10
tau_no=5*10^-7
tau_po=10^-7
JL=15*10^-3 //photocurrent density
Ln=(Dn*tau_no)^0.5
Lp=(Dp*tau_po)^0.5
Js=e*(ni^2)*((Dn/(Ln*Na))+(Dp/(Lp*Nd)))
Voc=0.0259*log(1+JL/Js)
printf('Open circuit voltage of SI pn juncton solar cell is %1.3f V',Voc)
|
55869f582767069a3409ec0f0bcbd3324f095488
|
8217f7986187902617ad1bf89cb789618a90dd0a
|
/source/2.5/tests/examples/determ.man.tst
|
530c111fc7211df619c451435b830b352c285564
|
[
"LicenseRef-scancode-public-domain",
"LicenseRef-scancode-warranty-disclaimer"
] |
permissive
|
clg55/Scilab-Workbench
|
4ebc01d2daea5026ad07fbfc53e16d4b29179502
|
9f8fd29c7f2a98100fa9aed8b58f6768d24a1875
|
refs/heads/master
| 2023-05-31T04:06:22.931111
| 2022-09-13T14:41:51
| 2022-09-13T14:41:51
| 258,270,193
| 0
| 1
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 79
|
tst
|
determ.man.tst
|
clear;lines(0);
s=poly(0,'s');
w=s*rand(10,10);
determ(w)
det(coeff(w,1))*s^10
|
b40470ed6481b7ced51a814070d4ad7e7eeb9692
|
b12941be3faf1fd1024c2c0437aa3a4ddcbbfd67
|
/normal/fase_5.tst
|
af606504700d7b18640be09455510e55e9b843ab
|
[] |
no_license
|
JanWielemaker/optica
|
950bd860825ab753236ce1daa399ee7a0b31b3ee
|
3a378df314b5a60926b325089edac89c00cc8c6d
|
refs/heads/master
| 2020-06-12T14:22:46.567191
| 2019-06-21T11:24:41
| 2019-06-21T11:24:41
| 194,328,239
| 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 844
|
tst
|
fase_5.tst
|
question(1, 'item 5-1',
'Wat kun je in bovenstaande situatie zeggen
over het beeld van het voorwerp als we rechts
van de lens een beeldscherm plaatsen?',
[ 'Er is geen beeld',
'Het beeld is kleiner dan het voorwerp',
'Het beeld is groter dan het voorwerp',
'weet niet'
],
state(state, '',
[ l1 = biglamp(instrument_name(biglamp)),
m1 = lens(label(''),
radius(5),
thickness(0.1),
focal_distance(5),
sfere_left(*),
sfere_right(*),
breaking_index(1.51),
pos_x(9.05),
show_gauge(true),
instrument_name(lens)),
s1 = shield(pos_x(4.95),
unit(1),
instrument_name(shield)),
c1 = construction_line(pos_x(0),
instrument_name(consline)),
d1 = ruler(from(s1), to(c1), pos_y(6.25)),
d2 = ruler(from(s1), to(m1), pos_y(-6.85))
])).
|
683b0623062a9d70eb68c02c69391c55d1dd90e7
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/569/CH2/EX2.10/2_10.sci
|
871c5bb1ae383c94646a31863627c1e2a25a6af9
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 328
|
sci
|
2_10.sci
|
// calculating the ratio of output signal to noise signal
clc;
disp('The noise voltage is')
Bw=100*10^3;
K=1.38*10^-23;
T=300;
R=120;
A=(K*T*R*Bw)^0.5;
En=2*A;
disp(En,'Noise voltage (V)=');
Eno=0.12*10^-3;
disp(Eno,'Noise voltage at output(V)=');
Ra=Eno/En;
disp(Ra,'Ratio of signal votage to Noise voltage =');
|
07ac7f16ee3fe1e9f5f14eb0ff380b7045a84ffe
|
a1e081ceabd043cf1506b917c7f2fb243be290d8
|
/P2/loadFunctions.sci
|
480352125723968885d418f499866fde10075c5f
|
[] |
no_license
|
pablospe/ssc
|
2cd8e21e1843f246e2d7f565557f4f73368aa4b8
|
353fc62f18202e73b84bea4f2d83f64cdeb15723
|
refs/heads/master
| 2021-01-10T21:35:46.798450
| 2014-04-24T05:11:51
| 2014-04-24T05:11:51
| null | 0
| 0
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 233
|
sci
|
loadFunctions.sci
|
exec ex1.sci
exec ex3.sci
exec ltisol.sci
exec step_feuler.sci
exec feuler.sci
exec jacobiant.sci
exec step_beuler.sci
exec beuler.sci
exec mixed_euler.sci
exec cicled_euler.sci
exec alpha_mixed_euler.sci
exec global_error.sci
|
ce83233ebdc8c1d85434bb7310bc7939b44dc05f
|
449d555969bfd7befe906877abab098c6e63a0e8
|
/3856/CH7/EX7.5/Ex7_5.sce
|
ca19812d58dcfd065d3611821631e8ea746bc2ce
|
[] |
no_license
|
FOSSEE/Scilab-TBC-Uploads
|
948e5d1126d46bdd2f89a44c54ba62b0f0a1f5e1
|
7bc77cb1ed33745c720952c92b3b2747c5cbf2df
|
refs/heads/master
| 2020-04-09T02:43:26.499817
| 2018-02-03T05:31:52
| 2018-02-03T05:31:52
| 37,975,407
| 3
| 12
| null | null | null | null |
UTF-8
|
Scilab
| false
| false
| 581
|
sce
|
Ex7_5.sce
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//What is the Molar mass of Hemoglobin
//Example 7.5
clc;
clear;
h=77.8/1000; //Height 0f the liquid in right column in m
g=9.81; //Acceleration due to gravity in m s^-2
rho=1*10^3; //Density of the solution in kg m^-3
P=h*g*rho; //Osmotic pressure of the solution in pascals (N m^-2)
R=8.314; //Gas constant in J K^-1 mol^-1
T=298; //Temperature of the solution in K
c2=20; //Concentration of the solute in kg m^-3
mew2=(c2*R*T)/P; //Molar mass of the Hemoglobin in kg mol^-1
printf("Molar mass of Hemoglobin = %.0f kg mol^-1",mew2);
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