how to plot conditional statement like when Vin=1, Vout=exp(-t/tn) and for Vin =0, Vout=1-exp(-t/tp) where Vin is a periodic square pulse.

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ANWESHA
ANWESHA le 16 Mai 2014
Commenté : Image Analyst le 16 Mai 2014
i have tried as follows:
f=input('please enter the value of time');
t = 0:.00001*f:(1-.00001)*f;
fm=2/f;
Vin = .5+0.5*square(2*pi*fm*t);
subplot(211);
plot(t,Vin)
Vdd=5;
Rn=2000;
Rp=3000;
C=0.1e-9;
Tn=Rn*C;
Tp=Rp*C;
V1=Vdd.*(exp(-t/Tn));
V0=Vdd*(1-exp(-t/Tp));
Vout=V1;
Vout(Vin<1)=V0(Vin<1);
subplot(212)
plot(t,Vout)
the problem is that for very small value of f, like f=.00000001 the desired graph is not obtained. Even for values like f=0.001, the gradual decay or rise that is expected is not obtained. please help.
  2 commentaires
ANWESHA
ANWESHA le 16 Mai 2014
Modifié(e) : ANWESHA le 16 Mai 2014
When Vin=1, Vout should be 0 with initial exponential decaying curve and if Vin=0 then Vout should be 1 with initial exponential rising curve.

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Réponses (2)

David Sanchez
David Sanchez le 16 Mai 2014
statement like when Vin=1, Vout=exp(-t/tn) and for Vin =0, Vout=1-exp(-t/tp):
if (Vin == 1)
Vout=exp(-t/tn);
elseif (Vin == 0)
Vout=1-exp(-t/tp);
end
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ANWESHA
ANWESHA le 16 Mai 2014
I have also tried with the if and elseif statement.It is not working.

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Image Analyst
Image Analyst le 16 Mai 2014
Can't you just use a convolution, conv(), or filter()? Invert the signal and apply a kernel that only looks to the left. Seems pretty straightforward.
  2 commentaires
ANWESHA
ANWESHA le 16 Mai 2014
Sorry sir, i didn't get you. Can you please elaborate. I have no idea how to apply kernel.
Image Analyst
Image Analyst le 16 Mai 2014
See Star's code which uses filter(). It is fine. No need to worry about conv() now that you have the filter() code.

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