Can anyone help to write a code for plotting the following equation with time please?

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Avan Al-Saffar
Avan Al-Saffar le 9 Fév 2015
Commenté : Torsten le 10 Fév 2015
x = exp( (-B/omega) * cos(omega * t) ) ...
./ ( (B/A)*(integral(exp( (-B/omega)* cos(omega * t) ))))
Where
A= 1;
B= 10;
omega= 1;
x0 =0.1;
t = 0 :0.0001:1000;
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Roger Stafford
Roger Stafford le 9 Fév 2015
As it stands, the integral in your expression is an indefinite integral and therefore has an arbitrary constant of integration. You need to specify what that constant is in order to successfully plot x as a function of t.
Avan Al-Saffar
Avan Al-Saffar le 9 Fév 2015
We can find the constant at x(t=0).

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per isakson
per isakson le 9 Fév 2015
Modifié(e) : per isakson le 9 Fév 2015
With a little bit of guessing
A= 1;
B= 10;
omega= 1;
x0 =0.1;
t = 0 :0.0001:1000;
fi = @(ti) exp( (-B/omega).*cos(omega*ti) );
fx = @(tj) exp( (-B/omega) .* cos(omega*tj) ) ...
./ ( (B/A).*(integral( fi, 0, tj )));
ezplot( fx, 0:1e-3:12*pi )
produces this
&nbsp
I don't use x0 =0.1; and I get a warning
Warning: Function failed to evaluate on array inputs; [...]
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Avan Al-Saffar
Avan Al-Saffar le 10 Fév 2015
But I have cos(omega*t) in the denominator so if t =0, I will get 1 .
Torsten
Torsten le 10 Fév 2015
If lower limit and upper limit of an integral are identical (t=0 in this case), its value is zero - independent of the function to be integrated.
Best wishes
Torsten.

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