Integration In Matlab

1 view (last 30 days)
Pranjal Pathak
Pranjal Pathak on 23 Mar 2012
Thanks to andrei bobrov for your answer! Yes R1=R2. Your coding seems to work, but the value(answer) is a huge one to know the exact value. Can we command in MATLAB to give the calculated result only upto 4 decimal place.
syms r R1=sqrt(3)*(2*r.^2-1) R2=sqrt(3)*(2*r.^2-1) b = .7; S=2*pi*imag(int(exp(1i*b*R1)*r,r,0,1)*int(R2*exp(-1i*b*R1)*r,r,0,1)) out = vpa(S);
  2 Comments
Jan
Jan on 23 Mar 2012
Please post comments to answers in the corresponding thread.
Alexander
Alexander on 23 Mar 2012
Also, if something works for you, could you please accept the answer? So others know that the matter is resolved.

Sign in to comment.

Sign in to answer this question.

Accepted Answer

Alexander
Alexander on 23 Mar 2012
Just use double:
syms r
R1=sqrt(3)*(2*r.^2-1)
R2=sqrt(3)*(2*r.^2-1)
b = .7;
S=2*pi*imag(int(exp(1i*b*R1)*r,r,0,1)*int(R2*exp(-1i*b*R1)*r,r,0,1))
out = vpa(S);
double(out)
ans =
-0.7308
Or if you don't need vpa you can do out = double(S) directly.

More Answers (0)

Categories

Find more on Code Performance in Help Center and File Exchange

Tags

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!