f = 
Look at a_n - you get a division by zero if n = 1 because you divide be (n^2-1).
It's a bug of the symbolic toolbox that the same case distinction that is made for b_n is not done for a_n.
Calculating a Fourier series with MATLAB manually problem
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Owen
el 30 de Mzo. de 2024 a las 23:23
Hi there, I'm trying to transfer this academic terms learnings on the fourier series to MATLAB, and running into difficulties.
I want to be able to plot a fourier series approximation against the original function but when I try and calculate the fourier series to 5 steps of n in the final line I get a division by zero error.
I can't see where this division by zero occurs, the only division I am using is dividing by the period, T, which is just pi.
I understand this is probably a bad way to do things! And I don't think I understand the symsum enough, but any help gratefully recieved.
clear all
close all hidden
clc
syms t % time
syms n % number of terms to calculate the sum to
syms T % period
syms a_n(t, n, T) % fourier co-effecients
syms b_n(t, n, T)
syms a_0(t, n, T)
syms f(t)
f = sin(t)^2
tvec = -3 : 0.01 : 3;
xvec = sin(tvec).^2;
figure
plot(tvec, xvec)
title('Plot of f(t)')
T = sym(pi)
a_0 = (2/T)*int(f, t, 0, T)/2
a_n = (2/T)*int(f*cos(((2*pi)/T)*n*t), t, 0, T)
b_n = (2/T)*int(f*sin(((2*pi)/T)*n*t), t, 0, T)
exp = a_0 + symsum(a_n*cos(((2*pi)/T)*n*t) + b_n*sin(((2*pi)/T)*n*t), n, 1, 5)
% division by zero error
10 comentarios
Torsten
el 31 de Mzo. de 2024 a las 17:20
I'm interested in why for this specific function we get an a_n that is invalid for n=1.
But I alrady answered it - it's a MATLAB bug.
Respuesta aceptada
Paul
el 31 de Mzo. de 2024 a las 15:26
Editada: Paul
el 1 de Abr. de 2024 a las 22:19
I don't think anything is wrong with the code in the Question, at least based on visual inspection (though it's always best to use sym(pi) rather than pi in symbolic expressions). Rather, int often doesn't recognize special cases when evaluating parameterized, Fourier integrals. The user needs to identify those cases and manually process them.
syms t % time
syms n % number of terms to calculate the sum to
f = sin(t)^2;
T = sym(pi);
a_0 = 2/T*int(f,t,0,T)/2
a_n = 2/T*int(f*cos(2*sym(pi)/T*n*t),t,0,T)
b_n = 2/T*int(f*sin(2*sym(pi)/T*n*t),t,0,T)
I don't know why int() captures the special cases of n for b_n but does not for a_n. So we have to handle the special case for a_n manually (keeping in mind that we only care about n >= 1)
a_n = piecewise(n==1,limit(a_n,n,1),a_n)
%b_n = piecewise(n==1,limit(b_n,n,1),b_n)
We can simplify things by placing appropriate assumptions on n. This step isn't really necessary, but adds some clarity IMO.
assume(n,'integer')
assumeAlso(n,'positive'); % n >= 1 for the sin/cos Fourier series
a_n = simplify(a_n)
b_n = simplify(b_n)
The reconstruction yields the expected result
fr = a_0 + symsum(a_n*cos(2*sym(pi)/T*n*t),n,1,5)
However, an incorrect result for a_n ensues if evaluating the integrals with the assumptions on n.
a_n = 2/T*int(f*cos(2*sym(pi)/T*n*t),t,0,T)
b_n = 2/T*int(f*sin(2*sym(pi)/T*n*t),t,0,T)
That looks like a bug.
Alternatively, we can Hold the integrals and then release() them after evaluating them at specified values of n (the @doc functionality isn't finding symbolic release() ?)
a_n(n) = 2/T*int(f*cos(2*sym(pi)/T*n*t),t,0,T,'Hold',true)
b_n(n) = 2/T*int(f*sin(2*sym(pi)/T*n*t),t,0,T,'Hold',true)
a_n = release(a_n(1:5))
b_n = release(b_n(1:5))
fr = a_0 + sum(a_n.*cos(2*sym(pi)/T*(1:5)*t))
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