why the fft results of these functions are not what I expect?

2 views (last 30 days)
I have three functions; a sinusoid, square and sawtooth. The fft of sine is what we expect in fourier domain. But I expect to see a sinc function for the square. But why its not what I expect?
close all;
clear all;
fs=1e5;
a=-0.01;
b=0.01;
t = a:1/fs:b;
x = sin(1000*2*pi*t);
y = sawtooth(500*2*pi*t);
z = square(2000*2*pi*t);
N=length(x);
figure, subplot(1,3,1), plot(t,x);xlim([a/10 b/10])
subplot(1,3,2), plot(t,y);xlim([a/10 b/10])
subplot(1,3,3), plot(t,z);xlim([a/10 b/10])
A = 2*fftshift(abs(fft(x))/N);
b = 2*fftshift(abs(fft(y)))/N;
c = 2*fftshift(abs(fft(z)))/N;
if mod(N,2) == 0 % N is even
f = ( (-N/2) : ((N-2)/2) )/N*fs;
else % N is odd
f = ( (-(N-1)/2) : ((N-1)/2) )/N*fs;
end
figure
plot(f, c); xlim([-fs fs])
figure
plot(f, b);xlim([-fs fs])
figure
plot(f, A);xlim([-fs fs])
  6 Comments

Sign in to comment.

Answers (0)

Categories

Find more on Fourier Analysis and Filtering in Help Center and File Exchange

Products


Release

R2021a

Community Treasure Hunt

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

Start Hunting!