I choose y(t)=cos(t) as my continous signal. There is no doubt that y(t)=cos(t) is periodic because cos(t + T) = cos(t) where its fundamental period is 2*π
Periodic Function
First I sample the signal y(t)=cos(t) at 100 Hz and so we get the following discrete signal which is periodic
Non periodic funtion
- Now if I sample the signal y(t)=cos(t) at 22.22 Hz then we get the following discrete signal which is not periodic
Recurring non periodic function = periodic
Now let us shift the non periodic function y(t)= $ {e^{3t}} $
we use the following matlab code
%referred the code of paul sceffler
clc clear t=0.01:.01:1; x=exp(3*t); i=[]; for d=1:10 i=[i,x]; end t=[0.01:.01:10]; plot(t,i)
we see above that the non-periodic signal is now periodic