Basic question of convolution

17 Apr 2021
2 Answers
Answer Accepted
Updated 17 Apr 2021
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Hi. I solved a problem using conv .
'y[n] = x[n] * h[n] when x[n] = h[n] = [1,3,2,4]'.
Like this:
x=[1,3,2,4];
h=[1,3,2,4];
y=conv(x, h)
stem(y,'r','LineWidth', 2);
But, when the equation is y[n] = x[n-1] * h[n+1], how can I make n-1 and n+1??

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 Accepted Answer

Matt J
Matt J on 17 Apr 2021
Edited: Matt J on 17 Apr 2021

1 vote

But, when the equation is y[n] = x[n-1] * h[n+1], how can I make n-1 and n+1??
There is no need to in this case. because of the shift-invariance of convolution, the negative shift in x will be cancelled out by the positive shift in h.

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JjjO
JjjO on 17 Apr 2021
Thank you. So you mean I don't have to change my code for y[n] = x[n-1] * h[n+1]?
Matt J
Matt J on 17 Apr 2021
That is what I mean.
JjjO
JjjO on 17 Apr 2021
Thank you :)

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More Answers (1)

AB WAHEED LONE
AB WAHEED LONE on 17 Apr 2021
Edited: AB WAHEED LONE on 17 Apr 2021

1 vote

Look Convolution for discrete case is defined as y[n]=Σ(x[k]*h[n-k])
so y[n-1]=Σ(x[k]*h[n-1-k]) and y[n+1]=Σ(x[k]*h[n+1-k])

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JjjO
JjjO
on 17 Apr 2021

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JjjO
JjjO
on 17 Apr 2021

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