Revision as of 09:18, 17 April 2011

Practice Question on Computing the inverse z-transform

Compute the inverse z-transform of the following signal.

$ X(z)=\frac{1}{1+3z} \mbox{, } \Big|z\Big|>\frac{1}{3} $

Share your answers below

Prof. Mimi gave me this problem in class on Friday, so I'm posting it and my answer here. --Cmcmican 22:38, 16 April 2011 (UTC)

Answer 1

$ X(z)=\frac{1}{3z}\frac{1}{(1+\frac{1}{3z})} $

since $ \Bigg|z\Bigg|>\frac{1}{3} ==>\Bigg|\frac{1}{z}\Bigg|<3 ==>\Bigg|\frac{1}{3}\frac{1}{z}\Bigg|<1 $

$ X(z)=\sum_{k=0}^\infty \frac{1}{3z}\Bigg(\frac{1}{3z}\Bigg)^k=\sum_{k=-\infty}^\infty u[k] \Bigg(\frac{1}{3}\Bigg)^{k+1}z^{-(k+1)} $

let n=k+1

$ =\sum_{n=-\infty}^\infty u[n-1]\Bigg(\frac{1}{3}\Bigg)^{n}z^{-n} $

By comparison with $ \sum_{n=-\infty}^\infty x[n] z^{-n}: $

$ x[n]=\Bigg(\frac{1}{3}\Bigg)^{n}u[n-1]\, $

--Cmcmican 22:38, 16 April 2011 (UTC)

TA's comment: I think you have a mistake here. You can check that by taking the Z-transform of your answer.

Answer 2

Write it here.

Answer 3

Write it here.

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