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a. Linearity
 
a. Linearity
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Given <math>v[n]=ax[n]+by[n]</math> ,then
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<math>
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\begin{align}
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V(\omega ,n) &= \sum_k v[k]w[n-k]e^{-j\omega k} \\
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&= \sum_k (ax[k]+by[k])w[n-k]e^{-j\omega k} \\
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&= \sum_k ax[k]w[n-k]e^{-j\omega k}+\sum_k by[k]w[n-k]e^{-j\omega k} \\
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&= aX(\omega ,n)+bY(\omega ,n)
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\end{align}
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</math>
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b. Modulation
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Given <math>v[n]=x[n]e^{j\omega_0n}</math> ,then
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<math>
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\begin{align}
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V(\omega ,n) &= \sum_k v[k]w[n-k]e^{-j\omega k} \\
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&= \sum_k (x[k]e^{j\omega_0 k})w[n-k]e^{-j\omega k} \\
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&= \sum_k x[k]w[n-k]e^{-j(\omega -\omega_0)k} \\
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&= X(\omega -\omega_0 ,n)
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\end{align}
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</math>
  
 
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Latest revision as of 12:09, 10 November 2010

Solution of Week12 Quiz Question 4


a. Linearity

Given $ v[n]=ax[n]+by[n] $ ,then

$ \begin{align} V(\omega ,n) &= \sum_k v[k]w[n-k]e^{-j\omega k} \\ &= \sum_k (ax[k]+by[k])w[n-k]e^{-j\omega k} \\ &= \sum_k ax[k]w[n-k]e^{-j\omega k}+\sum_k by[k]w[n-k]e^{-j\omega k} \\ &= aX(\omega ,n)+bY(\omega ,n) \end{align} $

b. Modulation

Given $ v[n]=x[n]e^{j\omega_0n} $ ,then

$ \begin{align} V(\omega ,n) &= \sum_k v[k]w[n-k]e^{-j\omega k} \\ &= \sum_k (x[k]e^{j\omega_0 k})w[n-k]e^{-j\omega k} \\ &= \sum_k x[k]w[n-k]e^{-j(\omega -\omega_0)k} \\ &= X(\omega -\omega_0 ,n) \end{align} $


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Correspondence Chess Grandmaster and Purdue Alumni

Prof. Dan Fleetwood