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\end{align}
 
\end{align}
 
</math>
 
</math>
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Proof of <math class="inline">\int_a^b u(\tau -5)\mathrm{d}\tau = [(\tau - 5)u(\tau - 5)] \Big|_a^b</math>
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<math>
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\begin{align}
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\int_a^b u(\tau -5)\mathrm{d}\tau &= [(\tau - 5)u(\tau - 5)] \Big|_a^b\\
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\text{Let } \gamma &= \tau - 5 \\
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\mathrm{d}\gamma &= \mathrm{d}\tau \\
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\text{Since } \int u(\gamma)\mathrm{d}\gamma &= \gamma u(\gamma) \\
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\int_a^b u(\gamma)\mathrm{d}\gamma &= [\gamma u(\gamma)] \Big|_a^b\\
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\text{Replace } \tau -5 &= \gamma \\
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\int_a^b u(\tau -5)\mathrm{d}\tau &= [(\tau - 5)u(\tau - 5)] \Big|_a^b\\
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\end{align}
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</math>
 
==Comments==
 
==Comments==
 
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[[ ECE301 S11 Exam 3 more practice|Back to ECE301 S11 Exam 3 more practice]]
 
[[ ECE301 S11 Exam 3 more practice|Back to ECE301 S11 Exam 3 more practice]]

Latest revision as of 09:42, 30 April 2011


Problem

Compute the convolution

$ z(t)=x(t)*y(t) \ $

between

$ x(t) = u(t) - u(t-1) \ $

and

$ y(t) = u(t+2) - u(t-2) \ $.

My Solution

$ \begin{align} z(t) &= y(t) * x(t) \\ &= \int_{-\infty}^{\infty}x(\tau) y(t-\tau)\mathrm{d}\tau \\ &= \int_{-\infty}^{\infty}\left( u(\tau) - u(\tau-1) \right) \left( u(t-\tau+2) - u(t-\tau-2) \right)\mathrm{d}\tau \\ &= \int_{0}^{1}\left( u(t-\tau+2) - u(t-\tau-2) \right)\mathrm{d}\tau \\ &= \left[ (t-\tau+2)u(t-\tau+2)\right]\big|_0^1 - \left[ (t-\tau-2)u(t-\tau-2)\right]\big|_0^1 \\ &= \left[ (t+1)u(t+1) - (t+2)u(t+2)\right] + \left[ -(t-3)u(t-3) + (t-2)u(t-2)\right] \end{align} $


Proof of $ \int_a^b u(\tau -5)\mathrm{d}\tau = [(\tau - 5)u(\tau - 5)] \Big|_a^b $

$ \begin{align} \int_a^b u(\tau -5)\mathrm{d}\tau &= [(\tau - 5)u(\tau - 5)] \Big|_a^b\\ \text{Let } \gamma &= \tau - 5 \\ \mathrm{d}\gamma &= \mathrm{d}\tau \\ \text{Since } \int u(\gamma)\mathrm{d}\gamma &= \gamma u(\gamma) \\ \int_a^b u(\gamma)\mathrm{d}\gamma &= [\gamma u(\gamma)] \Big|_a^b\\ \text{Replace } \tau -5 &= \gamma \\ \int_a^b u(\tau -5)\mathrm{d}\tau &= [(\tau - 5)u(\tau - 5)] \Big|_a^b\\ \end{align} $

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Back to ECE301 S11 Exam 3 more practice

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