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<math>H(s)= \frac {5}{s}</math>
 
<math>H(s)= \frac {5}{s}</math>
 +
 +
 +
== part B ==
 +
 +
<math>h(t) = \sum_{-\infty} ^\infty a_k H(s)
 +
</math>

Revision as of 18:39, 25 September 2008

part A

$ e^{st}\rightarrow h(t)\rightarrow H(S)e^{st} $

$ H(s) = \int_{-\infty}^\infty h(t)e^{-st}dt $

assume

$ h(t) = 5u(t-3) $

$ H(s) = 5\int_3^\infty e^{-st}dt $

$ H(s) = \frac{-5}{s} $

$ 4 to \infty $

$ H(s)= \frac {5}{s} $


part B

$ h(t) = \sum_{-\infty} ^\infty a_k H(s) $

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