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[[Media:Lecture17_ECE301Fall2008mboutin.pdf|Lecture 17]] PDF requires Adobe Reader 7 or greater
 
[[Media:Lecture17_ECE301Fall2008mboutin.pdf|Lecture 17]] PDF requires Adobe Reader 7 or greater
 
__TOC__
 
__TOC__
 +
==Main Concepts==
 +
Fourier Transforms and the frequency response of a system.
 +
 +
:<math> Y\big(\omega) = H(j \omega) X(\omega) </math>
 +
 +
The frequency response has a fundamental relationship to the unit step response through Fourier Transforms as follows
 +
::<math> H(j\omega\big) = \mathcal{H}(\omega) = \mathcal{F}\{ h(t) \}</math>
 +
 +
From this, the unit step response can be found
 +
 +
:: <math>h(t) = \mathcal{F}^{-1}\{ H(j\omega) \} </math>
 +
 +
Differential stuff....
 +
 
==Exercises==
 
==Exercises==
 
===Tricky Fourier Transform===
 
===Tricky Fourier Transform===
Compute the Fourier Transform of u(t-3)
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Compute the Fourier Transform of <math>u\big(t-3)</math>
  
 
===Dealing with Differentials===
 
===Dealing with Differentials===
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:a) What is the frequency response of the system?
 
:a) What is the frequency response of the system?
  
:b)What is the unit impulse response (h(t)) of the system?
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:b)What is the unit impulse response h(t) of the system?
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 +
====a====
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 +
First transform into the frequency domain
 +
 
 +
::<math> \mathcal{F}\lbrace\frac{d y(t) }{dx} + 4y(t) = x(t)\rbrace</math>
 +
 
 +
Apply linearity
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::<math> \mathcal{F}\lbrace\frac{d y(t) }{dx}\rbrace + 4\mathcal{F}\lbrace y(t)\rbrace = \mathcal{F}\lbrace x(t)\rbrace</math>
 +
 
 +
Use the differentiation property to reduce the differential term
 +
 
 +
 
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::<math> j\omega\mathcal{F}\lbrace y(t)\rbrace + 4\mathcal{F}\lbrace y(t)\rbrace = \mathcal{F}\lbrace x(t)\rbrace</math>
 +
 
 +
Apply some arithmetic
 +
 
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::<math> \mathcal{F}\lbrace y(t)\rbrace = \frac{1}{j\omega + 4}\mathcal{F}\lbrace x(t)\rbrace</math>
 +
 
 +
From the main concepts the frequency response is the portion in front of <math>\mathcal{F}\lbrace x(t)\rbrace</math>
 +
 
 +
:::<math>H(j\omega) = \frac{1}{j\omega + 4}</math>
 +
 
 +
====b====
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The fundamental relationship from the main concepts
 +
 
 +
can be used to solve part b
 +
:: <math>h(t) = \mathcal{F}^{-1}\{ H(j\omega) \} = \mathcal{F}^{-1}\Big\{ \frac{1}{4 + j\omega} \Big\}</math>
 +
 
 +
:: <math> = \frac{1}{2\pi}\int_{-\infty}^{\infty}\frac{e^{j\omega t}}{4+j\omega}\,d\omega </math>
 +
 
 +
I don't know how to evaluate this integral, I'm not sure if it can be. Any thoughts?
 +
 
 +
The integral as it stands cannot be evaluated.  This is one of those problems where you have to find a function whose FT is <math>\frac{1}{j\omega +4}</math><br>
 +
 
 +
We need
 +
: <math>\int_{-\infty}^{\infty}h(t)e^{-j\omega t}dt = \frac{1}{j\omega +4}</math>
 +
 
 +
Saying <math>h(t) = e^{-4t}u(t)\,</math> accomplishes this, and the table confirms it.
 +
 
 +
 
 +
'''Using the table'''
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 +
Because the function <math>H\big(j\omega)</math> has the form <math> \frac{1}{a + j\omega}\,,a = 4 </math> the inverse Fourier transform is of the type <math>e^{-at}u\big(t) </math>
 +
 
 +
This results in the final answer of
 +
 
 +
:: <math>h(t) = e^{-4t}u\big(t)</math>

Latest revision as of 16:07, 8 October 2008

Lecture 17 PDF requires Adobe Reader 7 or greater

Main Concepts

Fourier Transforms and the frequency response of a system.

$ Y\big(\omega) = H(j \omega) X(\omega) $

The frequency response has a fundamental relationship to the unit step response through Fourier Transforms as follows

$ H(j\omega\big) = \mathcal{H}(\omega) = \mathcal{F}\{ h(t) \} $

From this, the unit step response can be found

$ h(t) = \mathcal{F}^{-1}\{ H(j\omega) \} $

Differential stuff....

Exercises

Tricky Fourier Transform

Compute the Fourier Transform of $ u\big(t-3) $

Dealing with Differentials

Given:

$ \frac{d y(t) }{dx} + 4y(t) = x(t) $
a) What is the frequency response of the system?
b)What is the unit impulse response h(t) of the system?

a

First transform into the frequency domain

$ \mathcal{F}\lbrace\frac{d y(t) }{dx} + 4y(t) = x(t)\rbrace $

Apply linearity

$ \mathcal{F}\lbrace\frac{d y(t) }{dx}\rbrace + 4\mathcal{F}\lbrace y(t)\rbrace = \mathcal{F}\lbrace x(t)\rbrace $

Use the differentiation property to reduce the differential term


$ j\omega\mathcal{F}\lbrace y(t)\rbrace + 4\mathcal{F}\lbrace y(t)\rbrace = \mathcal{F}\lbrace x(t)\rbrace $

Apply some arithmetic

$ \mathcal{F}\lbrace y(t)\rbrace = \frac{1}{j\omega + 4}\mathcal{F}\lbrace x(t)\rbrace $

From the main concepts the frequency response is the portion in front of $ \mathcal{F}\lbrace x(t)\rbrace $

$ H(j\omega) = \frac{1}{j\omega + 4} $

b

The fundamental relationship from the main concepts

can be used to solve part b

$ h(t) = \mathcal{F}^{-1}\{ H(j\omega) \} = \mathcal{F}^{-1}\Big\{ \frac{1}{4 + j\omega} \Big\} $
$ = \frac{1}{2\pi}\int_{-\infty}^{\infty}\frac{e^{j\omega t}}{4+j\omega}\,d\omega $

I don't know how to evaluate this integral, I'm not sure if it can be. Any thoughts?

The integral as it stands cannot be evaluated. This is one of those problems where you have to find a function whose FT is $ \frac{1}{j\omega +4} $

We need

$ \int_{-\infty}^{\infty}h(t)e^{-j\omega t}dt = \frac{1}{j\omega +4} $

Saying $ h(t) = e^{-4t}u(t)\, $ accomplishes this, and the table confirms it.


Using the table

Because the function $ H\big(j\omega) $ has the form $ \frac{1}{a + j\omega}\,,a = 4 $ the inverse Fourier transform is of the type $ e^{-at}u\big(t) $

This results in the final answer of

$ h(t) = e^{-4t}u\big(t) $

Alumni Liaison

Correspondence Chess Grandmaster and Purdue Alumni

Prof. Dan Fleetwood