Fourier Transform Properties: Difference between revisions

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<math>\int_{-\infty}^{\infty}sin(2\pi f_0t)g(t)e^{-j2\pi ft}dt = \int_{-\infty}^{\infty} \frac{1}{j2}[e^{j2\pi f_0t}-e^{-j2\pi f_0t}]g(t)e^{-j2\pi ft}dt\!</math><br>
<math>\int_{-\infty}^{\infty}sin(2\pi f_0t)g(t)e^{-j2\pi ft}dt = \int_{-\infty}^{\infty} \frac{1}{j2}[e^{j2\pi f_0t}-e^{-j2\pi f_0t}]g(t)e^{-j2\pi ft}dt\!</math><br>


Now integrating gives us, ''(<math> ** </math> I believe you are missing 'j' in the denominator of the second term)''
Now integrating gives us,


<math>\int_{-\infty}^{\infty} \frac{1}{j2}[e^{j2\pi f_0t}-e^{-j2\pi f_0t}]g(t)e^{-j2\pi ft}dt = \frac{1}{j2}\int_{-\infty}^{\infty}e^{-j2\pi (f-f_0)t}g(t)dt-\frac{1}{2}\int_{-\infty}^{\infty}e^{-j2\pi (f+f_0)t}g(t)dt = \frac{1}{j2}G(f-f_0)- \frac{1}{j2}G(f+f_0)\!</math><br>
<math>\int_{-\infty}^{\infty} \frac{1}{j2}[e^{j2\pi f_0t}-e^{-j2\pi f_0t}]g(t)e^{-j2\pi ft}dt = \frac{1}{j2}\int_{-\infty}^{\infty}e^{-j2\pi (f-f_0)t}g(t)dt-\frac{1}{j2}\int_{-\infty}^{\infty}e^{-j2\pi (f+f_0)t}g(t)dt = \frac{1}{j2}G(f-f_0)- \frac{1}{j2}G(f+f_0)\!</math><br>




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Also reviewed by [[Nick Christman]]
Also reviewed by [[Nick Christman]]
-- Looks good.
-- Looks good. I found one typo (I think), see <math> ** </math>. Good job Josh! <br> <br> <br>

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Revision as of 16:08, 8 November 2009

Some properties to choose from if you are having difficulty....

Max Woesner

1. Find

Recall , so

Also recall ,so

Now

So


reviewed by Joshua Sarris


2. Find

Recall
Similarly,
So
Now

Note that

Added step per Nick's suggestion

Substituting gives us

And

Since is a simply a dummy variable, we can conclude that:



"I was going to make a comment on the delta identity, but after looking at it closer I think it is fine. One comment I have is that you might consider adding one more step, showing the delta function in the integral and pulling the integrands together to make it look like a double integral -- it isn't necessary and I understood the transition, but it helps the proof/identity look a little more complete. Good job!"

Example:

Reviewed by Nick Christman


Nick Christman

Note: After scratching my head for a couple of hours, I decided that I would try a different Fourier Property. In fact, I chose a property that would need to be defined in order to show my second property.

1. Find

This is a fairly straightforward property and is known as complex modulation

Combining terms, we get:


Now let's make the following substitution

This now gives us a surprisingly familiar function:


This looks just like !

We can now conclude that:



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2. Find

-- Using the above definition of complex modulation and the definition from class of a time delay (a.k.a "the slacker function"), I will attempt to show a hybrid of the two...

By definition we know that:

Rearranging terms we get:


Now lets make the substitution .
This leads us to:

After some simplification and rearranging terms, we get:

Rearranging the terms yet again, we get:

We know that the exponential in terms of is simply a constant and because of the Fourier Property of complex modualtion, we finally get:


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Joshua Sarris

Find


Recall ,

so expanding we have,


Also recall ,

so we can convert to exponentials.


Now integrating gives us,



So we now have the identity,

or rather

Reviewed by Max Woesner

Also reviewed by Nick Christman -- Looks good.


Kevin Starkey

1. Find
First we know that
We also know that
(+) Which gives us
Since is only non-zero at f = 0 this yeilds

So

Reviewed by Nick Christman -- I fixed one typo (needed a minus sign in the exponential). I'm not sure about the step (+). I would like to believe it, but I'm just not sure that it works... if you are sure it works, maybe add a little comment to explain it a little better. Other than that, it looks good!


2. Find
First
or rearranging we get
Which leads to
So


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