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For part a) I got phi(x)=3x.  For the kernel (part c)) I got {0,5,10,15,20,25,30,35,40,45}.  I wasn't really sure how to do the image and the inverse though.  Does anyone have any ideas?  I thought that the inverse might be 3*ker(phi) by theorem 10.6.1, but I wasnt sure.  --[[User:Clwarner|Clwarner]] 14:44, 18 February 2009 (UTC)
 
For part a) I got phi(x)=3x.  For the kernel (part c)) I got {0,5,10,15,20,25,30,35,40,45}.  I wasn't really sure how to do the image and the inverse though.  Does anyone have any ideas?  I thought that the inverse might be 3*ker(phi) by theorem 10.6.1, but I wasnt sure.  --[[User:Clwarner|Clwarner]] 14:44, 18 February 2009 (UTC)
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Yea I got the same thing in part a by showing:<br>
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7^2 = 49 = -1 mod 50<br>
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φ(-1) = φ(49) = φ(7*7) = 7*φ(7) = 7*6 = 42 = 12 mod 15<br>
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φ(1) = -φ(-1) = -12 = 3 mod 15<br>
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Therefore, φ(x) = 3x.  The answer checks out, but I don't know if this is the right way to get it.  I'm also not certain on how to get the image and the inverse.

Revision as of 10:15, 18 February 2009

For part a) I got phi(x)=3x. For the kernel (part c)) I got {0,5,10,15,20,25,30,35,40,45}. I wasn't really sure how to do the image and the inverse though. Does anyone have any ideas? I thought that the inverse might be 3*ker(phi) by theorem 10.6.1, but I wasnt sure. --Clwarner 14:44, 18 February 2009 (UTC)


Yea I got the same thing in part a by showing:
7^2 = 49 = -1 mod 50
φ(-1) = φ(49) = φ(7*7) = 7*φ(7) = 7*6 = 42 = 12 mod 15
φ(1) = -φ(-1) = -12 = 3 mod 15
Therefore, φ(x) = 3x. The answer checks out, but I don't know if this is the right way to get it. I'm also not certain on how to get the image and the inverse.

Alumni Liaison

has a message for current ECE438 students.

Sean Hu, ECE PhD 2009