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Professor Bell, You showed in class that we cant evaluate the integral around the curved portion for problem VI.12.2 using the basic estimate because when <math>Theta = Pi/4</math> it turns out to be one. Can we use the basic estimate method for VI.12.1 because now <math>Theta= pi/8</math> which should not cause a problem. Also on your lecture on the 14th when you started problem VI.12.2 the integral over the lower curve, you evaluated it as <math>sqrt(pi)/2</math> shouldn't it be <math>sqrt(pi)/2sqrt(2)</math> ?
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Professor Bell, You showed in class that we can't show that the integral around the curved portion for problem VI.12.2 goes to zero using the basic estimate because when <math>\theta = \pi/4</math> it turns out to be one. Can we use the basic estimate method for VI.12.1 because now <math>T\theta= \pi/8</math>, which should not cause a problem. --[[User:Kfernan|Kevin Fernandes]] 10:05, 20 October 2009 (UTC)
--[[User:Kfernan|Kfernan]] 10:05, 20 October 2009 (UTC)
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Kevin, yes, the basic estimate works just fine on the curved part for VI.12.1. --[[User:Bell|Steve Bell]]
  
 
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II) Integrate along the curve from <math>t=0</math> to <math>t=\frac{\pi}{8}</math> and show that this equals zero.  
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II) Integrate along the curve from <math>t=0</math> to <math>t=\frac{\pi}{8}</math> and show that this tends to zero.  
  
  
III) Integrate along the <math>\frac{\pi}{8}</math> line.  Since the total integral along the curve equals zero, this integral must be the negative of the integral found in (I).  To do this integral, let <math>z=texp(i\frac{\pi}{8})</math>.  The real part is what we are looking for.  Hint: <math>cos(\frac{\pi}{8})=\frac{1}{2}\sqrt{2+\sqrt{2}}</math>, and <math>sin(\frac{\pi}{8})=\frac{1}{2}\sqrt{2-\sqrt{2}}</math>.
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III) Integrate along the <math>\frac{\pi}{8}</math> line.  Since the total integral along the closed curve equals zero, this integral must be the negative of the integral found in (I).  To do this integral, let <math>z=texp(i\frac{\pi}{8})</math>.  The real part is what we are looking for.  Hint: <math>cos(\frac{\pi}{8})=\frac{1}{2}\sqrt{2+\sqrt{2}}</math>, and <math>sin(\frac{\pi}{8})=\frac{1}{2}\sqrt{2-\sqrt{2}}</math>.
  
  
 
-Alex Krzywda
 
-Alex Krzywda
 
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Note:  In VI.12.1, it will be necessary to make a simple change of variables <math>u=t/\sqrt{\sqrt{2}}</math> to get the integral in the final answer.  --[[User:Bell|Steve Bell]]

Revision as of 08:26, 20 October 2009


Homework 6

HWK 6 problems

Professor Bell, could you post the notes from friday? Thanks. --Yu Suo 16:31, 18 October 2009 (UTC)

Yu, they are now on the MA 425 Home Page under

Lecture 10/16/2009 --Steve Bell


Professor Bell, You showed in class that we can't show that the integral around the curved portion for problem VI.12.2 goes to zero using the basic estimate because when $ \theta = \pi/4 $ it turns out to be one. Can we use the basic estimate method for VI.12.1 because now $ T\theta= \pi/8 $, which should not cause a problem. --Kevin Fernandes 10:05, 20 October 2009 (UTC)

Kevin, yes, the basic estimate works just fine on the curved part for VI.12.1. --Steve Bell


Problem 12.1

I) Integrate along the real axis. Let $ z = t $.


II) Integrate along the curve from $ t=0 $ to $ t=\frac{\pi}{8} $ and show that this tends to zero.


III) Integrate along the $ \frac{\pi}{8} $ line. Since the total integral along the closed curve equals zero, this integral must be the negative of the integral found in (I). To do this integral, let $ z=texp(i\frac{\pi}{8}) $. The real part is what we are looking for. Hint: $ cos(\frac{\pi}{8})=\frac{1}{2}\sqrt{2+\sqrt{2}} $, and $ sin(\frac{\pi}{8})=\frac{1}{2}\sqrt{2-\sqrt{2}} $.


-Alex Krzywda


Note: In VI.12.1, it will be necessary to make a simple change of variables $ u=t/\sqrt{\sqrt{2}} $ to get the integral in the final answer. --Steve Bell

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Ph.D. on Applied Mathematics in Aug 2007. Involved on applications of image super-resolution to electron microscopy

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