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==Share your answers below==
 
==Share your answers below==
 
You will receive feedback from your instructor and TA directly on this page. Other students are welcome to comment/discuss/point out mistakes/ask questions too!
 
You will receive feedback from your instructor and TA directly on this page. Other students are welcome to comment/discuss/point out mistakes/ask questions too!
 +
----
 +
<span style="color:green"> TA's comments: Any complex number can be written as one single complex exponential. i.e.
 +
 +
<math>a+jb=\sqrt{a^2+b^2}e^{j\theta}, where\  tan\theta = \frac{b}{a}</math> </span>
 
----
 
----
 
===Answer 1===
 
===Answer 1===
<span style="color:green"> TA's comments: Any complex number can be written as one single complex exponential. i.e. <math>a+jb=\sqrt{a^2+b^2}e^{j\theta}, where\  tan\theta = \frac{b}{a}</math> </span>
 
 
===Answer 2===
 
 
Set <math>x=3+j3</math>.  Note that <math>|x|>1</math>.
 
Set <math>x=3+j3</math>.  Note that <math>|x|>1</math>.
  
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:<span style="color:blue">Instructor's comments: There is a much shorter solution using the finite geometric series formula. Note that, when the sum is finite, one does not have to worry about convergence. In particular, the formula works even if the norm of the argument is greater than one. -pm </span>
 
:<span style="color:blue">Instructor's comments: There is a much shorter solution using the finite geometric series formula. Note that, when the sum is finite, one does not have to worry about convergence. In particular, the formula works even if the norm of the argument is greater than one. -pm </span>
  
===Answer 3===
+
===Answer 2===
 
  <math>\sum_{n=-42}^5 3^{n+1} (1+j)^n = \sum_{n=-42}^5 3^{n+1} (\sqrt{2} e^{j\pi/4})^n</math>
 
  <math>\sum_{n=-42}^5 3^{n+1} (1+j)^n = \sum_{n=-42}^5 3^{n+1} (\sqrt{2} e^{j\pi/4})^n</math>
 
:By letting l = n+42,
 
:By letting l = n+42,
Line 40: Line 41:
 
:This is as far as I could go trying to type these long equations...
 
:This is as far as I could go trying to type these long equations...
  
===Answer 4===
+
===Answer 3===
 
use finite geometric series formula <math>S=\frac{a_1(1-r^n)}{1-r};a1=3,r=(3+3j)^(-42),n=47,then S=-4037-j2692</math>     
 
use finite geometric series formula <math>S=\frac{a_1(1-r^n)}{1-r};a1=3,r=(3+3j)^(-42),n=47,then S=-4037-j2692</math>     
  
===Answer 5===
+
===Answer 4===
 
<math>\sum_{k=0}^{n-1}ar^k=a\frac{1-r^n}{1-r}</math>
 
<math>\sum_{k=0}^{n-1}ar^k=a\frac{1-r^n}{1-r}</math>
  
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</math>
 
</math>
  
===Answer 6===
+
===Answer 5===
 
By comparing with the formula:
 
By comparing with the formula:
 
  <math>\sum_{k=0}^{n-1}ar^k=a\frac{1-r^n}{1-r}</math>
 
  <math>\sum_{k=0}^{n-1}ar^k=a\frac{1-r^n}{1-r}</math>
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<math> 3\frac{1-(3(1+j))^6}{1-3(1+j)}+3\frac{1-(3(1+j))^{-41}}{1-(3(1+j))^{-1}}-3 </math>
 
<math> 3\frac{1-(3(1+j))^6}{1-3(1+j)}+3\frac{1-(3(1+j))^{-41}}{1-(3(1+j))^{-1}}-3 </math>
  
===Answer 7===
+
===Answer 6===
 
<math>\begin{align}
 
<math>\begin{align}
 
\sum_{n=-42}^5 3^{n+1} (1+j)^n &= 3\sum_{-42}^{5} (3+3j)^n\\
 
\sum_{n=-42}^5 3^{n+1} (1+j)^n &= 3\sum_{-42}^{5} (3+3j)^n\\

Latest revision as of 08:23, 11 November 2013


Practice Question on "Digital Signal Processing"

Topic: Review of summations


Question

Simplify this summation:

$ \sum_{n=-42}^5 3^{n+1} (1+j)^n $


Share your answers below

You will receive feedback from your instructor and TA directly on this page. Other students are welcome to comment/discuss/point out mistakes/ask questions too!


TA's comments: Any complex number can be written as one single complex exponential. i.e.

$ a+jb=\sqrt{a^2+b^2}e^{j\theta}, where\ tan\theta = \frac{b}{a} $


Answer 1

Set $ x=3+j3 $. Note that $ |x|>1 $.

$ \sum_{n=-42}^5 3^{n+1} (1+j)^n = 3\sum_{n=-42}^5 x^n = 3\sum_{n=-5}^{42}x^{-n} = 3\sum_{n=-5}^{42}(\frac{1}{x})^n  $
$  = 3(\sum_{n=-5}^{\infty}(\frac{1}{x})^n - \sum_{n=43}^{\infty}(\frac{1}{x})^n) = 3(\frac{(\frac{1}{x})^{-5}}{1-\frac{1}{x}} - \frac{(\frac{1}{x})^{43}}{1-\frac{1}{x}}) = 3(\frac{x^6-x^{-42}}{x-1}) = -4037-j2692  $
Instructor's comments: There is a much shorter solution using the finite geometric series formula. Note that, when the sum is finite, one does not have to worry about convergence. In particular, the formula works even if the norm of the argument is greater than one. -pm

Answer 2

$ \sum_{n=-42}^5 3^{n+1} (1+j)^n = \sum_{n=-42}^5 3^{n+1} (\sqrt{2} e^{j\pi/4})^n $
By letting l = n+42,
$ \sum_{l=0}^{47} 3^{l-41} (\sqrt{2} e^{j\pi/4})^{l-42} =        3^{-41}(\sqrt{2}e^{j\pi/4})^{-42}\sum_{l=0}^{47} (3\sqrt{2}e^{j\pi/4})^l =         \frac{1 - (3\sqrt{2}e^{j\pi/4})^{48}}{1 - 3\sqrt{2}e^{j\pi/4}}3^{-41}(\sqrt{2}e^{j\pi/4})^{-42}   $
This is as far as I could go trying to type these long equations...

Answer 3

use finite geometric series formula $ S=\frac{a_1(1-r^n)}{1-r};a1=3,r=(3+3j)^(-42),n=47,then S=-4037-j2692 $

Answer 4

$ \sum_{k=0}^{n-1}ar^k=a\frac{1-r^n}{1-r} $


$ \begin{align} \sum_{n=-42}^5 3^{n+1} (1+j)^n &= 3\sum_{n=-42}^5 (3(1+j))^n \\ &=3\frac{1-(3(1+j))^6}{1-3(1+j)}+3\frac{1-(3(1+j))^{-41}}{1-(3(1+j))^{-1}}-3 \end{align} $

Answer 5

By comparing with the formula:

$ \sum_{k=0}^{n-1}ar^k=a\frac{1-r^n}{1-r} $

We note:

       a = 3
       r = 3(1 + j)
       

Then we can break the sum into the part where n is negative, and the part where n is positive. By comparing with the formula again, we find the sum equal to:

$ 3\frac{1-(3(1+j))^6}{1-3(1+j)}+3\frac{1-(3(1+j))^{-41}}{1-(3(1+j))^{-1}}-3 $

Answer 6

$ \begin{align} \sum_{n=-42}^5 3^{n+1} (1+j)^n &= 3\sum_{-42}^{5} (3+3j)^n\\ &=3\frac{(3+3j)^{-42}-(3+3j)^5}{1-(3+3j)} \end{align} $

by finite geometric series

And if you want to simplify down farther be my guest, although I believe there is probably a quick trick I am missing atm.



Back to ECE438 Fall 2011 Prof. Boutin

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