How to properly set up partial fractions for repeated denominator factors I was just trying to solv

Dwllane4

Dwllane4

Answered question

2022-06-26

How to properly set up partial fractions for repeated denominator factors
I was just trying to solve a problem that had the following item which I needed to split into separate generating functions:
x ( 1 2 x ) 2 ( 1 5 x )
I had assumed I needed to split it into:
A 1 2 x + B 1 2 x + C 1 5 x
But according to Wolfram Alpha it appears I had to split it into:
A 1 2 x + B ( 1 2 x ) 2 + C 1 5 x
Can anyone explain the intuition behind this? Is this a general rule that when you have a repeated factor in the denominator, you split it into all powers of that factor?

Answer & Explanation

Cristopher Barrera

Cristopher Barrera

Beginner2022-06-27Added 24 answers

Consider the simplest of cases.
ξ x 3
Assuming ξ is some polynomial, one could carry on long division to determine the quotient and the remainder. Thus one could get
ξ x 3 = q ( x ) + r ( x ) x 3
Now what can we say for certain about r ( x ) ? We can say that it is the remainder thus of smaller degree than x 3 . The most general possible polynomial of degree 2 or smaller is A + B x + C x 2 . Then
r ( x ) x 3 = A + B x + C x 2 x 3
Further more, we can split the right side
r ( x ) x 3 = A x 3 + B x x 3 + C x 2 x 3
which becomes
r ( x ) x 3 = A x 3 + B x 2 + C x
Thus the above would be a sensible what to try to split any proper fraction r ( x ) x 3 Moreover, the similar idea would hold for r ( x ) ( x + a ) 3 , meaning a sensible way to split it would be
r ( x ) ( x + a ) 3 = A ( x + a ) 3 + B ( x + a ) 2 + C ( x + a )
hope that helps..
Lovellss

Lovellss

Beginner2022-06-28Added 5 answers

Yep - if there's a factor of ( x a ) k in the denominator, you need to include 1 x a , 1 ( x a ) 2 , . . . , 1 ( x a ) k terms in your expansion.
Note that in your attempt, you could combine the first two terms to A + B 1 2 x , making one of those constants redundant.

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