How do you express (y^2 + 1) / (y^3 - 1) in partial fractions?

1 Answer
George C.
Dec 22, 2016

(y^2+1)/(y^3-1) = 2/(3(y-1))+(y-1)/(3(y^2+y+1))

Explanation:

(y^2+1)/(y^3-1) = (y^2+1)/((y-1)(y^2+y+1))

color(white)((y^2+1)/(y^3-1)) = A/(y-1)+(By+C)/(y^2+y+1)

color(white)((y^2+1)/(y^3-1)) = (A(y^2+y+1)+(By+C)(y-1))/(y^3-1)

color(white)((y^2+1)/(y^3-1)) = ((A+B)y^2+(A-B+C)y+(A-C))/(y^3-1)

Equating coefficients we get three simultaneous linear equations:

A+B=1

A-B+C=0

A-C=1

Adding all three equations, we find:

3A = 2

So A=2/3

Then from the first equation:

B = 1-A = 1-2/3 = 1/3

From the third equation:

C=A-1 = 2/3 - 1 = -1/3

So:

(y^2+1)/(y^3-1) = 2/(3(y-1))+(y-1)/(3(y^2+y+1))

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