How do you integrate #int x^2 / (x-1)^3# using partial fractions?
1 Answer
I got
With partial fractions where the denominator has a multiplicity of
#int (x^2)/(x-1)^3dx = int A/(x-1) + B/(x-1)^2 + C/(x-1)^3dx#
Now, we should get common denominators so that we can set the resultant fraction equal to the starting integrand.
That way, we can equate each coefficient to the numerator coefficients and find
Ignoring the integral symbols for now, we can focus on the integrand:
#= (A(x-1)^2)/(x-1)^3 + (B(x-1))/(x-1)^3 + C/(x-1)^3#
Combine the fractions:
#= (A(x-1)^2 + B(x-1) + C)/(x-1)^3#
Distribute the numerator terms:
#= (Ax^2 - 2Ax + A + Bx - B + C)/cancel((x-1)^3) = (x^2)/cancel((x-1)^3)#
Next, we can rearrange the terms to turn this into the form
Remember that this form must include the
#(A)x^2 \mathbf(color(highlight)(+)) (-2A + B)x \mathbf(color(highlight)(+)) (A - B + C) = x^2#
Thus, we have the following system of equations:
#color(green)(A = 1)#
#-2A + B = 0#
#A - B + C = 0#
Knowing
#2A = B => color(green)(B = 2)#
#A - B + C = 0 => 1 - 2 + C = 0 => color(green)(C = 1)#
Thus, our resultant integrals are calculated as follows:
#color(blue)(int (x^2)/(x-1)^3dx) = int 1/(x-1) + 2/(x-1)^2 + 1/(x-1)^3dx#
#= int 1/(x-1)dx + 2int1/(x-1)^2dx + int1/(x-1)^3dx#
#= int 1/(x-1)dx + 2int(x-1)^(-2)dx + int(x-1)^(-3)dx#
#= ln|x-1| + (2(x-1)^(-1))/(-1) + ((x-1)^(-2))/(-2)#
#= color(blue)(ln|x-1| - 2/(x-1) - 1/(2(x-1)^2) + C)#
