How do you integrate #int (1-2x^2)/((x-8)(x+6)(x-7)) # using partial fractions?

1 Answer
George C.
Oct 12, 2016

#int (1-2x^2)/((x-8)(x+6)(x-7)) dx#

#= -127/14 ln abs(x-8) -71/182ln abs(x+6)+97/13 ln abs(x-7) + C#

Explanation:

#(1-2x^2)/((x-8)(x+6)(x-7)) = a/(x-8)+b/(x+6)+c/(x-7)#

Use Heaviside's cover up method to find #a, b, c#:

#a = (1-2(color(blue)(8))^2)/(((color(blue)(8))+6)((color(blue)(8))-7)) = (1-128)/((14)(1)) = -127/14#

#b = (1-2(color(blue)(-6))^2)/(((color(blue)(-6))-8)((color(blue)(-6))-7)) = (1-72)/((-14)(-13)) = -71/182#

#c = (1-2(color(blue)(7))^2)/(((color(blue)(7))-8)((color(blue)(7))+6)) = (1-98)/((-1)(13)) = 97/13#

So:

#int (1-2x^2)/((x-8)(x+6)(x-7)) dx#

#= int -(127/14)(1/(x-8)) -(71/182)(1/(x+6))+(97/13)(1/(x-7)) dx#

#= -127/14 ln abs(x-8) -71/182ln abs(x+6)+97/13 ln abs(x-7) + C#

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