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For a Homework, I need $\int \frac{x}{(x-1)^2} dx$ as an intermediate result. Using partial integration, I derive $x$ and integrate $\frac{1}{(x-1)^2}$, getting: $ \frac{-x}{x-1} + \int \frac{1}{x-1} dx = \ln(x-1)+\frac{x}{x-1} $ WolframAlpha tells me this is wrong (it gives me $\frac{1}{1-x}$ where I have $\frac{x}{x-1}$). If I and WA disagree the error is usually somewhere on my side. Unfortunately WA uses partial fractions there instead of partial integration, so I'm not sure which step I screwed up. Supposedly $\int f'g dx = fg - \int fg' dx$ right?

(I leave the constant +C out because it's not relevant for the problem I need this for).

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    By the way, it might have been easier to substitute $u=x-1$, then divide through and integrate.2012-06-17

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You’ve a sign error: you should have $\ln(x-1)-\frac{x}{x-1}\;.$

Now note that

$\frac{x}{x-1}=1+\frac1{x-1}\;,$

so your (corrected) answer can be written $\ln(x-1)-1-\frac1{x-1}=\ln(x-1)+\frac1{1-x}-1\;.$

Your (corrected) answer differs from WA’s by a constant, which is absorbed in the constant of integration; both are perfectly good antiderivatives of the given function.

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    Thanks. I "fixed" the sign when I wrote this by accident (I had it right in my notes, then for some reason when I wrote it here I thought it was wrong).2012-06-17
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the result is : $\ln|x-1| - \frac x{x-1} + C$ where $C$ is some constant. If $C=1$ you get : $\ln |x-1| + \frac 1{1-x}$ The finaly result can be expressed : $F(x) = \ln |x-1| + \frac 1{1-x} + \lambda$ where $\lambda$ is some constant. Precesely : $F(x) = \ln (x-1) + \frac 1{1-x} + \lambda$ on the intervale $]1,+\infty[$ and: $F(x) = \ln (1-x) + \frac 1{1-x} + \lambda$ on the intervale: $]-\infty ,1[$