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Today I had an exam and I mixed up the integration by parts formula. The question was to integrate $ \int\nolimits_0^\infty \frac{e^{-at} - e^{-bt}}{t} \text{d}t $

I will try solve this again with the right formula when I arrive home. I would appreciate if somebody could tell me the solution so I can double check and maybe give a hint to another way of solving this instead of integration by parts (if possible).

  • 0
    [Another related question.](https://math.stackexchange.com/questions/61828)2017-10-31

2 Answers 2

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I may as well give an answer:

Note $ \frac{ e^{-at} - e^{-bt} }{t} = \int^b_a e^{-xt} dx $ so our integral is

$ \int^{\infty}_0 \int^b_a e^{-xt} dx dt = \int^b_a \int^{\infty}_0 e^{-xt} dt dx $ $ = \int^b_a \frac{1}{x} dx = \log(b/a) $

This is a general method, and often this whole process is compressed into a well known integral called Frullani's Integral.

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    nice solution you gave!2012-08-05
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By differentiating under the integral sign. Fix $a$, and let

$ g(b) = \int_{0}^\infty \frac{e^{-at} - e^{-bt}}{t} dt. $

Differentiating w.r.t. $b$, we get g'(b) = \frac{d}{db}\int_{0}^\infty \frac{e^{-at} - e^{-bt}}{t} dt = \int_{0}^{\infty} \frac{\partial}{\partial b} \frac{e^{-at} - e^{-bt}}{t} dt. Doing the differentiation, g'(b) = \int_{0}^{\infty} e^{-bt} dt = - \left.\frac{e^{-bt}}{b} \right|_{0}^{\infty} = \frac{1}{b}. Thus we must have $g(b) = \ln b + C$ for some constant $C$. To determine $C$, plug in $a$, and use the fact that $g(a) = 0$.

Note. I am yet to convince myself that all the steps of the proof are rigorous. I will edit my answer later if additional argument is necessary.

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    @Ragib Sure. I will delete my comments now (and this one in a little while).2011-10-03