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$int(2e^x - 2e^-x) / (e^x+e^-x)^2 dx =$ ?

1 Answer

Jan 31, 2017

$-sechx+C$

Explanation:

$sinhx=(e^x-e^(-x))/2$ and $coshx=(e^x+e^(-x))/2$ then

$int(2e^x - 2e^-x) / (e^x+e^-x)^2 dx = int tanhx/coshx dx = -sechx+C$

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