How do you find the derivative of xe^{x}?

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I came across a derivative question on my exam that involved finding the derivative of

xe^{x}

and I realized I wasn't sure what to do with it... I figured you could either use

f'(x^{n}) = nx^{n-1}

and come out with

xe^{x}

or maybe since x is a variable you need to use the multiplication rule?

f'g + g'f

= e^{x} + xe^{x}

(Or maybe something entirely different - this is still new to me :rolleyes:)
 
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You answered your own question. You use the product rule and come out with xe^x+e^x. Good job.

EDIT: Some teachers would prefer you to simplify your problem into (x+1)e^x, but either way, you got the right answer.
 

Thread 'Prove that the integral is equal to ##\pi^2/8##'

Prove $$\int\limits_0^{\sqrt2/4}\frac{1}{\sqrt{x-x^2}}\arcsin\sqrt{\frac{(x-1)\left(x-1+x\sqrt{9-16x}\right)}{1-2x}} \, \mathrm dx = \frac{\pi^2}{8}.$$ Let $$I = \int\limits_0^{\sqrt 2 / 4}\frac{1}{\sqrt{x-x^2}}\arcsin\sqrt{\frac{(x-1)\left(x-1+x\sqrt{9-16x}\right)}{1-2x}} \, \mathrm dx. \tag{1}$$ The representation integral of ##\arcsin## is $$\arcsin u = \int\limits_{0}^{1} \frac{\mathrm dt}{\sqrt{1-t^2}}, \qquad 0 \leqslant u \leqslant 1.$$ Plugging identity above into ##(1)## with ##u...
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