integration by parts/substitution
- Thread starter cheffy
- Start date
Use the substitution
\(\displaystyle \L y^2 = x \text{ with } y>0\)
\(\displaystyle \L 2y dy = dx\)
Then your integral becomes
\(\displaystyle \L \int e^{-y} 2 y dy = 2 \int y e^{-y} dy\)
Now use by parts with \(\displaystyle u=y\) and \(\displaystyle dv = e^{-y} dy\) ...
Oops.. Galactus was faster than me, never mind...
\(\displaystyle \L y^2 = x \text{ with } y>0\)
\(\displaystyle \L 2y dy = dx\)
Then your integral becomes
\(\displaystyle \L \int e^{-y} 2 y dy = 2 \int y e^{-y} dy\)
Now use by parts with \(\displaystyle u=y\) and \(\displaystyle dv = e^{-y} dy\) ...
Oops.. Galactus was faster than me, never mind...
skeeter
Elite Member
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- Dec 15, 2005
- Messages
- 3,216
let \(\displaystyle \L t = -\sqrt{x}\)
\(\displaystyle \L dt = -\frac{1}{2\sqrt{x}} dx\)
\(\displaystyle \L dx = -2\sqrt{x} dt = 2t dt\)
\(\displaystyle \L \int e^{-\sqrt{x}} dx\)
substitute ...
\(\displaystyle \L \int 2t e^t dt\)
integration by parts yields the antiderivative ...
\(\displaystyle \L 2t e^t - 2e^t + C = 2e^t(t - 1) + C\)
back-substitute ...
\(\displaystyle \L -2e^{-\sqrt{x}}(\sqrt{x} + 1) + C\)
\(\displaystyle \L dt = -\frac{1}{2\sqrt{x}} dx\)
\(\displaystyle \L dx = -2\sqrt{x} dt = 2t dt\)
\(\displaystyle \L \int e^{-\sqrt{x}} dx\)
substitute ...
\(\displaystyle \L \int 2t e^t dt\)
integration by parts yields the antiderivative ...
\(\displaystyle \L 2t e^t - 2e^t + C = 2e^t(t - 1) + C\)
back-substitute ...
\(\displaystyle \L -2e^{-\sqrt{x}}(\sqrt{x} + 1) + C\)