Find the integral, using techniques from this or the previous chapter. ∫x/√16+8x^2 dx.

asked Dec 23, 2021 85.0k views

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Find the integral, using techniques from this or the previous chapter.
∫x/√16+8x^2 dx.

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$\displaystyle\int\frac x{√(16+8x^2)}\,\mathrm dx$

Let
$u=16+8x^2\implies\mathrm du=16x\,\mathrm dx$ . Then the integral becomes

$\displaystyle\frac1{16}\int(\mathrm du)/(\sqrt u)\,\mathrm du=\frac18\sqrt u+C$

$=\frac18√(16+8x^2)+C$

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