What is the domain and derivative of f(x)=ln(2x/sqrt{2 x})?

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asked Jan 16, 2018 111k views

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Gellezzz · Answer 1 · 2018-01-22T20:15:12+0000

$\ln x$ is defined for
x>0

, so for
$\ln(2x)/(√(2x))$ to be defined, you have to require
(2x)/(√(2x))>0

.

Since
$x\\eq0$ in this interval, you can simplify the argument slightly:

$(2x)/(√(2x))=(2x)/(\sqrt2\sqrt x)=\sqrt2\sqrt x=√(2x)$

This means
f(x)

will be defined whenever
√(2x)>0

, and this happens for all positive

.

Computing the derivative is an exercise in applying the chain rule:

$(\mathrm d)/(\mathrm dx)f(x)=((\mathrm d)/(\mathrm dx)√(2x))/(√(2x))=((\sqrt2)/(2\sqrt x))/(√(2x))=\frac1{2x}$

What is the domain and derivative of f(x)=ln(2x/sqrt{2 x})?

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