The local maximum value of the function, f x = 2 x x 2 , x > 0 , is

f ' ( x ) = 0 for maximum value Let y = 2 x x 2 ln y = x 2 ln 2 x 1 y y ' = 2 x ln 2 x + x 2 1 2 x × - 2 x 2 y ' = ( x y ) 2 ln 2 x - 1 y ' = 2 x x 2 x 2 ln 2 x - 1 2 ln 2 x = 1 2 x = e 1 2 x = 2 e - 1 2 Then maximum value will be f 2 e - 1 2 = 2 2 e - 1 2 4 e - 1 = e 2 e - 1 = e 2 e

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Mathematics - Application of Derivative Question with Solution | TestHub

MathematicsApplication of DerivativeMaxima-MinimaEasy2 minPYQ_2021

MathematicsEasysingle choice

The local maximum value of the function, $f (x) = {(\frac{2}{x})}^{x^{2}}, x > 0,$ is

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Answer:

Solution:

$f^{'} (x) = 0$ for maximum value
Let $y = {(\frac{2}{x})}^{x^{2}}$

$\ln y = x^{2} \ln \frac{2}{x}$

$\frac{1}{y} y^{'} = 2 x \ln \frac{2}{x} + x^{2} \frac{1}{\frac{2}{x}} \times \frac{- 2}{x^{2}}$

$y^{'} = (x y) (2 \ln \frac{2}{x} - 1)$

$y^{'} = {(\frac{2}{x})}^{x^{2}} (x) (2 \ln \frac{2}{x} - 1)$

$2 \ln \frac{2}{x} = 1$

$(\frac{2}{x}) = e^{\frac{1}{2}}$

$x = 2 e^{- \frac{1}{2}}$

Then maximum value will be
$f (2 e^{- \frac{1}{2}}) = {(\frac{2}{2 e^{- \frac{1}{2}}})}^{4 e^{- 1}} = e^{2 e^{- 1}} = e^{\frac{2}{e}}$

Stream:JEESubject:MathematicsTopic:Application of DerivativeSubtopic:Maxima-Minima

⏱ 2mℹ️ Source: PYQ_2021

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