What are the critical points of $f (x) = x^{2} ln (\frac{x}{e^{x}})$ $f(x) =x^2ln(x/e^x)$ ?

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What are the critical points of $f (x) = x^{2} ln (\frac{x}{e^{x}})$ $f(x) =x^2ln(x/e^x)$ ?

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Answer 1 · 2015-11-17T22:58:03

So we have

$y = x^{2} ln (\frac{x}{e^{x}})$ $y = x^2ln(x/e^(x))$

Using log properties we can say it's

$y = x^{2} (ln (x) - ln (e^{x}))$ $y = x^2(ln(x) - ln(e^(x)))$
$y = x^{2} (ln (x) - x)$ $y = x^2(ln(x) - x)$
$y = x^{2} ln (x) - x^{3}$ $y = x^2ln(x) - x^3$

Differentiating we have

$\frac{d y}{d x} = x^{2} \frac{d}{d x} ln (x) + ln (x) \frac{d}{d x} x^{2} - 3 x^{2}$ $dy/dx = x^2d/dxln(x) + ln(x)d/dxx^2 - 3x^2$

$\frac{d y}{d x} = x^{2} \cdot \frac{1}{x} + ln (x) \cdot 2 x - 3 x^{2}$ $dy/dx = x^2*1/x + ln(x)*2x - 3x^2$

$\frac{d y}{d x} = x + ln (x) \cdot 2 x - 3 x^{2}$ $dy/dx = x + ln(x)*2x - 3x^2$

$\frac{d y}{d x} = x (1 + 2 ln (x)) - 3 x^{2}$ $dy/dx = x(1 + 2ln(x)) - 3x^2$

A critical point is a point in which the derivative is null, knowing that and that the domain of the derivative is the same as that of the function, we have

$0 = x (1 + 2 ln (x)) - 3 x^{2}$ $0 = x(1+2ln(x)) - 3x^2$

$3 x^{2} = x (1 + 2 ln (x))$ $3x^2 = x(1 + 2ln(x))$

Since we know $x \neq 0$ $x != 0$ , we can safely divide by x and see that

$3 x = 1 + 2 ln (x)$ $3x = 1 + 2ln(x)$

However, we have that, for every value of $x$ $x$ greater than 0,

$x > ln (x)$ $x > ln(x)$

And so

$3 x > 3 ln (x)$ $3x > 3ln(x)$

And

$3 ln (x) > 2 ln (x) + 1$ $3ln(x) > 2ln(x) + 1$

So, there are no critical points.

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What are the critical points of $f (x) = x^{2} ln (\frac{x}{e^{x}})$ $f(x) =x^2ln(x/e^x)$ ?

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