What are the local extrema, if any, of $f(x)= (x^2 + 6x-3)*e^x + 8x –8$ ?

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What are the local extrema, if any, of $f(x)= (x^2 + 6x-3)*e^x + 8x –8$ ?

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Answer 1 · 2018-02-24T12:45:03

This function has no local extrema.

Explanation:

At a local extremum, we must have $f prime(x)=0$
Now,
$f prime (x) = (x^2+8x+3)e^x+8$

Let us consider whether this can vanish. For this to happen, the value of $g(x) = (x^2+8x+3)e^x$ must be equal to -8.

Since $g prime(x) = (x^2+10x+11)e^x$ , the extrema of $g(x)$ are at the points where $x^2+10x+11=0$ , i.e. at $x=-5 pm sqrt{14}$ . Since $g(x) to infty$ and 0 as $x to pm infty$ respectively, it is easy to see that the minimum value will be at $x = -5+sqrt{14}$ .

We have $g(-5+sqrt{14}) ~~ -1.56$ , so that the minimum value of $f prime (x) ~~ 6.44$ - so that it can never reach zero.

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What are the local extrema, if any, of $f(x)= (x^2 + 6x-3)*e^x + 8x –8$ ?

1 Answer

Explanation:

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Science

Math

Humanities

... and beyond

What are the local extrema, if any, of f(x)= (x^2 + 6x-3)*e^x + 8x –8f(x)= (x^2 + 6x-3)*e^x + 8x –8?

1 Answer

Explanation:

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What are the local extrema, if any, of $f(x)= (x^2 + 6x-3)*e^x + 8x –8$ ?