How do use the first derivative test to determine the local extrema $x^{2} - x - 1$ $x^2-x-1$ ?

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How do use the first derivative test to determine the local extrema $x^{2} - x - 1$ $x^2-x-1$ ?

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Answer 1 · 2015-09-12T01:24:22

$(\frac{1}{2}, - \frac{5}{4})$ $(1/2,-5/4)$ .

Explanation:

The "peaks" or local extrema of a function $f (x)$ $f(x)$ occur at the values where $\frac{d}{d x} f (x) = 0$ $d/dx f(x) = 0$ .

One way to remember this is:
Since a function is increasing when $\frac{d}{d x} f (x) > 0$ $d/dx f(x) > 0$ , and a function is decreasing when $\frac{d}{d x} f (x) < 0$ $d/dx f(x) < 0$ , that means when $\frac{d}{d x} f (x) = 0$ $d/dx f(x) = 0$ , the graph of the function is "turning" from increasing to decreasing or from decreasing to increasing. The turn forms a "peak" which is a local extrema.

So, to get the values for the local extrema for $f (x) = x^{2} - x - 1$ $f(x) = x^2 - x - 1$ , we need to evaluate $f (x)$ $f(x)$ at the values of $x$ $x$ where $\frac{d}{d x} f (x) = 0$ $d/dx f(x) = 0$ .

First, we get the derivative using the power rule:
$\frac{d}{d x} x^{n} = n x^{n - 1}$ $color(green)(d/dx x^n = nx^(n-1))$

$f (x) = x^{2} - x - 1$ $f(x) = x^2 - x - 1$

$\frac{d}{d x} f (x) = 2 x - 1$ $d/dx f(x) = 2x - 1$

Then, we solve for the values where $\frac{d}{d x} f (x) = 0$ $d/dx f(x) = 0$ :

$0 = 2 x - 1$ $0 = 2x - 1$
$1 = 2 x$ $1 = 2x$
$\frac{1}{2} = x$ $1/2 = x$

So, there is a local extrema when $x = \frac{1}{2}$ $x = 1/2$ .

To find the value of the local extrema, we evaluate $f (\frac{1}{2})$ $f(1/2)$ .

$f (x) = x^{2} - x - 1$ $f(x) = x^2 - x - 1$
$f (\frac{1}{2}) = {(\frac{1}{2})}^{2} - \frac{1}{2} - 1$ $f(1/2) = (1/2)^2 - 1/2 - 1$
$f (\frac{1}{2}) = \frac{1}{4} - \frac{1}{2} - 1$ $f(1/2) = 1/4 - 1/2 - 1$
$f (\frac{1}{2}) = - \frac{5}{4}$ $f(1/2) = -5/4$

There exists a local extrema at the point $(\frac{1}{2}, - \frac{5}{4})$ $(1/2,-5/4)$ .

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How do use the first derivative test to determine the local extrema $x^{2} - x - 1$ $x^2-x-1$ ?

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