What are the local extrema, if any, of $f (x) = x^{2} + 9 x + 1$ $f(x) =x^2 + 9x +1$ ?

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What are the local extrema, if any, of $f (x) = x^{2} + 9 x + 1$ $f(x) =x^2 + 9x +1$ ?

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Answer 1 · 2016-03-08T08:29:34

Parabolae have exactly one extrema, the vertex.

It is $(- 4 \frac{1}{2}, - 19 \frac{1}{4})$ $(-4 1/2, -19 1/4)$ .

Since $\frac{d^{2} f (x)}{d x} = 2$ ${d^2 f(x)}/dx=2$ everywhere the function is concave up everywhere and this point must be a minimum.

Explanation:

You have two roots to finding the vertex of the parabola: one, use calculus to find were the derivative is zero; two, avoid calculus at all costs and just complete the square. We're going to use calculus for the practice.

$f (x) = x^{2} + 9 x + 1$ $f(x)=x^2+9x+1$ , we need to take the derivative of this.

$\frac{d f (x)}{d x} = \frac{d}{d x} (x^{2} + 9 x + 1)$ ${d f(x)}/dx={d }/dx(x^2+9x+1)$

By the linearity of the derivative we have

$\frac{d f (x)}{d x} = \frac{d}{d x} (x^{2}) + \frac{d}{d x} (9 x) + \frac{d}{d x} (1)$ ${d f(x)}/dx={d }/dx(x^2)+{d }/dx(9x)+{d }/dx(1)$ .

Using the power rule, $\frac{d}{d x} x^{n} = n x^{n - 1}$ $d/dx x^n = n x^{n-1}$ we have

$\frac{d f (x)}{d x} = 2 \cdot x^{1} + 9 \cdot 1 \cdot x^{0} + 0 = 2 x + 9$ ${d f(x)}/dx=2*x^1+9*1*x^0+0=2x+9$ .

We set this equal to zero to find the critical points, the local and global minima and maxima and sometimes points of inflection have derivatives of zero.

$0 = 2 x + 9$ $0=2x+9$ $\Rightarrow$ $=>$ $x = - \frac{9}{2}$ $x=-9/2$ ,
so we have one critical point at $x = - \frac{9}{2}$ $x=-9/2$ or $- 4 \frac{1}{2}$ $-4 1/2$ .

To find the y coordinate of the critical point we sub in $x = - \frac{9}{2}$ $x=-9/2$ back into the function,

$f (- \frac{9}{2}) = {(- \frac{9}{2})}^{2} + 9 (- \frac{9}{2}) + 1 = \frac{81}{4} - \frac{81}{2} + 1$ $f(-9/2)=(-9/2)^2+9(-9/2)+1 = 81/4 - 81/2 + 1$
$= \frac{81}{4} - \frac{162}{4} + \frac{4}{4} = - \frac{77}{4} = - 19 \frac{1}{4}$ $=81/4 - 162/4 + 4/4=-77/4=-19 1/4$ .

The critical point/vertex is $(- 4 \frac{1}{2}, - 19 \frac{1}{4})$ $(-4 1/2, -19 1/4)$ .

We know that because $a > 0$ $a>0$ , this is a maximum.
To formally find if it's a maxima or minima we need to do the second derivative test.

$\frac{d^{2} f (x)}{d x} = \frac{d}{d x} (2 x + 9) = \frac{d}{d x} (2 x) + \frac{d}{d x} (9) = 2 + 0 = 2$ ${d^2 f(x)}/dx={d }/dx(2x+9)={d }/dx(2x)+{d }/dx(9)=2+0=2$

The second derivative is 2 at all values of x. This means it is greater then zero everywhere, and the function is concave up everywhere (it's a parabola with $a > 0$ $a>0$ after all), so the extrema must be a minimum, the vertex.

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What are the local extrema, if any, of $f (x) = x^{2} + 9 x + 1$ $f(x) =x^2 + 9x +1$ ?

1 Answer

Explanation:

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What are the local extrema, if any, of $f (x) = x^{2} + 9 x + 1$ $f(x) =x^2 + 9x +1$ ?