How do you find local maximum value of f using the first and second derivative tests: f(x)= x^2 + 8x -12?

1 Answer
mason m
Dec 20, 2015

f has no local maxima. It has a local minimum when x=-4.

Explanation:

Find f'(x) and see when it =0 or "DNE". These are the critical numbers at which a local maximum could exist.

To determine whether or not the point is a local maximum, you could use either the first or second derivative tests.

For the first derivative test , create a sign chart where the important values are the critical numbers. If the signs change from positive to negative, the point is a local maximum.

For the second derivative test , plug the critical number(s) into the second derivative. If the value is negative, the function is concave down at that point meaning the point is a local maximum.

Now, let's do the work:

f'(x)=2x+8

f'(x)=0 when x=-4.
f'(x) never "DNE".

First derivative test:

color(white)(xxxxxXXXxx)-4
larr----------rarr
color(white)(xxx)"NEGATIVE"color(white)(xxxxx)"POSITIVE"

Since the sign of the first derivative goes from negative to positive, there is a local minimum when x=-4.

We can prove the same thing with the...

Second derivative test:

f''(x)=2

Thus, the second derivative is ALWAYS positive, and the function is always concave up, which results in a local minimum.

Therefore, the function has no local maxima.

We can check a graph, even though it is obvious that the graph will form a parabola facing up, which will have only a minimum at its vertex:
graph{x^2+8x-12 [-65, 66.67, -36.6, 29.23]}

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