What are the absolute extrema of f(x)= x^3 -3x+1 in [0,3]?

1 Answer
mason m
Feb 14, 2016

Absolute minimum of -1 at x=1 and an absolute maximum of 19 at x=3.

Explanation:

There are two candidates for the absolute extrema of an interval. They are the endpoints of the interval (here, 0 and 3) and the critical values of the function located within the interval.

The critical values can be found by finding the function's derivative and finding for which values of x it equals 0.

We can use the power rule to find that the derivative of f(x)=x^3-3x+1 is f'(x)=3x^2-3.

The critical values are when 3x^2-3=0, which simplifies to be x=+-1. However, x=-1 is not in the interval so the only valid critical value here is the one at x=1. We now know that the absolute extrema could occur at x=0,x=1, and x=3.

To determine which is which, plug them all into the original function.

f(0)=1
f(1)=-1
f(3)=19

From here we can see that there is an absolute minimum of -1 at x=1 and an absolute maximum of 19 at x=3.

Check the function's graph:

graph{x^3-3x+1 [-0.1, 3.1, -5, 20]}

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