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Precalculus Examples
Step 1
Step 1.1
Since is constant with respect to , the derivative of with respect to is .
Step 1.2
The derivative of with respect to is .
Step 2
Step 2.1
Since is constant with respect to , the derivative of with respect to is .
Step 2.2
The derivative of with respect to is .
Step 2.3
Multiply by .
Step 3
To find the local maximum and minimum values of the function, set the derivative equal to and solve.
Step 4
Step 4.1
Divide each term in by .
Step 4.2
Simplify the left side.
Step 4.2.1
Cancel the common factor of .
Step 4.2.1.1
Cancel the common factor.
Step 4.2.1.2
Divide by .
Step 4.3
Simplify the right side.
Step 4.3.1
Divide by .
Step 5
Take the inverse cosine of both sides of the equation to extract from inside the cosine.
Step 6
Step 6.1
The exact value of is .
Step 7
The cosine function is positive in the first and fourth quadrants. To find the second solution, subtract the reference angle from to find the solution in the fourth quadrant.
Step 8
Step 8.1
To write as a fraction with a common denominator, multiply by .
Step 8.2
Combine fractions.
Step 8.2.1
Combine and .
Step 8.2.2
Combine the numerators over the common denominator.
Step 8.3
Simplify the numerator.
Step 8.3.1
Multiply by .
Step 8.3.2
Subtract from .
Step 9
The solution to the equation .
Step 10
Evaluate the second derivative at . If the second derivative is positive, then this is a local minimum. If it is negative, then this is a local maximum.
Step 11
Step 11.1
The exact value of is .
Step 11.2
Multiply by .
Step 12
is a local maximum because the value of the second derivative is negative. This is referred to as the second derivative test.
is a local maximum
Step 13
Step 13.1
Replace the variable with in the expression.
Step 13.2
Simplify the result.
Step 13.2.1
The exact value of is .
Step 13.2.2
Multiply by .
Step 13.2.3
The final answer is .
Step 14
Evaluate the second derivative at . If the second derivative is positive, then this is a local minimum. If it is negative, then this is a local maximum.
Step 15
Step 15.1
Apply the reference angle by finding the angle with equivalent trig values in the first quadrant. Make the expression negative because sine is negative in the fourth quadrant.
Step 15.2
The exact value of is .
Step 15.3
Multiply .
Step 15.3.1
Multiply by .
Step 15.3.2
Multiply by .
Step 16
is a local minimum because the value of the second derivative is positive. This is referred to as the second derivative test.
is a local minimum
Step 17
Step 17.1
Replace the variable with in the expression.
Step 17.2
Simplify the result.
Step 17.2.1
Apply the reference angle by finding the angle with equivalent trig values in the first quadrant. Make the expression negative because sine is negative in the fourth quadrant.
Step 17.2.2
The exact value of is .
Step 17.2.3
Multiply .
Step 17.2.3.1
Multiply by .
Step 17.2.3.2
Multiply by .
Step 17.2.4
The final answer is .
Step 18
These are the local extrema for .
is a local maxima
is a local minima
Step 19