Calculus Examples

Find the Local Maxima and Minima y=8x^3-x^4+x^3(8-x)
Step 1
Write as a function.
Step 2
Find the first derivative of the function.
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Step 2.1
By the Sum Rule, the derivative of with respect to is .
Step 2.2
Evaluate .
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Step 2.2.1
Since is constant with respect to , the derivative of with respect to is .
Step 2.2.2
Differentiate using the Power Rule which states that is where .
Step 2.2.3
Multiply by .
Step 2.3
Evaluate .
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Step 2.3.1
Since is constant with respect to , the derivative of with respect to is .
Step 2.3.2
Differentiate using the Power Rule which states that is where .
Step 2.3.3
Multiply by .
Step 2.4
Evaluate .
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Step 2.4.1
Differentiate using the Product Rule which states that is where and .
Step 2.4.2
By the Sum Rule, the derivative of with respect to is .
Step 2.4.3
Since is constant with respect to , the derivative of with respect to is .
Step 2.4.4
Since is constant with respect to , the derivative of with respect to is .
Step 2.4.5
Differentiate using the Power Rule which states that is where .
Step 2.4.6
Differentiate using the Power Rule which states that is where .
Step 2.4.7
Multiply by .
Step 2.4.8
Subtract from .
Step 2.4.9
Move to the left of .
Step 2.4.10
Rewrite as .
Step 2.4.11
Move to the left of .
Step 2.5
Simplify.
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Step 2.5.1
Apply the distributive property.
Step 2.5.2
Apply the distributive property.
Step 2.5.3
Combine terms.
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Step 2.5.3.1
Multiply by .
Step 2.5.3.2
Multiply by .
Step 2.5.3.3
Multiply by by adding the exponents.
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Step 2.5.3.3.1
Move .
Step 2.5.3.3.2
Multiply by .
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Step 2.5.3.3.2.1
Raise to the power of .
Step 2.5.3.3.2.2
Use the power rule to combine exponents.
Step 2.5.3.3.3
Add and .
Step 2.5.3.4
Subtract from .
Step 2.5.3.5
Subtract from .
Step 2.5.3.6
Add and .
Step 3
Find the second derivative of the function.
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Step 3.1
By the Sum Rule, the derivative of with respect to is .
Step 3.2
Evaluate .
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Step 3.2.1
Since is constant with respect to , the derivative of with respect to is .
Step 3.2.2
Differentiate using the Power Rule which states that is where .
Step 3.2.3
Multiply by .
Step 3.3
Evaluate .
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Step 3.3.1
Since is constant with respect to , the derivative of with respect to is .
Step 3.3.2
Differentiate using the Power Rule which states that is where .
Step 3.3.3
Multiply by .
Step 4
To find the local maximum and minimum values of the function, set the derivative equal to and solve.
Step 5
Find the first derivative.
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Step 5.1
Find the first derivative.
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Step 5.1.1
By the Sum Rule, the derivative of with respect to is .
Step 5.1.2
Evaluate .
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Step 5.1.2.1
Since is constant with respect to , the derivative of with respect to is .
Step 5.1.2.2
Differentiate using the Power Rule which states that is where .
Step 5.1.2.3
Multiply by .
Step 5.1.3
Evaluate .
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Step 5.1.3.1
Since is constant with respect to , the derivative of with respect to is .
Step 5.1.3.2
Differentiate using the Power Rule which states that is where .
Step 5.1.3.3
Multiply by .
Step 5.1.4
Evaluate .
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Step 5.1.4.1
Differentiate using the Product Rule which states that is where and .
Step 5.1.4.2
By the Sum Rule, the derivative of with respect to is .
Step 5.1.4.3
Since is constant with respect to , the derivative of with respect to is .
Step 5.1.4.4
Since is constant with respect to , the derivative of with respect to is .
Step 5.1.4.5
Differentiate using the Power Rule which states that is where .
Step 5.1.4.6
Differentiate using the Power Rule which states that is where .
Step 5.1.4.7
Multiply by .
Step 5.1.4.8
Subtract from .
Step 5.1.4.9
Move to the left of .
Step 5.1.4.10
Rewrite as .
Step 5.1.4.11
Move to the left of .
Step 5.1.5
Simplify.
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Step 5.1.5.1
Apply the distributive property.
Step 5.1.5.2
Apply the distributive property.
Step 5.1.5.3
Combine terms.
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Step 5.1.5.3.1
Multiply by .
Step 5.1.5.3.2
Multiply by .
Step 5.1.5.3.3
Multiply by by adding the exponents.
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Step 5.1.5.3.3.1
Move .
Step 5.1.5.3.3.2
Multiply by .
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Step 5.1.5.3.3.2.1
Raise to the power of .
Step 5.1.5.3.3.2.2
Use the power rule to combine exponents.
Step 5.1.5.3.3.3
Add and .
Step 5.1.5.3.4
Subtract from .
Step 5.1.5.3.5
Subtract from .
Step 5.1.5.3.6
Add and .
Step 5.2
The first derivative of with respect to is .
Step 6
Set the first derivative equal to then solve the equation .
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Step 6.1
Set the first derivative equal to .
Step 6.2
Factor out of .
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Step 6.2.1
Factor out of .
Step 6.2.2
Factor out of .
Step 6.2.3
Factor out of .
Step 6.3
If any individual factor on the left side of the equation is equal to , the entire expression will be equal to .
Step 6.4
Set equal to and solve for .
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Step 6.4.1
Set equal to .
Step 6.4.2
Solve for .
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Step 6.4.2.1
Take the specified root of both sides of the equation to eliminate the exponent on the left side.
Step 6.4.2.2
Simplify .
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Step 6.4.2.2.1
Rewrite as .
Step 6.4.2.2.2
Pull terms out from under the radical, assuming positive real numbers.
Step 6.4.2.2.3
Plus or minus is .
Step 6.5
Set equal to and solve for .
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Step 6.5.1
Set equal to .
Step 6.5.2
Add to both sides of the equation.
Step 6.6
The final solution is all the values that make true.
Step 7
Find the values where the derivative is undefined.
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Step 7.1
The domain of the expression is all real numbers except where the expression is undefined. In this case, there is no real number that makes the expression undefined.
Step 8
Critical points to evaluate.
Step 9
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 10
Evaluate the second derivative.
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Step 10.1
Simplify each term.
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Step 10.1.1
Raising to any positive power yields .
Step 10.1.2
Multiply by .
Step 10.1.3
Multiply by .
Step 10.2
Add and .
Step 11
Since there is at least one point with or undefined second derivative, apply the first derivative test.
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Step 11.1
Split into separate intervals around the values that make the first derivative or undefined.
Step 11.2
Substitute any number, such as , from the interval in the first derivative to check if the result is negative or positive.
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Step 11.2.1
Replace the variable with in the expression.
Step 11.2.2
Simplify the result.
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Step 11.2.2.1
Simplify each term.
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Step 11.2.2.1.1
Raise to the power of .
Step 11.2.2.1.2
Multiply by .
Step 11.2.2.1.3
Raise to the power of .
Step 11.2.2.1.4
Multiply by .
Step 11.2.2.2
Add and .
Step 11.2.2.3
The final answer is .
Step 11.3
Substitute any number, such as , from the interval in the first derivative to check if the result is negative or positive.
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Step 11.3.1
Replace the variable with in the expression.
Step 11.3.2
Simplify the result.
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Step 11.3.2.1
Simplify each term.
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Step 11.3.2.1.1
Raise to the power of .
Step 11.3.2.1.2
Multiply by .
Step 11.3.2.1.3
Raise to the power of .
Step 11.3.2.1.4
Multiply by .
Step 11.3.2.2
Add and .
Step 11.3.2.3
The final answer is .
Step 11.4
Substitute any number, such as , from the interval in the first derivative to check if the result is negative or positive.
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Step 11.4.1
Replace the variable with in the expression.
Step 11.4.2
Simplify the result.
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Step 11.4.2.1
Simplify each term.
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Step 11.4.2.1.1
Raise to the power of .
Step 11.4.2.1.2
Multiply by .
Step 11.4.2.1.3
Raise to the power of .
Step 11.4.2.1.4
Multiply by .
Step 11.4.2.2
Add and .
Step 11.4.2.3
The final answer is .
Step 11.5
Since the first derivative did not change signs around , this is not a local maximum or minimum.
Not a local maximum or minimum
Step 11.6
Since the first derivative changed signs from positive to negative around , then is a local maximum.
is a local maximum
is a local maximum
Step 12