Calculus Examples

Find the Area Between the Curves y=x^2+1 ; y=2x-2 ; -1<=x<=2
; ;
Step 1
Solve by substitution to find the intersection between the curves.
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Step 1.1
Eliminate the equal sides of each equation and combine.
Step 1.2
Solve for .
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Step 1.2.1
Subtract from both sides of the equation.
Step 1.2.2
Move all terms to the left side of the equation and simplify.
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Step 1.2.2.1
Add to both sides of the equation.
Step 1.2.2.2
Add and .
Step 1.2.3
Use the quadratic formula to find the solutions.
Step 1.2.4
Substitute the values , , and into the quadratic formula and solve for .
Step 1.2.5
Simplify.
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Step 1.2.5.1
Simplify the numerator.
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Step 1.2.5.1.1
Raise to the power of .
Step 1.2.5.1.2
Multiply .
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Step 1.2.5.1.2.1
Multiply by .
Step 1.2.5.1.2.2
Multiply by .
Step 1.2.5.1.3
Subtract from .
Step 1.2.5.1.4
Rewrite as .
Step 1.2.5.1.5
Rewrite as .
Step 1.2.5.1.6
Rewrite as .
Step 1.2.5.1.7
Rewrite as .
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Step 1.2.5.1.7.1
Factor out of .
Step 1.2.5.1.7.2
Rewrite as .
Step 1.2.5.1.8
Pull terms out from under the radical.
Step 1.2.5.1.9
Move to the left of .
Step 1.2.5.2
Multiply by .
Step 1.2.5.3
Simplify .
Step 1.2.6
Simplify the expression to solve for the portion of the .
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Step 1.2.6.1
Simplify the numerator.
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Step 1.2.6.1.1
Raise to the power of .
Step 1.2.6.1.2
Multiply .
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Step 1.2.6.1.2.1
Multiply by .
Step 1.2.6.1.2.2
Multiply by .
Step 1.2.6.1.3
Subtract from .
Step 1.2.6.1.4
Rewrite as .
Step 1.2.6.1.5
Rewrite as .
Step 1.2.6.1.6
Rewrite as .
Step 1.2.6.1.7
Rewrite as .
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Step 1.2.6.1.7.1
Factor out of .
Step 1.2.6.1.7.2
Rewrite as .
Step 1.2.6.1.8
Pull terms out from under the radical.
Step 1.2.6.1.9
Move to the left of .
Step 1.2.6.2
Multiply by .
Step 1.2.6.3
Simplify .
Step 1.2.6.4
Change the to .
Step 1.2.7
Simplify the expression to solve for the portion of the .
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Step 1.2.7.1
Simplify the numerator.
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Step 1.2.7.1.1
Raise to the power of .
Step 1.2.7.1.2
Multiply .
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Step 1.2.7.1.2.1
Multiply by .
Step 1.2.7.1.2.2
Multiply by .
Step 1.2.7.1.3
Subtract from .
Step 1.2.7.1.4
Rewrite as .
Step 1.2.7.1.5
Rewrite as .
Step 1.2.7.1.6
Rewrite as .
Step 1.2.7.1.7
Rewrite as .
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Step 1.2.7.1.7.1
Factor out of .
Step 1.2.7.1.7.2
Rewrite as .
Step 1.2.7.1.8
Pull terms out from under the radical.
Step 1.2.7.1.9
Move to the left of .
Step 1.2.7.2
Multiply by .
Step 1.2.7.3
Simplify .
Step 1.2.7.4
Change the to .
Step 1.2.8
The final answer is the combination of both solutions.
Step 1.3
Evaluate when .
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Step 1.3.1
Substitute for .
Step 1.3.2
Simplify .
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Step 1.3.2.1
Simplify each term.
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Step 1.3.2.1.1
Apply the distributive property.
Step 1.3.2.1.2
Multiply by .
Step 1.3.2.2
Simplify by subtracting numbers.
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Step 1.3.2.2.1
Subtract from .
Step 1.3.2.2.2
Add and .
Step 1.4
Evaluate when .
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Step 1.4.1
Substitute for .
Step 1.4.2
Simplify .
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Step 1.4.2.1
Simplify each term.
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Step 1.4.2.1.1
Apply the distributive property.
Step 1.4.2.1.2
Multiply by .
Step 1.4.2.1.3
Multiply by .
Step 1.4.2.2
Simplify by subtracting numbers.
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Step 1.4.2.2.1
Subtract from .
Step 1.4.2.2.2
Add and .
Step 1.5
List all of the solutions.
Step 2
The area of the region between the curves is defined as the integral of the upper curve minus the integral of the lower curve over each region. The regions are determined by the intersection points of the curves. This can be done algebraically or graphically.
Step 3
Integrate to find the area between and .
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Step 3.1
Combine the integrals into a single integral.
Step 3.2
Simplify each term.
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Step 3.2.1
Apply the distributive property.
Step 3.2.2
Multiply by .
Step 3.2.3
Multiply by .
Step 3.3
Add and .
Step 3.4
Split the single integral into multiple integrals.
Step 3.5
By the Power Rule, the integral of with respect to is .
Step 3.6
Since is constant with respect to , move out of the integral.
Step 3.7
By the Power Rule, the integral of with respect to is .
Step 3.8
Combine and .
Step 3.9
Apply the constant rule.
Step 3.10
Simplify the answer.
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Step 3.10.1
Combine and .
Step 3.10.2
Substitute and simplify.
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Step 3.10.2.1
Evaluate at and at .
Step 3.10.2.2
Evaluate at and at .
Step 3.10.2.3
Simplify.
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Step 3.10.2.3.1
Raise to the power of .
Step 3.10.2.3.2
Combine and .
Step 3.10.2.3.3
Multiply by .
Step 3.10.2.3.4
To write as a fraction with a common denominator, multiply by .
Step 3.10.2.3.5
Combine and .
Step 3.10.2.3.6
Combine the numerators over the common denominator.
Step 3.10.2.3.7
Simplify the numerator.
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Step 3.10.2.3.7.1
Multiply by .
Step 3.10.2.3.7.2
Add and .
Step 3.10.2.3.8
Raise to the power of .
Step 3.10.2.3.9
Combine and .
Step 3.10.2.3.10
Move the negative in front of the fraction.
Step 3.10.2.3.11
Multiply by .
Step 3.10.2.3.12
To write as a fraction with a common denominator, multiply by .
Step 3.10.2.3.13
Combine and .
Step 3.10.2.3.14
Combine the numerators over the common denominator.
Step 3.10.2.3.15
Simplify the numerator.
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Step 3.10.2.3.15.1
Multiply by .
Step 3.10.2.3.15.2
Subtract from .
Step 3.10.2.3.16
Move the negative in front of the fraction.
Step 3.10.2.3.17
Multiply by .
Step 3.10.2.3.18
Multiply by .
Step 3.10.2.3.19
Combine the numerators over the common denominator.
Step 3.10.2.3.20
Add and .
Step 3.10.2.3.21
Cancel the common factor of and .
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Step 3.10.2.3.21.1
Factor out of .
Step 3.10.2.3.21.2
Cancel the common factors.
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Step 3.10.2.3.21.2.1
Factor out of .
Step 3.10.2.3.21.2.2
Cancel the common factor.
Step 3.10.2.3.21.2.3
Rewrite the expression.
Step 3.10.2.3.21.2.4
Divide by .
Step 3.10.2.3.22
Raise to the power of .
Step 3.10.2.3.23
Cancel the common factor of and .
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Step 3.10.2.3.23.1
Factor out of .
Step 3.10.2.3.23.2
Cancel the common factors.
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Step 3.10.2.3.23.2.1
Factor out of .
Step 3.10.2.3.23.2.2
Cancel the common factor.
Step 3.10.2.3.23.2.3
Rewrite the expression.
Step 3.10.2.3.23.2.4
Divide by .
Step 3.10.2.3.24
Raise to the power of .
Step 3.10.2.3.25
To write as a fraction with a common denominator, multiply by .
Step 3.10.2.3.26
Combine and .
Step 3.10.2.3.27
Combine the numerators over the common denominator.
Step 3.10.2.3.28
Simplify the numerator.
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Step 3.10.2.3.28.1
Multiply by .
Step 3.10.2.3.28.2
Subtract from .
Step 3.10.2.3.29
Combine and .
Step 3.10.2.3.30
Multiply by .
Step 3.10.2.3.31
Cancel the common factor of and .
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Step 3.10.2.3.31.1
Factor out of .
Step 3.10.2.3.31.2
Cancel the common factors.
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Step 3.10.2.3.31.2.1
Factor out of .
Step 3.10.2.3.31.2.2
Cancel the common factor.
Step 3.10.2.3.31.2.3
Rewrite the expression.
Step 3.10.2.3.31.2.4
Divide by .
Step 3.10.2.3.32
Subtract from .
Step 4