009B Sample Midterm 1, Problem 4

Evaluate the integral:

${\displaystyle \int \sin ^{3}x\cos ^{2}x~dx}$

Foundations:
Review ${\displaystyle u}$-substitution, and
Trig identities.

Solution:

Step 1:
First, we write Failed to parse (Conversion error. Server ("https://wikimedia.org/api/rest_") reported: "Cannot get mml. Server problem."): {\displaystyle \int \sin ^{3}x\cos ^{2}x~dx=\int (\sin x)\sin ^{2}x\cos ^{2}x~dx} .
Using the identity ${\displaystyle \sin ^{2}x+\cos ^{2}x=1}$, we get ${\displaystyle \sin ^{2}x=1-\cos ^{2}x}$. If we use this identity, we have
Failed to parse (Conversion error. Server ("https://wikimedia.org/api/rest_") reported: "Cannot get mml. Server problem."): {\displaystyle \int \sin ^{3}x\cos ^{2}x~dx=\int (\sin x)(1-\cos ^{2}x)\cos ^{2}x~dx=\int (\cos ^{2}x-\cos ^{4}x)\sin(x)~dx} .

Step 2:
Now, we use ${\displaystyle u}$-substitution. Let ${\displaystyle u=\cos(x)}$. Then, ${\displaystyle du=-\sin(x)dx}$. Therefore,
Failed to parse (Conversion error. Server ("https://wikimedia.org/api/rest_") reported: "Cannot get mml. Server problem."): {\displaystyle \int \sin ^{3}x\cos ^{2}x~dx=\int -(u^{2}-u^{4})~du={\frac {-u^{3}}{3}}+{\frac {u^{5}}{5}}+C={\frac {\cos ^{5}x}{5}}-{\frac {\cos ^{3}x}{3}}+C} .

Final Answer:
${\displaystyle {\frac {\cos ^{5}x}{5}}-{\frac {\cos ^{3}x}{3}}+C}$

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