Difference between revisions of "009B Sample Midterm 3, Problem 5"

Evaluate the indefinite and definite integrals.

a) ${\displaystyle \int \tan ^{3}x~dx}$

b) ${\displaystyle \int _{0}^{\pi }\sin ^{2}x~dx}$

Foundations:
Recall the trig identities:
1. ${\displaystyle \tan ^{2}x+1=\sec ^{2}x}$
2. ${\displaystyle \sin ^{2}(x)={\frac {1-\cos(2x)}{2}}}$
How would you integrate ${\displaystyle \tan x~dx?}$
You could use ${\displaystyle u}$-substitution. First, write ${\displaystyle \int \tan x~dx=\int {\frac {\sin x}{\cos x}}~dx}$.
Now, let ${\displaystyle u=\cos(x)}$. Then, ${\displaystyle du=-\sin(x)dx}$.
Thus, ${\displaystyle \int \tan x~dx=\int {\frac {-1}{u}}~du=-\ln(u)+C=-\ln |\cos(x)|+C}$.

Solution:

(a)

Step 1:
We start by writing ${\displaystyle \int \tan ^{3}x~dx=\int \tan ^{2}x\tan x~dx}$.
Since ${\displaystyle \tan ^{2}x=\sec ^{2}x-1}$, we have ${\displaystyle \int \tan ^{3}x~dx=\int (\sec ^{2}x-1)\tan x~dx=\int \sec ^{2}x\tan x~dx-\int \tan x~dx}$.

Step 2:
Now, we need to use ${\displaystyle u}$-substitution for the first integral. Let ${\displaystyle u=\tan(x)}$. Then, ${\displaystyle du=\sec ^{2}xdx}$. So, we have
${\displaystyle \int \tan ^{3}x~dx=\int u~du-\int \tan x~dx={\frac {u^{2}}{2}}-\int \tan x~dx={\frac {\tan ^{2}x}{2}}-\int \tan x~dx}$.

Step 3:
For the remaining integral, we also need to use ${\displaystyle u}$-substitution. First, we write ${\displaystyle \int \tan ^{3}x~dx={\frac {\tan ^{2}x}{2}}-\int {\frac {\sin x}{\cos x}}~dx}$.
Now, we let ${\displaystyle u=\cos x}$. Then, ${\displaystyle du=-\sin xdx}$. So, we get
${\displaystyle \int \tan ^{3}x~dx={\frac {\tan ^{2}x}{2}}+\int {\frac {1}{u}}~dx={\frac {\tan ^{2}x}{2}}+\ln |u|+C={\frac {\tan ^{2}x}{2}}+\ln |\cos x|+C}$.

(b)

Step 1:
One of the double angle formulas is ${\displaystyle \cos(2x)=1-2\sin ^{2}(x)}$. Solving for ${\displaystyle \sin ^{2}(x)}$, we get ${\displaystyle \sin ^{2}(x)={\frac {1-\cos(2x)}{2}}}$.
Plugging this identity into our integral, we get ${\displaystyle \int _{0}^{\pi }\sin ^{2}x~dx=\int _{0}^{\pi }{\frac {1-\cos(2x)}{2}}~dx=\int _{0}^{\pi }{\frac {1}{2}}~dx-\int _{0}^{\pi }{\frac {\cos(2x)}{2}}~dx}$.

Step 2:
If we integrate the first integral, we get
${\displaystyle \int _{0}^{\pi }\sin ^{2}x~dx=\left.{\frac {x}{2}}\right|_{0}^{\pi }-\int _{0}^{\pi }{\frac {\cos(2x)}{2}}~dx={\frac {\pi }{2}}-\int _{0}^{\pi }{\frac {\cos(2x)}{2}}~dx}$.

Step 3:
For the remaining integral, we need to use ${\displaystyle u}$-substitution. Let ${\displaystyle u=2x}$. Then, ${\displaystyle du=2dx}$ and ${\displaystyle {\frac {du}{2}}=dx}$. Also, since this is a definite integral
and we are using ${\displaystyle u}$-substitution, we need to change the bounds of integration. We have ${\displaystyle u_{1}=2(0)=0}$ and ${\displaystyle u_{2}=2(\pi )=2\pi }$.
So, the integral becomes
${\displaystyle \int _{0}^{\pi }\sin ^{2}x~dx={\frac {\pi }{2}}-\int _{0}^{2\pi }{\frac {\cos(u)}{4}}~du={\frac {\pi }{2}}-\left.{\frac {\sin(u)}{4}}\right|_{0}^{2\pi }={\frac {\pi }{2}}-{\bigg (}{\frac {\sin(2\pi )}{4}}-{\frac {\sin(0)}{4}}{\bigg )}={\frac {\pi }{2}}}$

Final Answer:
(a) ${\displaystyle {\frac {\tan ^{2}x}{2}}+\ln |\cos x|+C}$
(b) ${\displaystyle {\frac {\pi }{2}}}$

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