Difference between revisions of "009B Sample Midterm 3, Problem 4"

Evaluate the integral:

${\displaystyle \int \sin(\ln x)~dx.}$

Foundations:
Integration by parts tells us that ${\displaystyle \int u~dv=uv-\int vdu.}$
How could we break up ${\displaystyle \sin(\ln x)~dx}$ into ${\displaystyle u}$ and ${\displaystyle dv?}$
Notice that ${\displaystyle \sin(\ln x)}$ is one term. So, we need to let ${\displaystyle u=\sin(\ln x)}$ and ${\displaystyle dv=dx.}$

Solution:

Step 1:
We proceed using integration by parts. Let ${\displaystyle u=\sin(\ln x)}$ and ${\displaystyle dv=dx.}$ Then, ${\displaystyle du=\cos(\ln x){\frac {1}{x}}dx}$ and ${\displaystyle v=x.}$
Therefore, we get
${\displaystyle \int \sin(\ln x)~dx=x\sin(\ln x)-\int \cos(\ln x)~dx.}$

Step 2:
Now, we need to use integration by parts again. Let ${\displaystyle u=\cos(\ln x)}$ and ${\displaystyle dv=dx.}$ Then, ${\displaystyle du=-\sin(\ln x){\frac {1}{x}}dx}$ and ${\displaystyle v=x.}$
Therfore, we get
${\displaystyle \int \sin(\ln x)~dx=x\sin(\ln x)-{\bigg (}x\cos(\ln x)+\int \sin(\ln x)~dx{\bigg )}=x\sin(\ln x)-x\cos(\ln x)-\int \sin(\ln x)~dx.}$

Step 3:
Notice that the integral on the right of the last equation is the same integral that we had at the beginning.
So, if we add the integral on the right to the other side of the equation, we get
${\displaystyle 2\int \sin(\ln x)~dx=x\sin(\ln x)-x\cos(\ln x)}$.
Now, we divide both sides by 2 to get
${\displaystyle \int \sin(\ln x)~dx={\frac {x\sin(\ln x)}{2}}-{\frac {x\cos(\ln x)}{2}}.}$
Thus, the final answer is ${\displaystyle \int \sin(\ln x)~dx={\frac {x}{2}}(\sin(\ln x)-\cos(\ln x))+C.}$

Final Answer:
${\displaystyle {\frac {x}{2}}(\sin(\ln x)-\cos(\ln x))+C}$

Return to Sample Exam