use integration by parts to evaluate the integral: $int sin(ln(6x))dx$

use integration by parts to evaluate the integral: $int sin(ln(6x))dx$
Answer
Explanation:
Step1: Let $u = \sin(\ln(6x))$ and $dv=dx$
$du=\frac{\cos(\ln(6x))}{x}dx$, $v = x$
Step2: Apply integration - by - parts formula $\int u;dv=uv-\int v;du$
$\int\sin(\ln(6x))dx=x\sin(\ln(6x))-\int x\cdot\frac{\cos(\ln(6x))}{x}dx=x\sin(\ln(6x))-\int\cos(\ln(6x))dx$
Step3: For $\int\cos(\ln(6x))dx$, use integration by parts again. Let $u=\cos(\ln(6x))$ and $dv = dx$
$du=-\frac{\sin(\ln(6x))}{x}dx$, $v = x$
Step4: Apply integration - by - parts formula for $\int\cos(\ln(6x))dx$
$\int\cos(\ln(6x))dx=x\cos(\ln(6x))+\int x\cdot\frac{\sin(\ln(6x))}{x}dx=x\cos(\ln(6x))+\int\sin(\ln(6x))dx$
Step5: Substitute the result of $\int\cos(\ln(6x))dx$ into the previous equation
$\int\sin(\ln(6x))dx=x\sin(\ln(6x))-(x\cos(\ln(6x))+\int\sin(\ln(6x))dx)$
Step6: Solve for $\int\sin(\ln(6x))dx$
$\int\sin(\ln(6x))dx=x\sin(\ln(6x))-x\cos(\ln(6x))-\int\sin(\ln(6x))dx$ $2\int\sin(\ln(6x))dx=x\sin(\ln(6x)) - x\cos(\ln(6x))$ $\int\sin(\ln(6x))dx=\frac{1}{2}x(\sin(\ln(6x))-\cos(\ln(6x)))+C$
Answer:
$\frac{1}{2}x(\sin(\ln(6x))-\cos(\ln(6x)))+C$