Difference between revisions of "009B Sample Midterm 2, Problem 4"

    You could use integration by parts.

    Let ${\displaystyle u=\sin(x)}$ and ${\displaystyle dv=e^{x}~dx.}$

    Thus, ${\displaystyle \int e^{x}\sin x~dx=e^{x}\sin(x)-\int e^{x}\cos(x)~dx.}$

    Now, we need to use integration by parts a second time.

    Let ${\displaystyle u=\cos(x)}$ and ${\displaystyle dv=e^{x}~dx.}$ Then, ${\displaystyle du=-\sin(x)~dx}$ and ${\displaystyle v=e^{x}.}$ So,

    ${\displaystyle {\begin{array}{rcl}\displaystyle {\int e^{x}\sin x~dx}&=&\displaystyle {e^{x}\sin(x)-(e^{x}\cos(x)-\int -e^{x}\sin(x)~dx}\\&&\\&=&\displaystyle {e^{x}(\sin(x)-\cos(x))-\int e^{x}\sin(x)~dx.}\\\end{array}}}$

    Notice, we are back where we started. So, adding the last term on the right hand side to the opposite side,

    we get ${\displaystyle 2\int e^{x}\sin(x)~dx=e^{x}(\sin(x)-\cos(x)).}$

    Hence, ${\displaystyle \int e^{x}\sin(x)~dx={\frac {e^{x}}{2}}(\sin(x)-\cos(x))+C.}$

        ${\displaystyle {\begin{array}{rcl}\displaystyle {\int e^{-2x}\sin(2x)~dx}&=&\displaystyle {{\frac {\sin(2x)e^{-2x}}{-2}}-\int {\frac {e^{-2x}2\cos(2x)~dx}{-2}}}\\&&\\&=&\displaystyle {{\frac {\sin(2x)e^{-2x}}{-2}}+\int e^{-2x}\cos(2x)~dx.}\end{array}}}$

   ${\displaystyle \int e^{-2x}\sin(2x)~dx={\frac {\sin(2x)e^{-2x}}{-2}}+{\frac {\cos(2x)e^{-2x}}{-2}}-\int e^{-2x}\sin(2x)~dx.}$