Question
By using the properties of definite integrals, evaluate the integral $\int\limits_0^{2\pi } {{{\cos }^5}x} dx$
$= 2\int\limits_0^{\pi } {{{\cos }^5}x} dx$
$\left[ {\because \int\limits_0^{2a} {f\left( x \right)dx = 2\int\limits_0^a {f\left( x \right)dx,if\,\,f\left( {2a - x} \right) = f\left( x \right)} } } \right]$
Here $f\left( x \right) = {\cos ^5}x$
$\therefore f\left( {\pi - x} \right) = {\cos ^5}\left( {\pi - x} \right) = -{\cos ^5}x$=-f(x)
$ \Rightarrow\int\limits_0^{\pi } {{{\cos }^5}x} dx=0$$ [\because \int _0^{2a}f(x)dx=0,if\ f(2a-x)=-f(x)]$
$\therefore \int\limits_0^{2\pi } {{{\cos }^5}x} dx=0$
Generate a complete, print-ready paper with questions like this in minutes — across 16+ boards, with answer keys.