Evaluate: $\DeclareMathOperator{\sign}{sign}$ $$\int_{-\pi}^{\pi} \dfrac{\sign(x)\arctan(x^2)-|x|}{\sin^2(x)+|\cos(x)|}\,dx$$
My idea:
\begin{align*}I=\int_{-\pi}^{\pi} \frac{\sign(x)\arctan(x^2)-|x|}{\sin^2(x)+|\cos(x)| }\,dx &=\int_{-\pi}^{\pi} \dfrac{\sign(-x)\arctan((-x)^2)-|-x|}{\sin^2(x)+|\cos(x)|}\,dx\\ &=\int_{-\pi}^{\pi} \frac{-\sign(x)\arctan(x^2)-|x|}{ \sin^2(x)+|\cos(x)| }\,dx. \end{align*}
So, it means that the integral $$\int_{-\pi}^{\pi} \frac{\sign(x)\arctan(x^2)}{\sin^2(x)+|\cos(x)| }\,dx=0.$$
Therefore, my integral now looks like
$$I=\int_{-\pi}^{\pi} \frac{-|x|}{\sin^2(x)+|\cos(x)|}\,dx,$$
and since my integrand is even function, I have:
$$I=-2\int_{0}^{\pi} \frac{|x|}{ \sin^2(x)+|\cos(x)| }\,dx=-2\int_{0}^{\pi} \frac{x}{ \sin^2(x)+|\cos(x)| }\,dx.$$
And so, \begin{align*} \frac{I}{2}&=-\int_{0}^{\pi} \frac{x}{ \sin^2(x)+|\cos(x)| }\,dx\\ &=-\int_{0}^{\pi} \frac{\pi-x}{ \sin^2(\pi-x)+|\cos(\pi-x)|}\,dx\\ &=-\pi\int_{0}^{\pi} \frac{dx}{ \sin^2(x)+|\cos(x)|}+\int_{0}^{\pi} \frac{x}{ \sin^2(x)+|\cos(x)| }\,dx\\ &=-\pi\int_{0}^{\pi} \frac{dx}{ \sin^2(x)+|\cos(x)| }-\frac{I}{2}. \end{align*}
Hence, $$I=-\pi\int_{0}^{\pi} \dfrac{dx}{ \sin^2(x)+|\cos(x)| }.$$
That is the end of the road. I tried to eliminate absolute value over the cosine but always get some divergent integral. Is this computation correct and if it is, what next? Bonus question: Where can I find more problems like this?
I can't take full credit for this, Wolfram can be very helpful when you know how to coax it along.
For the integral
$$\int{dx\over\sin^2x+\cos x},$$
let
\begin{align*} u &= \tan\left(\frac{x}{2}\right)\\ du &= \frac{1}{2}\sec^{2}\left(\frac{x}{2}\right)\,dx. \end{align*}
Then we have \begin{align*} \sin x &= \frac{2\sin x}{1 +\cos x}\cdot \frac{1+\cos x}{2} = \frac{2\tan^{2}\left(\frac{x}{2}\right)}{\sec^{2}\left(\frac{x}{2}\right)} = \frac{2\tan^{2}\left(\frac{x}{2}\right)}{\tan^{2}\left(\frac{x}{2}\right)+1}=\frac{2u^{2}}{u^{2}+1}\\ \cos x&= \frac{2\cos x}{1+\cos x}\cdot\frac{1+\cos x}{2}=\frac{1+\cos x - 1 + \cos x}{(1+\cos x)\sec^{2}\left(\frac{x}{2}\right)}=\frac{1-\frac{1-\cos x}{1+\cos x}}{\sec^{2} \left(\frac{x}{2}\right)}= \frac{1-u^{2}}{u^{2}+1}\\ dx &= \frac{2\,du}{u^{2}+1}. \end{align*}
The integral then becomes \begin{align*} 2\int \frac{du}{(u^{2}+1)\left[\frac{4u^{2}}{(u^{2}+1)^{2}}+\frac{1-u^{2}}{u^{2}+1}\right]} &=-2\int\frac{u^{2}+1}{u^{4}-4u^{2}-1}\,du\\ &=-2\int\frac{u^{2}+1}{\left(u^{2}-\sqrt{5}-2\right)\left(u^{2}+\sqrt{5}-2\right)}\,du. \end{align*}
We can then use a partial fraction decomposition, which I will omit, to change the integral to \begin{align*} -\int\frac{\sqrt{5}-3}{\sqrt{5}\left(u^{2}+\sqrt{5}-2\right)}\,du -\int\frac{-3-\sqrt{5}}{\sqrt{5}\left(-u^{2}+\sqrt{5}+2\right)}\,du, \end{align*}
which becomes \begin{align*}\frac{3-\sqrt{5}}{\sqrt{5}}\int\frac{du}{u^{2}+\sqrt{5}-2} + \frac{3+\sqrt{5}}{\sqrt{5}}\int\frac{du}{-u^{2} + \sqrt{5} +2}. \end{align*}
We can rewrite this as $$\frac{3-\sqrt{5}}{\sqrt{5}(\sqrt{5}-2)}\int\frac{du}{1+\left(\frac{u}{\sqrt{\sqrt{5}-2}}\right)^{2}}+\frac{3+\sqrt{5}}{\sqrt{5}(\sqrt{5}+2)}\int\frac{du}{1-\left(\frac{u}{\sqrt{\sqrt{5}+2}}\right)^{2}}. $$
This then becomes
$$\frac{3-\sqrt{5}}{\sqrt{5}\sqrt{\sqrt{5}-2}}\tan^{-1}\left(\frac{u}{\sqrt{\sqrt{5}-2}}\right)+\frac{3+\sqrt{5}}{\sqrt{5}\sqrt{\sqrt{5}+2}}\tanh^{-1}\left(\frac{u}{\sqrt{\sqrt{5}+2}}\right)+C, $$
or substituting back
$$\frac{3-\sqrt{5}}{\sqrt{5}\sqrt{\sqrt{5}-2}}\tan^{-1}\left(\frac{\tan\left(\frac{x}{2}\right)}{\sqrt{\sqrt{5}-2}}\right)+\frac{3+\sqrt{5}}{\sqrt{5}\sqrt{\sqrt{5}+2}}\tanh^{-1}\left(\frac{\tan\left(\frac{x}{2}\right)}{\sqrt{\sqrt{5}+2}}\right)+C.$$
Since this expression vanishes at $x=0$, your integral is given by
$$-2\pi\left(\frac{3-\sqrt{5}}{\sqrt{5}\sqrt{\sqrt{5}-2}}\tan^{-1}\left(\frac{\tan\left(\frac{\pi}{4}\right)}{\sqrt{\sqrt{5}-2}}\right)+\frac{3+\sqrt{5}}{\sqrt{5}\sqrt{\sqrt{5}+2}}\tanh^{-1}\left(\frac{\tan\left(\frac{\pi}{4}\right)}{\sqrt{\sqrt{5}+2}}\right)\right)\approx -8.734.$$