If $f\left(x\right)=\frac{2-x\cos x}{2+x\cos x}\text{\hspace{0.17em}and\hspace{0.17em}}g\left(x\right)={\log }_{e}x(x>0)$, then the value of $\underset{\frac{-\pi }{4}}{\overset{\frac{\pi }{4}}{\int }}g\left[f\left(x\right)\right]dx=$

$f\left(x\right)=\frac{2-x\cos x}{2+x\cos x}\text{\hspace{0.17em}and\hspace{0.17em}}g\left(x\right)={\log }_{e}x(x>0)$

$\underset{\frac{-\pi }{4}}{\overset{\frac{\pi }{4}}{\int }}g\left[f\left(x\right)\right]dx=$

$\text{Let\hspace{0.17em}}g\left[f\left(x\right)\right]=h\left(x\right)$

$=\underset{\frac{-\pi }{4}}{\overset{\frac{\pi }{4}}{\int }}\log \left(\frac{2-x\cos x}{2+x\cos x}\right)dx$

$h(-x)=\underset{\frac{-\pi }{4}}{\overset{\frac{\pi }{4}}{\int }}\log \left(\frac{2+x\cos x}{2-x\cos x}\right)dx$

$=-\underset{\frac{-\pi }{4}}{\overset{\frac{\pi }{4}}{\int }}\log \left(\frac{2-x\cos x}{2+x\cos x}\right)dx$

$=-h\left(x\right)$

$h\left(x\right)$ is odd

$\therefore I=0$.