Let f(x)=[πx]+21sin2x. $\begin{array}{l}
\text { So, } f(-x)=\frac{\sin ^{2}(-x)}{\left[\frac{-x}{\pi}\right]+\frac{1}{2}} \quad \because[-x]=-1-[x] \
\Rightarrow f(-x)=\frac{\sin ^{2} x}{-1-\left[\frac{x}{\pi}\right]+\frac{1}{2}}=\frac{\sin ^{2} x}{-\frac{1}{2}-\left[\frac{x}{\pi}\right]}=-f(x)
\end{array}\Rightarrow f(x)isoddfunctionHence,\int_{-2}^{2} f(x) d x=0$