$\tan^2\left(\infty\right)\cdot\left(1-\sin^2\left(\infty\right)\right)=\sin^2\left(\infty\right)$
$3x+2y-5x+4y$
$\left(a-16\right)\left(a+11\right)$
$\int x^3\arccot\left(x^2\right)dx$
$-4x^3+3+5-2x-5+2x^3-2x$
$\left(12a^5-6a-10a^3\right)-\left(10a-2a^5-14a^4\right)$
$x^2=x+9$
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