$\ln\left(8x\right)$
$2\left(2x^3-3x+4\right)+x^3-2x^2+x-1$
$\frac{\sin\left(6x\right)}{1-\sin^2\left(3x\right)}=2\tan\left(3x\right)$
$\left(2m^5\right)^2$
$\left(2-5\right)\cdot\left(12+4\cdot\left(3-8\right)\right)-\left(4-5\right)\cdot\left(11-4\cdot\left(8-3\cdot2\right)\right)+2$
$\sqrt{\:3\tan\left(z\right)\sec\left(z\right)}$
$x-19=-33$
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