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$\lim_{x\to0}\left(\frac{ln\left(3x+e^x\right)}{x}\right)$

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$\left(3i+j-k\right)+\left(2i+3j-4k\right)$

$-4a\left(2a-5b+4c\right)$

$x^2-2x-300$

$4\cot^2\left(x\right)+3=15$

$\frac{1+\cos\left(a\right)+\sin\left(a\right)}{1+\cos\left(a\right)-\sin\left(a\right)}$

$\frac{\csc\left(x\right)}{\tan\left(x\right)\:+\:\cot\left(x\right)}=\cos\left(x\right)$

$3cos\left(x\right)+1=0$
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