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How do you find the limit of #1/(2x+sinx)# as x approaches #oo#?

1 Answer

Jun 28, 2016

0

Explanation:

#sin x in [-1,1] forall x#

so #lim_{x \to oo} y = lim_{x \to oo} 2x + sin x = oo#

#\implies lim_{x \to oo} 1/y = lim_{x \to oo} 1/(2x + sin x) = 0#

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