If $a \ge 0$, then how can I find the constant $c >0$ such that for $x \ge 1$ and $0 \le b \le x/2$, $ \frac{1}{(x-b)^a} \le c \frac{1}{x^a}\;? $
An inequality involving $1/ x^a$
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inequality
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1Manipulate the inequality so that $x$ appears only on one side. Then maximize this function of $x$, – 2012-12-01
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You want to find some $c>0$ such that $ c\frac{(x-b)^a}{x^a}\geq1\ \ (1). $ The main observation here is that $ c\frac{(x-b)^a}{x^a}\geq c\frac{(x-x/2)^a}{x^a} = \frac{c}{2^a} $ Hence, if we require that $c\geq2^a$, then (1) is surely satisfied.