For which real k do we have cosh x ≤ exp(k x2) for all real x?
Solution
Answer: k ≥ 1/2.
cosh x = 1 + x2/2! + x4/4! + ... + x2n/(2n)! + ... and exp(x2/2) = 1 + x2/2 + x4/8 + ... + x2n/(2nn!). But 2nn! = 2n.(2n - 2).(2n - 4) ... 2 < (2n)! for n > 1, so cosh x < ex2/2 for all x. Hence the inequality holds for k ≥ 1/2.
cosh x = 1 + x2/2 + o(x), exp(k x2) = 1 + kx2 + o(x). So if k < 1/2, then cosh x > exp(k x2) for sufficiently small x. Thus the inequality does not hold for k < 1/2.
© John Scholes
jscholes@kalva.demon.co.uk
10 Dec 1999
Last corrected/updated 21 Nov 02