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Just starting to learn big-oh and asymptotic analysis and I am stuck on this particular proof:

How can we prove 2^n is O(n!)? Thanks

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Also try cs.stackexchange.com and maybe a more specific question... (What did you try so far, what are your ideas, etc.) –  Michael May 28 '12 at 7:43
    
Isn't this a <math.stackexchange.com> question? –  Hidde May 28 '12 at 7:52
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1 Answer 1

To prove this, all you have show is that there exists some C such that

2n <= C*n!

for all n greater than some n0. This is trivial once you realize that both 2n and n! are products with n terms.

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Got it! Thanks! –  user1421195 May 28 '12 at 22:48
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