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Find a Θ notation in terms of n for the number of times the statement x = x + 1 is executed in the segment below:

i = 1
while (i < n^2)
    x = x + 1
    i = 3i

I know that i has a growth rate of O(3^k), but I am not sure how to get Θ notation in terms of n.

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You have to find out, given n, how many times can you perform i = 3*i, starting from i = 1 before i >= n^2. You already know that after k steps, i = 3^k, so your task is solving

3^(k-1) < n^2 <= 3^k

, that is, write k as a function of n.

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So doing that, I look at n^2 <= 3^k. If I take the log of both sides, I get k = log base 2 of n. So that would give me a Θ(logn). Right? – Teknos Feb 7 '12 at 15:47
    
You've lost a couple of constants, but for the Θ that doesn't matter. – Daniel Fischer Feb 7 '12 at 15:56

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