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Does time complexity of the following segment of program could be O(2^n)? I’m confused

n=1;
for j=1 to n do
 output(j);
 n=2*n;
end {for}
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No, this is O(n).

You are just raising n to the 2^n power.

This is because the number of iterations of the loop is "n", regardless of the final answer or the computation inside it.

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So if it was n = lg(n) instead of n = 2n it would still be O(n)? Not sure that's correct. – James Feb 13 '13 at 20:22
    
That's right. It's the number of times that the loop iteration occurs, not the calculation inside. – Srikant Krishna Feb 13 '13 at 20:25

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