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All,

I have always found myself being doubtful when it comes to finding the complexity of a given code/algorithm. Ex.

FOR I=1 TO N
do J=1
WHILE J*J < I
do J=J+1

The above code has time complexity of Big Theta (N^(3/2)) . However, I don't understand how the answer is derived.

Can anyone please guide me to the steps for finding the complexity or any specific resource that can help me? Most of the times, I only find code with complexity N, lg N , N lg N and N^2

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The example you gave is not Big-Oh, it's Big-Theta. –  jakev Feb 9 '11 at 0:03
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1 Answer

up vote 2 down vote accepted

The approach is always the same: work out how many operations are being executed as a function of N, and then throw away low-order terms and constants.

So in your example above, the inner loop iterates approximately sqrt(I) times, so we have (approximately) sqrt(1) + sqrt(2) + sqrt(3) + ... The result is a function whose highest-order term is N^(3/2).

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