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In the book programming interviews exposed it says, the complexity of the program below is O(N), but I dont understand how this is possible. Can someone explain ?

int var= 2;
for (int i=0 ; i<N ; i++) {
   for (int j=i+1 ; j<N ; j*=2) {
      var += var;
   }
}
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1  
"It says" What says? Tell us whatever it is that you are assuming here. –  dmckee Sep 5 '12 at 17:21
    
I made the edit, sorry about the vagueness –  Nick Chris Sep 5 '12 at 17:26

2 Answers 2

up vote 10 down vote accepted

You need a bit of math to see that. The inner loop iterates Θ(1 + log [N/(i+1)]) times (the 1 + is necessary since for i >= N/2, [N/(i+1)] = 1 and the logarithm is 0, yet the loop iterates once). j takes the values (i+1)*2^k until it is at least as large as N, and

(i+1)*2^k >= N <=> 2^k >= N/(i+1) <=> k >= log_2 (N/(i+1))

using mathematical division. So the update j *= 2 is called ceiling(log_2 (N/(i+1))) times and the condition is checked 1 + ceiling(log_2 (N/(i+1))) times. Thus we can write the total work

N-1                                   N
 ∑ (1 + log (N/(i+1)) = N + N*log N - ∑ log j
i=0                                  j=1
                      = N + N*log N - log N!

Now, Stirling's formula tells us

log N! = N*log N - N + O(log N)

so we find the total work done is indeed O(N).

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@Daniel Fischer's answer is correct.

I would like to add the fact that this algorithm's exact running time is as follows:

enter image description here

Which means:

enter image description here

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