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What's the time complexity of this loop?

j=2
while(j <= n)
{
    //body of the loop is Θ(1)
    j=j^2
}
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1 Answer 1

up vote 2 down vote accepted

You have

j = 2

and each loop : j = j^2

The pattern is :

2     = 2^(2^0)
2*2   = 2^(2^1)
4*4   = 2^(2^2)
16*16 = 2^(2^3)

Which can be seen as :

2^(2^k) with k being the number of iteration

Hence loop stops when :

2^(2^k) >= n
log2(2^(2^k)) >= log2(n)
2^k >= log2(n)
log2(2^k) >= log2(n)
k >= log2(log2(n))

the complexity is log2(log2(n))

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can you explain why it would be Log2(n)? –  user123 Aug 1 '12 at 7:28
1  
Yes sorry, i was on my mobile phone and planned to explain more when in front of a computer. And the answer was wrong on top of that ... –  Al_th Aug 1 '12 at 7:44
    
Here is the right answer explained :) –  Al_th Aug 1 '12 at 7:53
    
thanks. it helps me. –  user123 Aug 1 '12 at 8:47

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