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This question is for revision from a past test paper just wondering if i am doing it right

work out the time complexity T(n) of the following piece of code in terms of number of operations for a given integer n:

    for ( int i = 1; i < n*n*n; i *= n ) {
      for ( int j = 0; j < n; j += 2 ) {
         for ( int k = 1; k < n; k *= 3 ) {
         // constant number C of elementary operations
         }
       }
     }

so far i've come up with n^3 * n * log n = O( n^4 log n)

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closed as too localized by casperOne Apr 3 '13 at 11:49

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2 Answers 2

up vote 0 down vote accepted

i think your missing the key point. I don't see anywhere in the question it asking you to work out complexity in terms of Big-Oh. Instead its asking for number of operations for a given integer n.

Here is my solution,

For a given n, the inner loop variable successively takes the following values: k = 1 ,3^0, 3, 3^2, . . . , 3^(m-1)

Therefore, the inner loop performs C log3n operations for each pair of values of the variables j and i.

The middle loop variable j takes n=2 values,

And the outer loop variable i takes three values, 1, n, and n^2 for a given n.

Therefor the time complexity of the whole piece of code is equal to T(n) = 3C(n/2)log3n = 1.5Cnlog3n.

You may want to check this, but this is my interpretation of your question.

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thanks for the help!, went back and looked at my notes and this is correct. –  user2233941 Apr 2 '13 at 6:24

I'll have a go.

The first loop is O(1) constant since it will always run 3 iterations (1*n*n*n == n*n*n).

for ( int i = 1; i < n*n*n; i *= n )

The second loop is O(0.5n) = O(n).

for ( int j = 0; j < n; j += 2 )

The third loop is O(log n).

for ( int k = 1; k < n; k *= 3 )

Therefore the time complexity of the algorithm is O(n log n).

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