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What's the time complexity of this algorithm? My initial guess is that it's O(log[n])?

int array[] = new int[100];
int counter = 0;

for ( int i = 0; i < array.length; i++ ) {
    for ( int j = i + 1; j < array.length; j++ ) {
        if ( array[i] == array[j] ) {
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::: O(n^2) i guess –  boxed__l Sep 15 '13 at 11:39
lmgify… –  MrSimpleMind Sep 15 '13 at 11:41
@MrSimpleMind, that's a different question. –  Noyo Sep 15 '13 at 11:49

5 Answers 5

up vote 2 down vote accepted

Nope. This is O(N^2).

Look here section 4 under "How to Determine Complexities"

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The if part in your code gets executed about 1 + 2 + 3 +...+ n times (n - i - 1 where i = 0...n - 1, which is equal to 0,5*n*(n+1) which is O(n^2).

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There are two possible answers. The technically correct one is O(1), because the array has a constant length, so the number of inner loop iterations is a constant.

If we assume instead that the array is length n, then the numbers of iterations of the inner loop are n-1, n-2, n-3, ... , 1, 0. The sum of an arithmetic series of length n, starting at 0, is O(n^2).

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The order is O(n^2).

Explanation: Suppose the array length is n.
Then for iteration of first loop:
There will n-2 iterations of second loop.
so total time will be: (n-2)+(n-2)+............(n-2) //for n-1 times
which will be: (n-1)*(n-2).

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A formal way to deduce the time complexity of your algorithm:

enter image description here

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