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Given 3 sorted array. Find 3 elements, one from each array such that a+b=c. Can it be done less than O(n^3) time complexity? Please help me.

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2 Answers 2

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It can be done in O(N^2 * logN) complexity by iterating through 2 of the arrays for a and b and binary searching for c in the third array.

Another method would be O(N^2) by inserting the elements of one of the arrays into a hash, iterate for a and b in the other two arrays and looking if c = (a + b) exists in the hash.

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For method 2, is there any efficient way to solve it since it is given that all 3 arrays are already sorted? –  Neel Apr 26 '12 at 14:35
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You can't generate the (a,b) pairs better than O(N^2) ... The searching in the hash is O(1) –  gabitzish Apr 26 '12 at 14:39

Call the three arrays A, B and C, and the elements a, b and c.

While looping through the first two arrays, since if a is fixed, b can only increase, c also can only increase.

So you don't have to loop through C every time you have a pair of a and b; just loop through C while looping though B will do.

Now Suppose all three arrays have length O(N), the time complexity is O(N^2), since for each value in A, you need to go through all of B and all of C, the number which is O(N).

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