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The problem is simple if I sort all the values and pick the fist K values. But it wastes too much time because maybe the smallest K values has been sorted before the whole array is sorted. I think the way to solve this problem is to add a flag in the code, but I can not figure out how to put the flag to judge whether the smallest k values has been sort.

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2 Answers 2

up vote 3 down vote accepted

You can use random selection algorithm to solve this problem with O(n) time. In the end, just return sub-array from 0 to k.

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Is that means to sort the whole array is a must? –  Roger Zhu Dec 5 '12 at 5:45
    
No, in random selection algorithm, it doesn't sort whole array, in the end, the K smallest values just in the left side of Array[K]. So you just need to return sub-array from 0 to K. It just uses the partition idea of quick sort, but has a very excellent expected running time –  bhuang3 Dec 5 '12 at 5:49
    
I have read the wiki, I know the idea about solving this problem. Thx for your help –  Roger Zhu Dec 5 '12 at 5:52
    
You're welcome... –  bhuang3 Dec 5 '12 at 5:53

I think the problem can be solved by finding the kth smallest value. Suppose the signature of the function partition in quicksort is int partition(int* array, int start, int end), here is pseudocode which illustrate the basic idea:

int select(int[] a, int start, int end, int k)
{
    j = partition(a,start,end);

    if( k == j)
        return a[j];
    if( k < j )
        select(a,start,j-1,k);
    if( k > j )
        select(a,j+1,end,k-j);
}

index = select(a, 0, length_of_a, k);

Then a[0...index] is the first k smallest values in array a. You can further sort a[0...index] if you want them sorted.

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