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Currently, I have a barebones implementation of the quicksort algorithm to sort some randomly generated numbers. The sort is efficient, more so than merge sort. However, for specific number sets (e.g. reversed numbers that need to be sorted the other way around), I need to optimized the pivot.

int* partition (int* first, int* last);
void quickSort(int* first, int* last) {
    if (last - first <= 1) return;

    int* pivot = partition(first, last);
    quickSort(first, pivot);
    quickSort(pivot + 1, last);
}

int* partition (int* first, int* last) {
    int pivot = *(last - 1);
    int* i = first;
    int* j = last - 1;

    for (;;) {
        while (*i < pivot && i < last) i++;
        while (*j >= pivot && j > first) j--;
        if (i >= j) break;
        swap (*i, *j);
    }

    swap (*(last - 1), *i);

    return i;
}

So for this code, I either want to use a random number as the pivot for the partitioning step, or use the median of the first, middle, and last elements as the pivot.

How would I do this?

I'm new to sorting algorithms, and my understanding of them is not complete just yet.

share|improve this question
up vote 2 down vote accepted

Just change these lines:

    int pivot = *(last - 1);
    …
    swap ((last - 1), i);

to something like:

    int* pos = (first + rand(last - first));
    int pivot = *pos;
    …
    swap (pos, i);

or

    int* pos = mean_of_three((last - 1), (first), ((first + last) / 2));
    int pivot = *pos;
    …
    swap (pos, i);

where mean_of_three take 3 pointers and returns a pointer to the mean.

share|improve this answer
    
error: invalid conversion from ‘int’ to ‘int*’ on the line int* pos = (rand(last - 1)); – Edge May 23 '12 at 6:19
    
then add a cast. – Thomash May 23 '12 at 6:20
    
Also, rand() isn't meant to take any parameters – Edge May 23 '12 at 6:22
    
I assume rand(n) is a function that gives you a random number between 0 and n-1. – Thomash May 23 '12 at 6:22
    
I now have a function random, that looks like this. int random (int num) { int random = rand(); while (random > 0 && random < num) { random = rand(); } return random; } Calling it using your code produces errors, "initializing argument 1 of ‘int random(int)’" and invalid conversion from int to int*. I don't know how to cast with pointers. – Edge May 23 '12 at 6:32

As you have already mentioned, selecting first or last element of the array as pivot is not the best practice and cause the algorithm to fall into O(n^2). the best choice of pivot selection algorithm depends on the data that your program is likely to encounter. If there is a chance that the data will be sorted or nearly sorted, then random pivot is a very good choice(and very easy to implement) to avoid the O(n^2) behavior. On the other hand, the expense of selecting the middle element rather than the first is minimal and provides quite effective protection against sorted data.

Then again, if you are assured that your data will not be sorted or nearly sorted, then the median-of-three partitioning strategy seems to be the best.

int PickPivotUsingMedian(int a[], int first, int last)
{
int mid = (first+ right)/2;
if (a[mid ] < a[first]) 
    swap(&a[first],&a[mid ]);
if (a[last] < a[first])
    swap(&a[first],&a[last]);
if (a[last]< a[mid ])
    swap(&a[mid ],&a[last]);

swap(&a[mid], &a[last - 1]);//since the largest is already in the right.
return a[last - 1];
}
share|improve this answer
    
Your answer doesn't information that is not already in the question. – Thomash May 23 '12 at 6:09

Choose a random index within the bounds of your array and use that element as the pivot.

share|improve this answer
    
How would I go about modifying my code to reflect that? – Edge May 23 '12 at 6:00

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