Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm working on a quicksort-variant implementation based on the Select algorithm for choosing a good pivot element. Conventional wisdom seems to be to divide the array into 5-element blocks, take the median of each, and then recursively apply the same blocking approach to the resulting medians to get a "median of medians".

What's confusing me is the choice of 5-element blocks rather than 3-element blocks. With 5-element blocks, it seems to me that you perform n/4 = n/5 + n/25 + n/125 + n/625 + ... median-of-5 operations, whereas with 3-element blocks, you perform n/2 = n/3 + n/9 + n/27 + n/81 + ... median-of-3 operations. Being that each median-of-5 is 6 comparisons, and each median-of-3 is 2 comparisons, that results in 3*n/2 comparisons using median-of-5 and n comparisons using median-of-3.

Can anyone explain this discrepancy, and what the motivation for using 5-element blocks could be? I'm not familiar with usual practices for applying these algorithms, so maybe there's some way you can cut out some steps and still get "close enough" to the median to ensure a good pivot, and that approach works better with 5-element blocks?

share|improve this question

2 Answers 2

up vote 4 down vote accepted

The reason is that by choosing blocks of 3, we might lose the guarantee of having an O(n) time algorithm.

For blocks of 5, the time complexity is

T(n) = T(n/5) + T(7n/10) + O(n)

For blocks of 3, it comes out to be

T(n) = T(n/3) + T(2n/3) + O(n)

Check this out: http://www.cs.berkeley.edu/~luca/w4231/fall99/slides/l3.pdf

share|improve this answer
    
That settles it. Thanks! –  R.. Oct 11 '10 at 17:10
    
Just curious, can you clarify how from "T(n) ≤ T(n/5) + T(0.7n) + cn" follows "T(n) ≤ c*n*(1 + (9/10) + (9/10)^2 + ...)" ? That's the one part I don't get in wikipedia article and your paper. Thanks! –  Nikita Rybak Oct 11 '10 at 17:23
    
@Nikita: One way to see it is to write it as T(n) <= T(7n/10) + cn + cn/5 + cn/25 + .... Then write it as T(n) <= cn + (7cn/10 + cn/5) + (49cn/100 + cn/25) + ... + <= cn + cn*9/10 + cn*(9/10)^2 + ... –  Aryabhatta Oct 11 '10 at 17:32

I believe it has to do with assuring a "good" split. Dividing into 5-element blocks assures a worst-case split of 70-30. The standard argument goes like this: of the n/5 blocks, at least half of the medians are >= the median-of-medians, hence at least half of the n/5 blocks have at least 3 elements (1/2 of 5) >= median-of-medians, and this gives a 3n/10 split, which means the other partition is 7n/10 in the worst case.

That gives T(n) = T(n/5) + T(7n/10) + O(n).

Since n/5 + 7n/10 < 1, the worst-case running time is O(n).

Choosing 3-element blocks makes it thus: at least half of the n/3 blocks have at least 2 elements >= median-of-medians, hence this gives a n/3 split, or 2n/3 in the worst case.

That gives T(n) = T(n/3) + T(2n/3) + O(n).

In this case, n/3 + 2n/3 = 1, so it reduces to O(n log n) in the worst case.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.