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Asked: 2026-06-18T07:08:24+00:00

Suppose there is a sorting algorithm that in addition to regular comparisons, is also

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Suppose there is a sorting algorithm that in addition to regular comparisons, is also allowed super-comparisons: a super-comparison takes in three elements and outputs those elements in order from smallest to largest.

I want to find a lower bound.

Since unlike a regular comparison that only has two possible outcomes, a super-comparison will have 3! possible outcomes, I believe it should be log3(n!).

I am not sure though, any ideas?

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  1. Editorial Team

    Actually, the number of super-comparisons is log_6(n!), this is because you have 6 possible outcomes per super-compare op, and not 3 (3! = 6). Thus, by repeatedly invoking these super-comparisons on the tree representing the random permutation, you get to a sorted array within log_6(n!) compare ops.

    Note that when it comes to asymptotic time complexity – it remains O(nlogn) the base of the logarithm does not matter because you can switch bases easily:

    log_6(n!) = log_2(n!)/log_2(6) = log_2(n!) / CONST 
=> log_6(n!) is in O(log_2(n!))
=> log_6(n!) is in O(nlogn)

    P.S A good intuition will be to see what happens at “infinity” i.e. what you have a super-comparison that sorts n elements. Obviously, you will need a single such op to sort an array, and indeed log_n!(n!) = 1, while log_n(n!) > 1.

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