std::prev_permutation

Transforms the range [first, last) into the previous permutation. Returns true if such permutation exists, otherwise transforms the range into the last permutation (as if by std::sort followed by std::reverse) and returns false.

If the type of *first is not Swappable(until C++11)BidirIt is not ValueSwappable(since C++11), the behavior is undefined.

[edit] Parameters

[edit] Return value

true if the new permutation precedes the old in lexicographical order. false if the first permutation was reached and the range was reset to the last permutation.

[edit] Exceptions

Any exceptions thrown from iterator operations or the element swap.

[edit] Complexity

Given \(\scriptsize N\)N as std::distance(first, last):

[edit] Possible implementation

template<class BidirIt>
bool prev_permutation(BidirIt first, BidirIt last)
{
    if (first == last)
        return false;
    BidirIt i = last;
    if (first == --i)
        return false;
 
    while (1)
    {
        BidirIt i1, i2;
 
        i1 = i;
        if (*i1 < *--i)
        {
            i2 = last;
            while (!(*--i2 < *i))
                ;
            std::iter_swap(i, i2);
            std::reverse(i1, last);
            return true;
        }
 
        if (i == first)
        {
            std::reverse(first, last);
            return false;
        }
    }
}

[edit] Notes

Averaged over the entire sequence of permutations, typical implementations use about 3 comparisons and 1.5 swaps per call.

Implementations (e.g. MSVC STL) may enable vectorization when the iterator type satisfies LegacyContiguousIterator and swapping its value type calls neither non-trivial special member function nor ADL-found swap.

[edit] Example

#include <algorithm>
#include <iostream>
#include <string>
 
int main()
{
    std::string s = "cab";
 
    do
    {
        std::cout << s << ' ';
    }
    while (std::prev_permutation(s.begin(), s.end()));
 
    std::cout << s << '\n';
}

cab bca bac acb abc cba

[edit] See also