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I basically have two vector with unordered elements who can be checked for only equality. Is there any standard algorithm like std::equal to do compare all n^2 pairs and check whether all the elements of one vector lies in the other?

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Sort in O(nlogn) and compare in O(n)? –  dyp Aug 28 '13 at 11:57
6  
This could be a job for std::unordered_set. –  Jon Aug 28 '13 at 12:00
1  
@DyP: unordered elements that can only be checked for equality sounds as impossible to sort. –  David Rodríguez - dribeas Aug 28 '13 at 12:15
    
@Jon It could be. I wouldn't have thought that the unordered containers supported == and !=, but apparently they do. The worst case complexity is O(n^2) (which is why I wouldn't have expected it to be supported), but in most cases, you probably won't have the worst case. –  James Kanze Aug 28 '13 at 12:22
2  
@DavidRodríguez-dribeas So it sounds. On the other hand, I don't think I've ever seen a data type for which it was impossible to define some sort of arbitrary ordering which was sufficient for sort (even if it doesn't correspond to any logical ordering). –  James Kanze Aug 28 '13 at 12:25
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3 Answers

How big are the vectors? Something like:

template <typename T>
bool
unorderedEqual( std::vector<T> const& v1, std::vector<T> const& v2 )
{
    return v1.size() == v2.size()
        && std::find_if(
            v1.begin(), v1.end(),
            [&v2]( T const& elem ) { 
                return std::find( v2.begin(), v2.end(), elem ) == v2.end();
            } ) == v1.end();
}

might do the trick, but it's O(n^2) (which means it's only good for very small vectors), and it won't work if the vectors contain duplicate elements. (Note too that I've not tested it, so it probably contains typos and other errors. But it should be close enough to give the general idea.)

Otherwise, I think you'll have to sort; even if the objects don't support less than, you should be able to define an ordering function. (The order can be arbitrary, with no significance except to allow the use of std::sort.)

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For duplicates, I guess you should be using std::count ? Still, it seems bothersome to actually not use a side data-structure (like a std::unordered_map<T, size_t> to keep count of the number of occurrences of each element). –  Matthieu M. Aug 28 '13 at 12:50
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The least expensive way for larger vectors is most likely to sort both and then test for equality

#include <vector>
#include <algorithm>

// ....

vector<yourType> v1;
vector<yourType> v2;

sort(v1);
sort(v2);
bool result = equal(begin(v1), end(v1), begin(v2));
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Assuming your vector holds data, which is expensive to copy or swap:

#include <algorithm>
#include <iostream>
#include <vector>
#include <unordered_set>

typedef std::vector<std::size_t> Index;
typedef std::vector<int> Data;
inline void init(Index& index, const Data& data) {

    struct Less
    {
        const Data& data;

        Less(const Data& data)
        :   data(data)
        {}

        bool operator () (std::size_t a, std::size_t b) {
            return data[a] < data[b];
        }
    };

    index.reserve(data.size());
    for(size_t i = 0; i < data.size(); ++i) {
        index.push_back(i);
    }
    Less less(data);
    std::sort(index.begin(), index.end(), less);
}

int main(){

    Data d0 { 1, 0, 4, 2, 5, 3 };
    Data d1 { 5, 2, 3, 0, 4, 1 };

    if(d0.size() == d1.size()) {
        Index i0;
        Index i1;
        init(i0, d0);
        init(i1, d1);
        for(std::size_t i = 0; i < d0.size(); ++i) {
            std::cout << d0[i0[i]] << " == " << d1[i1[i]] << std::endl;
            if(d0[i0[i]] != d1[i1[i]]) {
                std::cout << "Not equal" << std::endl;
                return 1;
            }
        }
    }
    std::cout << "Equal" << std::endl;
    return 0;
}
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