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So I have a vector say:

vector<pair<pair<int,int>,pair<int,int>>>

having elements as:

[(11,13),(2,1)], [(5,6),(1,2)] ,[(9,10),(1,3)] ,[(5,8),(3,4)] , 
[(12,14),(2,7)].

After sorting (i.e. primarily with respect to the first value of the second pair and secondarily with respect to second value of the first pair... So after sorting the output should look like this:

[(5,6),(1,2)] ,[(9,10),(1,3)] ,[(11,13),(2,1)] ,[(12,14),(2,7)] ,
[(5,6),(3,4)]

I had read that we can sort using first or the second value if a vector contains a pair , but how to proceed if a vector contains nested pairs....

Edit: Tried to implement it as shown here :https://www.geeksforgeeks.org/sorting-vector-of-pairs-in-c-set-1-sort-by-first-and-second/

here's the code:

bool sortbysecfirst(const pair<pair<int,int>,pair<int,int>> &a,const pair<pair<int,int>,pair<int,int>> &b) { 
    return (a.second.first < b.second.first); 
}

bool sortbyfirstsec(const pair<pair<int,int>,pair<int,int>> &a,const pair<pair<int,int>,pair<int,int>> &b) { 
    return (a.first.second < b.first.second); 
}

sort(arr.begin(),arr.end(),sortbysecfirst);
sort(arr.begin(),arr.end(),sortbyfirstsec);

Now for the following pairs :

[(11,13)(2,1)],[(5,6)(1,2)],[(9,10)(1,3)],[(5,8)(3,4)],[(6,7)(1,5)],
 [(10,15)(5,6)],[(12,14)(2,7)],[(1,2),(1,8)],

The answer should be:

[1, 2, 1, 8], [5, 6, 1, 2], [6, 7, 1, 5],  [9, 10, 1, 3], [11, 13, 2, 1], [12, 14, 2, 7],[5, 8, 3, 4], [10, 15, 5, 6], 

But i am getting this as an answer:

[1, 2, 1, 8], [5, 6, 1, 2], [6, 7, 1, 5], [5, 8, 3, 4], [9, 10, 1, 3], [11, 13, 2, 1], [12, 14, 2, 7], [10, 15, 5, 6],
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  • 1
    @VladFromMoscow could you explain why you think the dupe is not appropriate? Passing a lambda to std::sort with the desired comparison operation is all I see in an answer here... Jun 28 '19 at 14:48
  • 1
    @MaxLanghof Is there mentioned the class std::pair and the function std::tie? It seems that there is an answer to a too general question. Jun 28 '19 at 14:49
  • @MaxLanghof It is not enough just to call std::sort. Jun 28 '19 at 15:00
  • @MaxLanghof As for the second part of your question then beginners usually do not know about the function std::tie. Jun 28 '19 at 15:00
  • @VladfromMoscow You're right, I did misread the requirements. Jun 28 '19 at 15:04
2

You can use standard function std::tie declared in header <tuple> .

Here you are.

#include <iostream>
#include <utility>
#include <tuple>
#include <vector>
#include <iterator>
#include <algorithm>

int main()
{
    std::vector<std::pair<std::pair<int,int>, std::pair<int,int>>> v =
    {
        { { 11, 13 }, { 2, 1 } }, { { 5, 6 }, { 1, 2 } }, { { 9, 10 }, { 1, 3 } } ,
        { { 5, 8 }, { 3, 4 } }, { { 12, 14 }, { 2, 7 } }
    };

    for ( const auto &p : v )
    {
        std::cout << "{ ";          
        std::cout << "{ " << p.first.first << ", " << p.first.second << " }, ";
        std::cout << "{ " << p.second.first << ", " << p.second.second << " } ";
        std::cout << "}, "; 
    }

    std::cout << '\n';

    std::sort( std::begin( v ), std::end( v ),
               []( const auto &p1, const auto &p2 )
               {
                    return std::tie( p1.second.first, p1.first.second ) < 
                           std::tie( p2.second.first, p2.first.second );    
               } );

    for ( const auto &p : v )
    {
        std::cout << "{ ";          
        std::cout << "{ " << p.first.first << ", " << p.first.second << " }, ";
        std::cout << "{ " << p.second.first << ", " << p.second.second << " } ";
        std::cout << "}, "; 
    }

    std::cout << '\n';
}

The program output is

{ { 11, 13 }, { 2, 1 } }, { { 5, 6 }, { 1, 2 } }, { { 9, 10 }, { 1, 3 } }, { { 5, 8 }, { 3, 4 } }, { { 12, 14 }, { 2, 7 } }, 
{ { 5, 6 }, { 1, 2 } }, { { 9, 10 }, { 1, 3 } }, { { 11, 13 }, { 2, 1 } }, { { 12, 14 }, { 2, 7 } }, { { 5, 8 }, { 3, 4 } }, 

As for this code snippet shown by you

bool sortbysecfirst(const pair<pair<int,int>,pair<int,int>> &a,const pair<pair<int,int>,pair<int,int>> &b) { 
    return (a.second.first < b.second.first); 
}

bool sortbyfirstsec(const pair<pair<int,int>,pair<int,int>> &a,const pair<pair<int,int>,pair<int,int>> &b) { 
    return (a.first.second < b.first.second); 
}

sort(arr.begin(),arr.end(),sortbysecfirst);
sort(arr.begin(),arr.end(),sortbyfirstsec);

then each call of std::sort sorts the vector anew destroying the order set by the previous call.

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