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Is there a way to delete duplicate elements from vector container containing string elements while maintaining order.

Till now I have used set method, but it doesn't retain the order.

I don't know how to use remove_if with respect to this problem.

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marked as duplicate by Mehrdad, Andrew Barber Aug 5 '13 at 19:14

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
If the container has an order (That is, its elements are sortered) duplicates are contiguous. So, where is the problem? If you remove a duplicate, the order is not modified. –  Manu343726 Aug 3 '13 at 14:19
4  
@Manu343726: "has an order" does not mean "is sorted". –  Benjamin Lindley Aug 3 '13 at 14:21
    
Do you want to only remove consecutive repeated values (like the Unix command uniq), or also later reprtitions? That is, if your original vector looks like { "apples", "apples", "oranges", "apples", "grapes" }, should the result be { "apples", "oranges", "apples", "grapes" } or { "apples", "oranges", "grapes" }? –  celtschk Aug 3 '13 at 19:57

5 Answers 5

up vote 4 down vote accepted

How about using a temporary container:

std::vector< int >::iterator i , j ;
std::set< int > t_set;
for( i = v.begin() , j = v.begin() ; i != v.end() ; ++i )
    if( t_set.insert( *i ).second) 
        *j++ = *i ;
v.erase( j , v.end() ); 

Using std::remove_if, I can think of this:

std::set<int> t_set;
std::vector<int> res; //Resultant vector

remove_copy_if(v.begin(), v.end(), std::back_inserter(res), 
    [&t_set](int x){ 
        return !t_set.insert(x).second; 
    } );
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1  
+1, I've posted almost identical solution it seams, but much later than you did. This is fastest (O(n log n)) of doing this. –  Leonid Volnitsky Aug 3 '13 at 16:30
    
@LeonidVolnitsky :D –  P0W Aug 3 '13 at 16:33
    
If the objects are expensive to copy (the question speaks about strings; it doesn't say how long those are), you could also store the iterators into the original vector in the set, using a custom comparison functor which dereferences the iterators. Also, you might use swap instead of assignment if those objects have cheap swap. In C++11, move assignment would be the obvious choice. –  celtschk Aug 3 '13 at 20:09
    
It is giving this error while using std::remove_if - expected primary-expression before '[' token –  Mayank Lal Aug 4 '13 at 3:49
    
Temporary container solution worked expeditiously. –  Mayank Lal Aug 4 '13 at 4:00

You could create an empty array, then iterate over the original vector and only copy over the first instance of each item in the vector. You could keep track of whether or not you've seen an item yet in the vector by adding it to a set and checking for an items presence in the set before adding it to the new array.

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You could do this:

 std::vector<int> v = { 1, 2, 2, 3, 4, 5, 6, 7, 8, 9, 8 };
 // 1 2 2 3 4 5 6 7 8 9 8

 for(size_t i=0;i<v.size();i++)
 {
     for(size_t j=0;j<v.size();j++)
     {
         if(v[i] == v[j] && i != j)
         {
              v.erase(v.begin()+j);
              j--; // Fix for certain datasets ie: 
         }         //                             1 2 1 1
     }   
 }

 // Produces:
 // 1 2 3 4 5 6 7 8 9
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In order to make sure you don't first occurrence of a value, make sure to pass the current iterator + 1 as the first argument for std::remove. –  Madison May Aug 3 '13 at 14:25
    
Thanks. This gave correct solution. –  Mayank Lal Aug 3 '13 at 14:50
    
Wait, you changed it. Why'd you add 1 to j, in the erase statement? –  Benjamin Lindley Aug 3 '13 at 15:01
    
Yeah, it worked but I kept 'j' instead of 1. –  Mayank Lal Aug 3 '13 at 15:06
    
@BenjaminLindley I fixed the issue. It works now. Remove the old comments mate :) –  TheOtherGuy Aug 3 '13 at 15:19

A simple solution

std::vector<int>::iterator it;
it = std::unique (myvector.begin(), myvector.end());

This iterator will point to the element next to the last element. You may not use this iterator if not required.

See THIS for further reference

EDIT:

As I thought that the vector would be sorted, the new solution could be:

    vector<int> vec= {5,1,2,3,5,4,2,1,1,4,3,2,4,5,2,1,3,5,2,3,5,2,3,2,3,5,2,1,3};
    set<int> s; 
    vector<int>::iterator vecIter=vec.begin();
    vector<int>::iterator vecIterCopy;
    for(;vecIter!=vec.end(); vecIter++) 
    {
        if(s.find(*vecIter)==s.end()) 
        {
            s.insert(*vecIter);
            *vecIterCopy++ = *vecIter;
        }
    }
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2  
That requires the vector to be sorted (or at least, for all duplicates to be contiguous). You can't maintain the order of an arbitrary vector. –  Mike Seymour Aug 3 '13 at 15:07
    
Ohh, my bad. I interpreted the order as sorted. –  Saksham Aug 3 '13 at 15:46

O(n*log(n)) solution:

vector<string> V={"aa","bb","aa","cc","cc"};
set<string> S; 

auto i=V.begin();
auto j=i;

for(; i!=V.end(); ++i) {
    if(S.insert(*i).second  &&  i!=j++) 
        *j = std::move(*i);
}

V.erase(j,V.end());

Also modified POW's version with std::remove_copy_if. But here without extraneous temporary:

set<string> S;
V.erase(
    copy_if(
        make_move_iterator(V.begin()),
        make_move_iterator(V.end()),
        V.begin(),
        [&](const string& x){ return S.insert(x).second;}
    ),
    V.end()
);
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