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Using STL algorithms (as much as possible) such as remove_if() and list::erase, is there a nice way to remove duplicates from a list defined as following:

list<int> l;

Please note that list::unique() only works if duplication occurs in consecutive elements. In my case, all duplicates have to be eliminated regardless of their position in the list. Moreover, removing duplicates mean preserving only one copy of each element in the final result.

EDIT: The option to l.sort() followed by l.unique() cannot be availed as that will destroy the order of the list.

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4  
Well, obviously you could call l.sort() before calling l.unique(), but I assume there must be a reason why you can't do that? :) –  hrnt Feb 3 '11 at 11:44
    
Not sure about STL algorithms, but the obvious way to do this is to iterate through the list building a hash set: if each element isn't in the set it is unique so add to set; if it is in the set it's a duplicate so remove from list. –  Rup Feb 3 '11 at 11:45
    
Why don't you propose us some code of yours ? –  Stephane Rolland Feb 3 '11 at 11:45
1  
@hrnt I assume he wants to keep his current element order, notwithstanding duplicates –  Rup Feb 3 '11 at 11:46
1  
See stackoverflow.com/questions/4877504/… –  Fred Nurk Feb 3 '11 at 11:50
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3 Answers

up vote 4 down vote accepted

Using the list::remove_if member function, a temporary hashed set, and lambda expression.

std::list<int> l;
std::unordered_set<int> s;

l.remove_if([&](int n) {
    return (s.find(n) == s.end()) ? (s.insert(n), false) : true;
});
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If preserving the order of the list is not important, you can just do list.sort(); list.unique();

If the order is important, use Rup's suggestion:

list<int>::iterator iter = l.begin();
set<int> elements;
while (iter != l.end()) {
  if (elements.find(*iter) != elements.end())
    iter = l.erase(iter);
  else {
    elements.insert(*iter);
    ++iter;
  }
}
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2  
otherwise: if(elements.insert(*iter).second) ++iter else iter = l.erase(iter). set::insert returns a pair of which the second elements indicates whether insertion was successful, or failed because of a duplicate. –  Benoit Feb 3 '11 at 11:55
    
aren't you testing the wrong end() on the line containing find()? –  Hasturkun Feb 3 '11 at 12:16
    
@Hasturkun: yes I was. Fixed now :) –  hrnt Feb 3 '11 at 12:30
    
Thanks for the response...but aren't loops very STL-"unlike"? –  Jaywalker Feb 4 '11 at 10:37
    
@Jaywalker: Yeah, they are not very "STL-like". TheOm3ga's answer is more "STL-like" (with a few fixes). –  hrnt Feb 4 '11 at 11:02
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He said he wanted to use the erase-remove idiom, so here's a possible way, using a function object:

struct Unifier{
    set<int> foundElements;

    bool operator()(int & a){
        if(foundElements.find(a) != foundElements.end()){
            return true;
        }else{
            foundElements.insert(a);
            return false;
        }
    }
};


int main(){
    list<int> v;

    v.push_back(5);
    v.push_back(4);
    v.push_back(5);
    v.push_back(3);
    v.push_back(5);
    v.push_back(3);

    copy (v.begin(), v.end(), ostream_iterator<int>(cout," "));

    Unifier u;
    v.remove_if(u);

    cout << endl << "After:" << endl;
    copy (v.begin(), v.end(), ostream_iterator<int>(cout," "));

}
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1  
1  
Why do you take the a parameter by reference? –  Fred Nurk Feb 3 '11 at 12:06
1  
You do not need to use erase-remove idiom with std::list. You could just call v.remove_if(u); Also, your foundElements does not need to be static. –  hrnt Feb 3 '11 at 13:12
2  
You actually don't want foundElements to be static. If you used the functor again, it would already have the set of entries from the previous run in it, which wouldn't give you correct results on future runs. –  Zac Howland Feb 3 '11 at 13:19
    
Yep, that's what I thought at first, but it was giving me weird problems, so I used static in a hurry. But I agree it's supposed not to be necessary. –  José Tomás Tocino Feb 3 '11 at 20:16
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