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I have the following map structure: map < pair < int,int >, object* > and I wish to insert into it.

How would I do it since I am trying to insert a pair and an object and I must make a pair out of this?

Should I create a new pair using make_pair() out of the pair and object that I have? If so, could you please let me know how to do this?

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5  
What code have you tried? –  Mark Feb 22 '10 at 15:26
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3 Answers

up vote 11 down vote accepted
object * myObject = // get an object somehow
myMap.insert(std::make_pair(std::make_pair(1,2), myObject));

or

typedef map<pair<int, int>, object *> MapType;
object * myObject = // get an object somehow
myMap.insert(MapType::value_type(std::make_pair(1,2), myObject));
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I used your first suggestion - nice and concise. Thanks so much! –  Myx Feb 22 '10 at 15:49
2  
If you're using this a lot in your code you might want to wrap the map up in a class with an insert (pair, object) function for readability. –  Tom Smith Feb 22 '10 at 16:00
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Assuming you're using C++11, the best approach is probably:

object * myObject = // get an object somehow
myMap.insert({{1,2}, myObject});

This takes advantage of C++'s new uniform initialization syntax to avoid make_pair or other verbiage. It's also potentially more efficient than make_pair, because make_pair will usually produce an output whose type doesn't precisely match the value_type of the container, and so it incurs an unnecessary type conversion.

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+1 for using C++11 –  jupp0r Jan 22 at 14:32
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There are two ways:

typedef std::map<int,Object> map_t;
map_t map;
Object obj;

std::pair<map_t::iterator, bool> result = map.insert(std::make_pair(1,obj)); // 1

map[1] = obj; // 2
  1. Only works if the key is not already present, the iterator points to the pair with the key value and the bool indicates if it has been inserted or not.

  2. Easier, but if it does not already exist the object is first default constructed and then assigned instead of being copy constructed

If you don't have to worry about performance, just choose by whether or not you wish to erase the previous entry.

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Correct, but the question asked about a map with a key type which is also a pair. –  Nick Meyer Feb 22 '10 at 15:30
    
I fail to see the dependence. sed s/1/std::make_pair(1,1)/g and a suitably defined map_t. It does not change the comments or anything, I just prefer to demonstrate with simple concepts to help focus on the important points rather than hiding them in the crowd. –  Matthieu M. Feb 23 '10 at 16:05
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