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Here is the approximate code of my question. First, we have a struct with a constructor:

struct Pair{
Pair(int a, int b): (first (a) , second (b) ) {}
int first;
int second;
};

which is used in a map

map<string, Pair> mymap;

I would like to initialize this map in a function

void f(map<string, Pair>* mymap, string c,int x, int y )
{
(*mymap)[c]=Pair(x,y);
}

But the compiler says first that it could not find an appropriate constructor and then the next lines are that not enough arguments are provided for the constructor.

A friend of mine told me that I should write the function like this:

void f(map<string, Pair>& mymap, const string& c,int x, int y )
{
  if (mymap.find(c) != mymap.end()) {
    mymap[c] = Pair(x,y);
   }
}

But he could not explain why Type& should be used here instead of Type *, and I would like to clarify this point. Can anybody explain?

share|improve this question
    
@philippe I don't see how that helps. –  R. Martinho Fernandes Jul 27 '12 at 15:58
1  
1. your friend duplicated some code that is already assumed to be there. Map needs to find the key in order to make the insertion anyway. 2. Reference or pointer doesn't really matter in this case. 3. You need a default ctor for operator[] to work 4. I'm too scared to post this as an answer. SO might eat me alive. –  nurettin Jul 27 '12 at 16:03
    
@pwned: You should not fear SO... I would have upvoted that answer --I have basically answered the same. Sorry if you had a bad experience in the past, and hope to get some answers from you some time soon :) –  David Rodríguez - dribeas Jul 27 '12 at 16:05
    
@pwned Thank you very much, it is very clear! –  gartenzwerg Jul 27 '12 at 16:37

4 Answers 4

up vote 3 down vote accepted

The problem is that operator[] in a map requires that the value type is default constructible. If you don't want your Pair to be default constructible, you will have to avoid using operator[]:

void f(map<string, Pair>& mymap, string c,int x, int y )
{
   mymap.insert( std::make_pair(c,Pair(x,y)) );
}

You may have misunderstood what your friend suggested. The problem with operator[] is not that it requires the default constructor if it needs to create a new element, but that it requires it in case it might need to. That is, whether the element exists before hand or not does not really matter.


If you also mean to update, then you need to consider also that option:

void f(map<string, Pair>& mymap, string c,int x, int y )
{
   auto res = mymap.insert( std::make_pair(c,Pair(x,y)) );
   if ( !res.second )
      res.first->second = Pair(x,y);
}

Basically the insert operation returns a pair of the iterator pointing at the key and a bool indicating if this insert created the object or if it was already there (in which case the value in the map is unmodified). By storing the result, we can test and if the insert did not create the value, we can update it through the returned iterator.

share|improve this answer
    
I think this won't update an element inside the map whereas his initial idea could do that (if Pair had a default constructor, for example). –  user405725 Jul 27 '12 at 16:11

You will need a default contrructor:

Pair(): first () , second () {}

This is needed for the map's operator[], which creates a default-constructed mapped_type when called with a non-existent key-

and a less-than operator that implements strict weak ordering:

struct Pair {
  // as before
  bool operator<(const Pair& rhs) const {
     / some code to implement less-than
  }
};

or you can pass a comparison functor or function implementinf strict weak ordering as a third template argument.

share|improve this answer
    
Sorry, I can not get why I need an ordering operator here? –  gartenzwerg Jul 27 '12 at 16:20
    
I don't believe you do. –  jahhaj Jul 27 '12 at 17:20
    
@gartenzwerg You don't need it, my bad. You only need ordering if your type is a key of a map, or if you want to put it in an std::set –  juanchopanza Jul 28 '12 at 7:16

Calling operator[] on map will require your type to be default constructible. You can avoid that by using map::insert or map::emplace

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Thank you, I did not know about this! –  gartenzwerg Jul 27 '12 at 16:19

The standard containers need a default constructor. They will use the operator= to set the correct value at some point after construction.

share|improve this answer
1  
It needs one for operator[], anyways. He can just use insert or even emplace in C++11. –  Xeo Jul 27 '12 at 15:59
    
@Xeo, I meant operator= of the type being contained, not the container itself. –  Mark Ransom Jul 27 '12 at 16:01
    
They don't, really.. In this case — do not instantiate operator[] and you are good to go without a default constructor. –  user405725 Jul 27 '12 at 16:12
    
@VladLazarenko, that may be true for your implementation of std::map but I thought the standard required all contained types to be copyable? I can see that C++11 might relax that requirement for the initial insert but isn't it still true for subsequent operations? –  Mark Ransom Jul 27 '12 at 16:16

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