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I'm declaring a map of string to a pair of pairs as follow:

std::map<std::wstring, 
         std::pair<std::pair<long, long>, 
                   std::pair<long, long>>> reference;

And I initialize it as:

reference.insert(L"First", 
                 std::pair<std::pair<long, long>, 
                           std::pair<long, long>>(std::pair<long, long>(-1, -1),
                           std::pair<long, long>(0, 0)));

However, Visual C++ gives me the error "C2664, No constructor could take the source type, or constructor overload resolution was ambiguous".

I'm new to using templates and STL and I can't tell what I'm doing wrong.

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4  
Please use typedef's and std::make_pair to make it legible. –  GManNickG Sep 28 '10 at 14:43
    
I reformatted it to make it a bit easier on the eyes. –  egrunin Sep 28 '10 at 14:46
    
Instead of nesting all these std::pair s couldn't you switch over to using std::tr1::tuple? Boost has a tuple implementation too. –  Praetorian Sep 28 '10 at 15:09
    
Yo yo Dawg. I heard you like std::pair's, so I put a std::pair in your.... –  David Relihan Sep 28 '10 at 15:48
    
As I understand tuple is not implemented by all vendors. I'm trying to learn STL first before I move over to Boost. –  Fábio Sep 28 '10 at 17:08
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5 Answers

up vote 11 down vote accepted

The >>> can not be parsed correctly (unless you have a C++0x compiler).

Change to > > >

This:

reference.insert("First",

Should be:

reference.insert(L"First",
                ^^^

Also there is a utility function to make the construction of pairs easier:

std::pair<std::pair<long, long>, std::pair<long, long>>(std::pair<long, long>(-1, -1), std::pair<long, long>(0, 0))

Can be:

std::make_pair(std::make_pair(-1L,-1L),std::make_pair(0L,0L))

Try this:

reference[L"First"]
    = std::make_pair(std::make_pair(-1L,-1L),std::make_pair(0L,0L));
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Thanks for the help. I edited my question to add the L"" to my wstring to make the question more easier to "parse". –  Fábio Sep 28 '10 at 15:01
1  
A better answer than mine, but note that inserting with reference[key] = value can give different behaviour to reference.insert(make_pair(key,value)); using [] will overwrite an existing element, while insert won't. –  Mike Seymour Sep 28 '10 at 15:07
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C++ gets confused by the consecutive ">" when you close the template as it interprets that as the shift operator.

Add spaces between the closing templates, change >>> to > > >

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Also, GMan's advice. –  iniju Sep 28 '10 at 14:46
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map::insert itself takes a single std::pair argument, rather than two arguments. You can tidy up the code by using std::make_pair (which infers the template arguments from the function arguments), to get something like:

reference.insert(std::make_pair("First", 
                                std::make_pair(std::make_pair(-1L,-1L),
                                               std::make_pair(0L,0L))));
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You could simplify your code by creating a helper function to create pairs of pairs, analog to the std::make_pair helper function that is available in the standard library. Also using the maps operator[] for insertion results in easier to read code:

template<typename T, typename U, typename V, typename W>
std::pair< std::pair<T,U>, std::pair<V,W> > make_pair_pair(T t, U u, V v, W w) {
   // using std::make_pair instead of the constructor for better readability
   return std::make_pair(std::make_pair(t, u), std::make_pair(v, w));
}

reference[L"First"] = make_pair_pair(1,2,3,4);
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It helps to use typedefs when debugging this sort of thing.

// test1.cpp : Defines the entry point for the console application.
//

#include "stdafx.h"

#include <map>
#include <string>

int _tmain(int argc, _TCHAR* argv[])
{
    typedef std::pair<long, long> ElementType;
    typedef std::pair<ElementType, ElementType> ValueType;
    typedef std::wstring KeyType;
    std::map<KeyType, ValueType> reference;

    KeyType key = L"First";
    reference[key] = ValueType(ElementType(-1, -1), ElementType(0, 0));

    return 0;
}
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There is not such insert() function as the OP tries to use, even if you #include <string>. The sample code you posted works and is quite readable, but because you replaced the insert(), not because of the include as you seem to say... –  sth Sep 28 '10 at 15:06
    
If you remove the "you just need <string>" part, which I think is somewhat misleading, I would think it is helpful and would upvote it. –  sth Sep 28 '10 at 15:20
    
ok, you got it. I don't know if you realise you wrote "operator[] for insertion results in easier to read code" in your answer. As you say, insert doesn't exist! –  ttt Sep 28 '10 at 15:29
    
Yeah I realize that and I saw your answer after posting mine and thought "who has downvoted this, operator[] is the way to go!". Then I got confused by the <string> stuff and went off to try if maybe actually some missing constructor for wstring(const char*) or such would produce an error message like in the question. I couldn't reproduce anything like that, though, so I decided to comment. (+1) –  sth Sep 28 '10 at 15:33
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