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I want to use a pair from STL as a key of a map.

#include <iostream>
#include <map>

using namespace std;

int main() {

typedef pair<char*, int> Key;
typedef map< Key , char*> Mapa;

Key p1 ("Apple", 45);
Key p2 ("Berry", 20);

Mapa mapa;

mapa.insert(p1, "Manzana");
mapa.insert(p2, "Arandano");

return 0;

}

But the compiler throw a bunch of unreadable information and I'm very new to C and C++.

How can I use a pair as a key in a map? And in general How can I use any kind of structure (objects, structs, etc) as a key in a map?

Thanks!

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4  
In the future, please post the error messages you get. Otherwise, it can often be difficult or impossible for people to help you. :) –  James McNellis Jul 18 '10 at 20:46
1  
If you do post the errors, I'm sure we could also help explain what they mean and how you can interpret them when you see them in the future. –  James McNellis Jul 18 '10 at 21:02
    
Note that, using string literals, the addresses of the strings are compared, not the strings themselves. You'd better use std::string. –  sbi Jul 18 '10 at 22:37
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2 Answers

up vote 16 down vote accepted

std::map::insert takes a single argument: the key-value pair, so you would need to use:

mapa.insert(std::make_pair(p1, "Manzana"));

You should use std::string instead of C strings in your types. As it is now, you will likely not get the results you expect because looking up values in the map will be done by comparing pointers, not by comparing strings.

If you really want to use C strings (which, again, you shouldn't), then you need to use const char* instead of char* in your types.

And in general How can I use any kind of structure (objects, structs, etc) as a key in a map?

You need to overload operator< for the key type or use a custom comparator.

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2  
mapa[p1] = "Manzana"; is even shorter –  Peter G. Jul 18 '10 at 21:13
1  
@Peter: operator[] has different semantics, and I'd recommend against using it for inserting objects into a map (it inserts a new object if one does not already exist, then overwrites the newly created temporary object immediately). –  James McNellis Jul 18 '10 at 21:18
    
Wow That was an ugly mistake, I forgot to make the pair. I'm sorry! Well it works now but it didn't work when I was using char* instead of const char*. What's the deal with const char* vs char* in this case? Thanks! –  ccarpenterg Jul 18 '10 at 21:20
1  
@ccarpenterg: No need to apologize to me. :-) The string literals have a type const char[], the pair type has a member of type char*; the pair constructor cannot remove the const qualifier. That said; really: use std::string, using a pointer as a map key is almost always A Bad Idea. –  James McNellis Jul 18 '10 at 21:23
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Here's a working rewrite of the code in question:

#include <map>
#include <string>

class Key
{
  public: 
    Key(std::string s, int i)
    {
      this->s = s;
      this->i = i;
    }
    std::string s;
    int i;
    bool operator<(const Key& k) const
    {
      int s_cmp = this->s.compare(k.s);
      if(s_cmp == 0)
      {
        return this->i < k.i;
      }
      return s_cmp < 0;
    }
};

int main()
{


  Key p1 ("Apple", 45);
  Key p2 ("Berry", 20);

  std::map<Key,std::string> mapa;

  mapa[p1] = "Manzana";
  mapa[p2] = "Arandano";

  printf("mapa[%s,%d] --> %s\n",
    p1.s.c_str(),p1.i,mapa.begin()->second.c_str());
  printf("mapa[%s,%d] --> %s\n",
    p2.s.c_str(),p2.i,(++mapa.begin())->second.c_str());

  return 0;
}
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2  
why? how is this any better than what the OP had with pair? –  user102008 Oct 15 '11 at 1:11
3  
Um, because it compiles and executes properly? –  mangledorf Nov 15 '12 at 14:07
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