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I am trying to figure out why the following code is not working, and I am assuming it is an issue with using char* as the key type, however I am not sure how I can resolve it or why it is occuring. All of the other functions I use (in the HL2 SDK) use char* so using std::string is going to cause a lot of unnecessary complications.

std::map<char*, int> g_PlayerNames;

int PlayerManager::CreateFakePlayer()
{
    FakePlayer *player = new FakePlayer();
    int index = g_FakePlayers.AddToTail(player);

    bool foundName = false;

    // Iterate through Player Names and find an Unused one
    for(std::map<char*,int>::iterator it = g_PlayerNames.begin(); it != g_PlayerNames.end(); ++it)
    {
        if(it->second == NAME_AVAILABLE)
        {
            // We found an Available Name. Mark as Unavailable and move it to the end of the list
            foundName = true;
            g_FakePlayers.Element(index)->name = it->first;

            g_PlayerNames.insert(std::pair<char*, int>(it->first, NAME_UNAVAILABLE));
            g_PlayerNames.erase(it); // Remove name since we added it to the end of the list

            break;
        }
    }

    // If we can't find a usable name, just user 'player'
    if(!foundName)
    {
        g_FakePlayers.Element(index)->name = "player";
    }

    g_FakePlayers.Element(index)->connectTime = time(NULL);
    g_FakePlayers.Element(index)->score = 0;

    return index;
}
share|improve this question
9  
Sometimes doing the right thing hurts at first. Change your code to use std:string once, and be happy afterwards. –  Björn Pollex Nov 11 '10 at 18:06
    
what kind of complications? there is an implicit conversion from char* to std::string. –  tenfour Nov 11 '10 at 18:07
    
You must not use char* as a map key. See my answer why. –  sbi Nov 11 '10 at 18:17
    
This seems to be an unnecessary complication caused by not using std::string. –  Pedro d'Aquino Nov 11 '10 at 18:22
    
I don't understand, in order to use a binary key, wouldn't the Map need to know if a Key is Equal instead of knowing that a key has a value 'less than' another? –  CodeMinion Aug 12 '13 at 22:50

7 Answers 7

up vote 65 down vote accepted

You need to give a comparison functor to the map otherwise it's comparing the char* pointer not the string. In general, this is the case anytime you want your map key to be a pointer.

ie.

struct cmp_str
{
   bool operator()(char const *a, char const *b)
   {
      return std::strcmp(a, b) < 0;
   }
};

map<char *, int, cmp_str> BlahBlah;

EDIT: Acutally disregard my edit, the functor is easier to use.

share|improve this answer
2  
actually he can just pass the &std::strcmp as the third template parameter –  Armen Tsirunyan Nov 11 '10 at 18:08
11  
No, strcmp returns a positive, zero, or negative integer. The map functor needs to return true on less-than and false otherwise. –  aschepler Nov 11 '10 at 18:11
4  
@Armen: I don't think it works, as the 3rd template parameter expects something like f(a,b) = a<b, not f(a,b) = (-1 if a<b, 1 if a>b, 0 else). –  KennyTM Nov 11 '10 at 18:12
9  
oh, sorry, my bad, didn't think before posting. Let the comment stay there and bring shame to my ancestry :) –  Armen Tsirunyan Nov 11 '10 at 18:14
1  
As I tested, it must work with a const after bool operator()(char const *a, char const *b), like bool operator()(char const *a, char const *b) const{ blabla –  ethanjyx Apr 3 '13 at 21:37

You can't use char* unless you are absolutely 100% sure you are going to access the map with the exact same pointers, not strings.

Example:

char *s1; // pointing to a string "hello" stored memory location #12
char *s2; // pointing to a string "hello" stored memory location #20

If you access map with s1 you will get a different location than accessing it with s2.

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2  
Very good explanation. –  Daniel Daranas Nov 11 '10 at 18:09

Two C-style strings can have equal contents but be at different addresses. And that map compares the pointers, not the contents.

The cost of converting to std::map<std::string, int> may not be as much as you think.

But if you really do need to use const char* as map keys, try:

#include <functional>
#include <cstring>
struct StrCompare : public std::binary_function<const char*, const char*, bool> {
public:
    bool operator() (const char* str1, const char* str2) const
    { return std::strcmp(str1, str2) < 0; }
};

typedef std::map<const char*, int, StrCompare> NameMap;
NameMap g_PlayerNames;
share|improve this answer
    
Thanks for the info. Based on my experience I highly recommend converting to std::string. –  user2867288 Jul 27 at 2:17

You can get it working with std::map<const char*, int>, but must not use non-const pointers (note the added const for the key), because you must not change those strings while the map refers to them as keys. (While a map protects its keys by making them const, this would only constify the pointer, not the string it points to.)

But why don't you simply use std::map<std::string, int>? It works out of the box without headaches.

share|improve this answer

You are comparing using a char * to using a string. They are not the same.

A char * is a pointer to a char. Ultimately, it is an integral type whose value is interpreted as a valid address for a char.

A string is a string.

The container works correctly, but as a container for pairs in which the key is a char * and the value is an int.

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1  
There is no requirement for a pointer to be a long integer. There are platforms (such an win64, if you ever heard of it :-)) where a long integer is smaller than a pointer, and I believe there are also more obscure platforms where pointers and integers are loaded into different registers and treated differently in other ways. C++ only requires that pointers be convertible into some integral type and back; note this does not imply that you could cast any sufficiently small integer to pointer, only the ones you got from converting a pointer. –  Christopher Creutzig Apr 16 '12 at 14:00
    
@ChristopherCreutzig, thanks for your comment. I edited my answer accordingly. –  Daniel Daranas Apr 16 '12 at 14:14

As the others say, you should probably use std::string instead of a char* in this case although there is nothing wrong in principle with a pointer as a key if that's what is really required.

I think another reason this code isn't working is because once you find an available entry in the map you attempt to reinsert it into the map with the same key (the char*). Since that key already exists in your map, the insert will fail. The standard for map::insert() defines this behaviour...if the key value exists the insert fails and the mapped value remains unchanged. Then it gets deleted anyway. You'd need to delete it first and then reinsert.

Even if you change the char* to a std::string this problem will remain.

I know this thread is quite old and you've fixed it all by now but I didn't see anyone making this point so for the sake of future viewers I'm answering.

share|improve this answer

There's no problem to use any key type as long as it supports comparison (<, >, ==) and assignment.

One point that should be mentioned - take into account that you're using a template class. As the result compiler will generate two different instantiations for char* and int*. Whereas the actual code of both will be virtually identical.

Hence - I'd consider using a void* as a key type, and then casting as necessary. This is my opinion.

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5  
They key only needs to support <. But it needs to implement that in a way that's helpful. It isn't with pointers. Modern compilers will fold identical template instances. (I know for sure VC does this.) I would never use void*, unless measuring showed this to solve a lot of problems. Abandoning type-safety should never be done prematurely. –  sbi Nov 11 '10 at 18:20

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