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I have a class Test with a peculiar data structure. A member of class Test is a std::map where the key is a std::string and the mapped value is a struct defined as follows:

typedef struct {
  void (Test::*f) (void) const;
} pmf_t;

Initialization of the map is OK. The problem is when I am trying to call the function pointed. I made up a toy example reproducing the problem. Here it is:

#include <iostream>
#include <map>

using namespace std;

class Test;
typedef void (Test::*F) (void) const;
typedef struct {
  F f;
} pmf_t;


class Test
{
public:
  Test () {
    pmf_t pmf = {
      &Test::Func
    };
    m["key"] = pmf;
  }
  void Func (void) const {
    cout << "test" << endl;
  }
  void CallFunc (void) {
    std::map<std::string, pmf_t>::iterator it = m.begin ();
    ((*it).second.*f) (); // offending line
  }

  std::map<std::string, pmf_t> m;
};


int main ()
{

  Test t;
  t.CallFunc ();

  return 0;
}

Thanks in advance, Jir

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5 Answers 5

up vote 5 down vote accepted

The name of the pmf_t type is f, so the first change is to remove the * to get second.f. That gives you a pointer-to-member value. To use a pointer-to-member, you need an instance. The only one you have available of the correct type is this, so use it with the ->* operator:

(this->*it->second.f)();

You need parentheses around the whole thing, or else the compiler thinks you're trying to call it->second.f() (which isn't allowed) and then applying the result to ->*.

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Thorough explanation, thanks. I wouldn't have ever thought to prepend this to the iterator. –  Jir Jul 27 '11 at 15:27
    
You're not prepending it to the iterator; you're prepending it to the pointer-to-member expression. (The -> and . operators bind more tightly than ->*; here's a fully parenthesized version: (this->*((it->second).f))(). –  Rob Kennedy Jul 27 '11 at 15:49

try this:

(this->*((*it).second.f)) ();
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It might be too late for this question but, the seemingly complex synatax can be break down to two simple lines so it looks pretty clear:

void CallFunc (void) 
{
     pmf_t t = m["key"]; //1>get the data from key
    (this->*t.f)();      //2>standard procedure to call pointer to member function
}
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Well, this favors the readability. I wonder if creating the local variable t is a threat to performance. –  Jir Jul 27 '11 at 19:07
    
I don't think this extra line is too much of a performance drag in general and yet it has increased the readability quite a lot. This way the project can be better maintained so I would favor this one personally unless you telling me this function is a at a critical performance bottleneck... –  Gob00st Jul 27 '11 at 21:21

I think you might want to check out the C++ FAQ on this one. The syntax is apparently pretty tricky to get right (they actually recommend using a macro).

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I've edited the example using the typedef as you suggested. However, I still cannot figure out how to call that function. Thanks for the input anyway! –  Jir Jul 27 '11 at 15:20
1  
Creating the pointer-to-member wasn't the problem. –  Rob Kennedy Jul 27 '11 at 15:23
    
@Rob, whoops, I linked one entry too early. The OP actually wants the next FAQ, which suggests using a macro to call the function. I've updated the link. –  Michael Kristofik Jul 27 '11 at 15:28

The offending line is trying to call a member function without any object to call it on. If the intention is to call it for the this object, I believe the call should look like

( this->* ((*it).second.f) )(); 

Where this->* is the syntax for dereferencing a pointer-to-member for the current object. ((*it).second.f) is the pointer retrieved from the map, and () is the call operator for actually calling the function.

This is perhaps good as an exercise, but otherwise of limited use.

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