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I've never used it before and just stumbled upon it in an article... I thought it would be the equivalent to *x->y but apparently it isn't.

Here's what I tried, and gave me an error:

struct cake {
 int * yogurt;
} * pie;

int main(void) {
 pie = new cake;
 pie->yogurt = new int;
 return pie->*yogurt = 4;
}
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2  
can you show some context? –  Daniel A. White Oct 7 '11 at 0:55
    
I posted an example code... –  slartibartfast Oct 7 '11 at 0:59
    
It is primarily used for method pointers and function member pointers. –  Pubby Oct 7 '11 at 1:02
    
Ok, but can someone actually explain its use and/or provide an example code that uses it correctly? –  slartibartfast Oct 7 '11 at 1:04
    
possible duplicate of What are the Pointer-to-Member ->* and .* Operators in C++? (That one is dated earlier than this). –  Jason C Feb 22 at 6:38
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4 Answers 4

up vote 4 down vote accepted

Its used when you have pointers to member functions.

When you have a pointer to a function of a class, you call it in much the same way you would call any member function

object.membername( ... )

or

objectptr->membername( ... )

but when you have a member function pointer, an extra * is needed after the . or -> in order that the compiler understand that what comes next is a variable, not the actual name of the function to call.

Here's an example of how its used.

class Duck
{
public:

  void quack() { cout << "quack" << endl; }
  void waddle() { cout << "waddle" << endl; }
};

typedef void (Duck::*ActionPointer)();

ActionPointer myaction = &Duck::quack;

void takeDuckAction()
{    
    Duck myduck;
    Duck *myduckptr = &myduck;

    (myduck.*myaction)();
    (myduckptr->*myaction)();
}
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I get it, so it's used along with the ::* for nonstatic member function pointers. Thanks. –  slartibartfast Oct 7 '11 at 1:14
    
@myrkos yep, updated the answer a bit to make that more clear –  MerickOWA Oct 7 '11 at 1:15
2  
Also works for pointer-to-(member variable). –  Ben Voigt Oct 7 '11 at 1:21
    
@Ben Voigt good point –  MerickOWA Oct 7 '11 at 1:26
    
@Ben, ok, but when would that actually be useful rather than plain pointer dereferencing? –  slartibartfast Oct 7 '11 at 1:41
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It defines a pointer to a member.

In an expression containing the –>* operator, the first operand must be of the type "pointer to the class type" of the type specified in the second operand, or it must be of a type unambiguously derived from that class. MSDN

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1  
Explain a little more please? –  slartibartfast Oct 7 '11 at 0:58
1  
It certainly does not define it, a definition of a pointer to member looks like Type Class::* –  K-ballo Oct 7 '11 at 0:59
    
@K-ballo: Bad choice of words. I've been off caffeine for the past few days (from several cups a day) so my brain is like a scrambled egg. –  Mike Oct 7 '11 at 1:04
    
I think your definition is more for the -> operator... –  slartibartfast Oct 7 '11 at 1:05
    
@myrkos: You're right. I found a correct source. –  Mike Oct 7 '11 at 1:07
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Pointer-to-Member Operators: .* and ->*

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While not exactly an ideal answer, the article helped me figure it out. Thanks. –  slartibartfast Oct 7 '11 at 1:08
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The .* and ->* operators will point to member functions of a class or structure. The code below will show a simple example of how to use the .* operator, if you change the line: Value funcPtr = &Foo::One; to Value funcPtr = &Foo::Two; the result displayed will change to 1000 since that function is inValue*2

for example Taken From Here:

#include <iostream>
#include <stdlib.h>

class Foo { 
  public: 
    double One( long inVal ) { return inVal*1; }
    double Two( long inVal ) { return inVal*2; }
}; 

typedef double (Foo::*Value)(long inVal); 

int main( int argc, char **argv ) { 
  Value funcPtr = &Foo::One; 

  Foo foo;

  double result = (foo.*funcPtr)(500); 
  std::cout << result << std::endl;
  system("pause");
  return 0; 
} 
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