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I am trying to have a function that is handed an instance of the class that it belongs to. I know I can do it with the this pointer but I am not sure how to call that function. Any help is appreciated! This is my code:

ClassA.h

ClassA{
     public:
         int Send(Foo &myFoo, ClassB &classb);
}

ClassA.cpp

int ClassA::Send(Foo &myFoo, ClassB &classb)
{
...
}

ClassB.cpp

void function(const Foo &thisFoo){
 ClassA myClassA;
 int ret =  myClassA.Send(&thisFoo, *this);
}

I end up with this error: no matching function for call to ‘ClassB::Send(const Foo*, ClassB&)’

EDIT: Thanks for the input! It works when I made ClassA expect a const Foo in Send().

ClassA.h

ClassA{
             public:
                 int Send(const Foo &myFoo, ClassB &classb);
        }

ClassA.cpp

int ClassA::Send(const Foo &myFoo, ClassB &classb)
{
...
}

ClassB.cpp

void function(const Foo &thisFoo){
 ClassA myClassA;
 int ret =  myClassA.Send(thisFoo, *this);
}
share|improve this question
2  
Can you post some code that makes sense? –  juanchopanza Nov 20 '12 at 14:49
    
1) function() takes a const Foo&, and then tries to pass a non-const Foo& (well, that is, Send() takes a non-const Foo&, but you're giving it a pointer of type const Foo*, which is doubly problematic). 2) Does ClassB derive from ClassA? –  Cornstalks Nov 20 '12 at 14:58
    
No, it doesnt derive. –  tzippy Nov 20 '12 at 15:00

1 Answer 1

&thisFoo results in address of thisFoo object. It has type Foo*. You need to do it this way:

int ret =  myClassA.Send(thisFoo, *this);

Edit: You cant call myClassA.Send() with thisFoo argument since thisFoo is declared as const reference. So you have to either make thisFoo argument non-const, or (wich is kinda weird) pass a copy of it, or do a const_cast

share|improve this answer
    
except that ClassA::Send does not take a ClassB as second argument. –  juanchopanza Nov 20 '12 at 14:51
2  
@juanchopanza Are you sure about that? –  Desmond Hume Nov 20 '12 at 14:53
    
@DesmondHume There's nothing in the code posted that leads me to believe that. Then again, there's nothing in the code posted that makes much sense. –  juanchopanza Nov 20 '12 at 14:55

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