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I have these codes:

class Type2 {
public:
  Type2(const Type1 & type);
  Type2(int);
const Type2 & operator=(const Type2 & type2);
//....
};

...
  Type1 t1(13);
  Type2 t2(4);

  t2=t1;

As I understood, the 1-argument constructors of Type2 each without an explicit keyword should mean any Type1 objects or int values can be implicitly conveted to Type2 objects.

But in the last line t2=t1;, MS Visual Studio gives me this compile error:

....error C2679: binary '=' : no operator found which takes a right-hand operand of type 'Type1' (or there is no acceptable conversion)....

Seems like MS Visual Studio insisting t2=t1; must match an assignment operator with lhs=Type2 and rhs=Type1. Why can't it implicitly cast rhs to t2 and then do the copying with the Type2=Type2 operator?

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This code compiles fine for me in VS2010. –  Oli Charlesworth Jun 19 '11 at 8:13
    
I know why. Because my Type1 has a conversion operator: class Type1 { operator Type2() }; –  JavaMan Jun 19 '11 at 8:16
    
Can I close a question that I have found the answer myself? –  JavaMan Jun 19 '11 at 8:19
1  
@JavaMan: you can (and should) answer your own question. –  Mat Jun 19 '11 at 8:20
    
@JavaMan: Its even appropriate to mark your own answer as accepted answer to let the community know that this issue is now resolved. –  Avada Kedavra Jun 19 '11 at 8:26

2 Answers 2

up vote 2 down vote accepted

I've found the answer. Because my Type1 got a conversion operator

    class Type1 {
    public:
        Type1 (int );
        operator  Type2() ;//casting to Type2

    ....
    };

This is something called "dual-direction implicit conversion"

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Interesting. This compiles fine in GCC. –  Oli Charlesworth Jun 19 '11 at 8:37
    
Yes, even VS2010 does compile sometimes. But I have to figure out exactly when. This is the standard ambiguous situation that compiler cannot tell which conversion should be used. IMHO, they should produce compile time error. –  JavaMan Jun 19 '11 at 8:44
    
@Oli What compiles? I see code excerpts with lots of ...s –  BЈовић Jun 19 '11 at 8:54
    
If Type2 got an assignment operator for Type2=Type1, VS2010 does compile. BTW, the reason I am testing all these is that I want to figure out if the compilers can identify these ambiguous situations (as pointed out by my C++ book) –  JavaMan Jun 19 '11 at 9:03
    
@VJo: The OP's code snippet(s) combined, plus dummy function bodies. –  Oli Charlesworth Jun 19 '11 at 14:38

This code:

#include <iostream>

using ::std::cerr;

class Barney;

class Fred {
 public:
   Fred() { }
   Fred(const Barney &b) { cerr << "Using conversion constructor.\n"; }
};

class Barney {
 public:
   Barney() { }
   operator Fred() const { cerr << "Using conversion operator.\n"; return Fred(); }
};

int main(int argc, const char *argv[])
{
   const Barney b;
   Fred f;
   f = b;
   return 0;
}

generates this error in gcc 4.6:

g++ -O3 -Wall fred.cpp -o a.out
fred.cpp: In function ‘int main(int, const char**)’:
fred.cpp:23:8: error: conversion from ‘const Barney’ to ‘const Fred’ is ambiguous
fred.cpp:21:17: note: candidates are:
fred.cpp:16:4: note: Barney::operator Fred() const
fred.cpp:10:4: note: Fred::Fred(const Barney&)
fred.cpp:7:7: error:   initializing argument 1 of ‘Fred& Fred::operator=(const Fred&)’

Compilation exited abnormally with code 1 at Sun Jun 19 04:13:53

Now, if I remove the const after operator Fred(), it then compiles, and uses the conversion constructor. If I also remove the const from the declaration of b in main, it then prefers the conversion operator.

This all fits the overload resolution rules. And gcc generates the appropriate ambiguity error when it can't pick between the conversion operator and the conversion contructor.

I notice that in the examples you gave, the conversion operator is missing a const. This means that there will never be a case in which using the conversion operator or the converting constructor is ambiguous.

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