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I transferred my code to Ubuntu 4.4.1 g++ compiler. While overloading operator ++ (int) as below, it throws error for (T*), but works fine for (T*&). In my earlier version (linux-64, but don't remember exact version) it was working fine with (T*) also.

Any reason, why ?

template<typename T>
struct Wrap
{
  void *p;  // Actually 'p' comes from a non-template base class
  Wrap<T>& operator ++ ()
  {
    ((T*)p) ++;  // throws error; if changed to (T*&) then ok!
    return *this;
  }
// ...
};
int main ()
{
  Wrap<int> c;
  ++c;  // calling prefix increment
}
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Did you mean for that to be operator ++ (int)? –  GManNickG Apr 19 '11 at 5:13

2 Answers 2

up vote 2 down vote accepted

A result of a type-cast is not an lvalue, so it cannot be assigned to and (built-in) ++ is a form of assignment. It was a bug in the compiler if it ever worked.

With reference it compiles (in efect it's the same as *(T**)&p), but due to aliasing rules (compiler may assume that pointers (and references) of different types don't point to the same object) it is formally invalid, though it will work on all known compilers.

The cleanest way it to:

p = static_cast<void *>(static_cast<T *>(p) + 1)

(never use C-style cast in C++) and rely on the compiler being able to compile it exactly the same way as ++. However if you have the template argument available when defining the pointer (in the sample code you do), it's much better to just use properly typed pointer (I'd say it would also work with member pointers, but they don't have meaningful ++).

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1  
Actually, the cleanest way would be to use static_cast and not reinterpret_cast, Void pointer conversions are supported by static_cast in C++. –  AndreyT Apr 19 '11 at 5:35
    
@AndreyT: Thanks. I changed reinterpret_cast to static_cast. –  Jan Hudec Apr 19 '11 at 5:37
    
though it will work on all known compilers Except g++ (at least). It's very frequent for compilers to use the fact that pointers to different types can't alias. (There's also the fact that pointers to different types may have different sizes and representations, but that's more a theoretical issue than a practical problem today.) –  James Kanze Apr 19 '11 at 8:44
    
Actually void* p; is coming from a non-template base class; so I can not use T* p;. Why can't we use C-Style cast in known circumstances ? Also, why are you casting again static_cast<void *>, even though it will be implicitly casted to void* ? –  iammilind Apr 19 '11 at 10:37
    
@James: g++ tries to follow the specification to the letter, while most other compilers tend to allow cases that are not according to the specification, but programmer's intention is sufficiently clear. –  Jan Hudec Apr 22 '11 at 7:28

Looks like you mixing up your prefix and postfix increment signatures. Also, why use a void* if you know your type is T ?

See below for appropriate signatures: http://www.codeguru.com/forum/showthread.php?t=231051

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1  
The issue is with the commented line and that one is calling built-in operator++ on a plain old pointer! (I'd give you -1, but the link is useful, though it does not answer the main point) –  Jan Hudec Apr 19 '11 at 5:22

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