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Byte& operator=(const Byte& right) {
    // Handle self-assignment:
    if(this == &right) return *this;
    b = right.b;
    return *this;
}

return *this; 'this' is a pointer to the object itself eg: x = y; x.operator=(y) 'this' contains the address of 'x', therefore *this is the value of 'x' that is being returned.

  1. So won't a temporary be generated to store the value and return a reference to that? So won't you have a reference to unallocated space?

How/why is the compiler returning a reference to the original object that lies outside the function after all * will bind to this and result in the value being placed so.. this is equivalent to 'return "whatever-value"' except that since the prototype consists of a reference shouldn't implicit conversion kick in and a reference be generated to the temporary??

If i did:

int foo(void)
{
  static int x = 10;
  int *this = &x;
  return *this;
}

#include <stdio.h>
int main()
{
  printf("%d", foo());
}

I get: 10 the value.. of course the return prototype is 'int' here..

Could someone explain what's going on??

share|improve this question
    
If you did that, you'd get a compiler error. this is a keyword. –  Ben Voigt Jul 30 '12 at 14:29
    
-std=c99 (using the C compiler) –  Vek.M1234 Jul 30 '12 at 14:52
    
Your question is tagged c++ and concerns references. What the C99 compiler does is totally irrelevant, since C99 has different behavior and doesn't have references at all. –  Ben Voigt Jul 30 '12 at 14:54
    
yes, and I started learning C++ with C. C++ is backwards compatible so this is confusing to me. –  Vek.M1234 Jul 30 '12 at 15:02
    
@paleywiener - It is both an advantage and a disadvantage to learn C first. A lot of things in C++ is done differently than in C, so you will have to "unlearn" some things. And it's going to be confusing in parts. But keep it up! –  Bo Persson Jul 30 '12 at 15:16

1 Answer 1

up vote 4 down vote accepted

For any T * p, the expression *p is an lvalue of type T and binds to a T &. No temporary is constructed. By contrast, static_cast<T>(*p) will construct a temporary object.

In other words, your belief that "*this is the value of x" is misguided in the sense that it is really the object x itself, and not a copy.

share|improve this answer
    
is this only for user defined types or for all types? also, the lvalue is created in the function?? I mean.. 'p' is a pointer and *p is the value.. so where is storage allocated for *p?? I mean.. there is the original object(non-local), 'p' points to that, so *p IS that object?? Is this explained somewhere? C++ standard? –  Vek.M1234 Jul 30 '12 at 14:34
    
@paleywiener: Yes, *p is the object to which p points. It wouldn't make any sense otherwise! –  Kerrek SB Jul 30 '12 at 14:38

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