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Say I have this example:

char const * const
foo( ){
   /* which is initialized to const char * const */
   return str;
}

What is the right way to do it to avoid the compiler warning "type qualifier on return type is meaningless"?

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3  
Is it just me or this question lacks clarity? –  jldupont Oct 22 '09 at 13:31
1  
@Jean-Lou: I agree that the question's body itself is somewhat vague, but the question's title acutally conveys its meaning. –  sbi Oct 22 '09 at 14:03

3 Answers 3

up vote 12 down vote accepted

The way you wrote it, it was saying "the returned pointer value is const". But non-class type rvalues are not modifiable (inherited from C), and thus the Standard says non-class type rvalues are never const-qualified (right-most const was ignored even tho specified by you) since the const would be kinda redundant. One doesn't write it - example:

  int f();
  int main() { f() = 0; } // error anyway!

  // const redundant. returned expression still has type "int", even though the 
  // function-type of g remains "int const()" (potential confusion!)
  int const g(); 

Notice that for the type of "g", the const is significant, but for rvalue expressions generated from type int const the const is ignored. So the following is an error:

  int const f();
  int f() { } // different return type but same parameters

There is no way known to me you could observe the "const" other than getting at the type of "g" itself (and passing &f to a template and deduce its type, for example). Finally notice that "char const" and "const char" signify the same type. I recommend you to settle with one notion and using that throughout the code.

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5  
I recommend using always trailing "const" (char const * const), as that is the only way you can use "const" consistently. However, I am badly outnumbered on this... –  DevSolar Oct 22 '09 at 13:40
    
@DevSolar: Most gurus (Sutter for example) seems to agree with you and place qualifiers AFTER the type (class const&, class volatile). –  Matthieu M. Oct 22 '09 at 18:24
1  
@DevSolar, just to clarify: They do not agree with you about the last trailing const. They may agree with your first const that appears after the type name. –  Johannes Schaub - litb Mar 1 '10 at 16:52
1  
@Dev, i mean they do not agree that int const f() is good. They will omit that last trailing const (notice that this is not the same as int f() const - it's an entirely different thing). Matthieu (and me too) agrees with you in that const after the type is alright (like int const a = 0;). But not that it's good as trailing const in function return types (as your comment may indicate - so i wanted to clarify). –  Johannes Schaub - litb Mar 2 '10 at 14:26
1  
Ahh... now I get it. Indeed I didn't mean the trailing const of the function return type, but merely to always use trailing const where const is appropriate (which int const f() isn't). –  DevSolar Mar 2 '10 at 17:08

In C, because function return values, and qualifying values is meaningless.
It may be different in C++, check other answers.

const int i = (const int)42; /* meaningless, the 42 is never gonna change */
int const foo(void); /* meaningless, the value returned from foo is never gonna change */

Only objects can be meaningfully qualified.

const int *ip = (const int *)&errno; /* ok, `ip` points to an object qualified with `const` */
const char *foo(void); /* ok, `foo()` returns a pointer to a qualified object */
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Note that for class types, the const for return values is not meaningless, as you are allowed to call modifying member functions on non-const rvalues. (We just had this here with strings the other day: (s1+s2).append(s3).) As usual, litb's answer explains all this both in detail and correctness. –  sbi Oct 22 '09 at 14:00
    
I meant my answer to deal with C only. Updated to reflect that. –  pmg Oct 22 '09 at 14:17
    
Ah, he's asked a "C/C++" question. (Strange language, that.) Sorry, I hadn't seen this either. –  sbi Oct 23 '09 at 21:20

None of the previous answers actually answer the "right way to do it" part of the question.

I believe that the answer to this is:

char const * foo( ){

which says you are returning a pointer a constant character.

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