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Can I declare a non-member function (global function, may be) as const in C++? I understand that the const keyword actually is applied to the implicit "this" argument passed in member functions. Also since only member functions follow the "thiscall" calling convention, can const be applied for non-member functions?

Leaving aside what I am trying to do by declaring non-member function const, would compiler report error for doing so?

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"Leaving aside..." I don't see how it can be left aside, really. As for whether the compiler would report an error, why don't you just try it? –  Karl Knechtel Dec 8 '10 at 12:02
    
@Karl Knechtel: because some compilers could (in theory) issue a warning instead of an error, or accept it as an extension? –  MSalters Dec 8 '10 at 14:28
    
@Karl: gcc has __pure__ and __const__ attributes for this task, and they are attributes because they are non-standard. –  Matthieu M. Dec 8 '10 at 14:53
    
@Matthieu, depending on your understanding of what "this task" is. –  Karl Knechtel Dec 8 '10 at 16:08
    
@Karl: yes, obviously :) –  Matthieu M. Dec 8 '10 at 17:54

2 Answers 2

up vote 14 down vote accepted

No, only a non-static member function may be const qualified.

What semantic would you expect from a const non-member function ? If you want to enforce that no parameters are modified by the function, just take them by const reference.

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I'd assume he'd like to have the compiler make sure a global (const) function won't modify any global variable. That said, since this question is tagged 'c++' and 'oop' - just don't do it. It's ok to have a global (or static class member) object where it makes sense, but it's not a good idea to write functions that have side-effects outside of their class instance's scope. –  Mephane Dec 8 '10 at 13:18

To answer your second question: an attempt to use the member function syntax for a non-member (i.e. void foo() const; ) is a grammar violation. Therefore, a compiler must give a diagnostic - either an error or a warning. It may not silently ignore the const. However, it may report a warning, then pretend the const wasn't there and produce an executable.

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Wait, the compiler is allowed to demote grammar violations (called "syntax errors" in any other context I can think of) to warnings? –  Karl Knechtel Dec 8 '10 at 16:07
    
Yes. The only difference between an error and a warning is that you don't get an executable if the compiler encountered an error. The standard only speaks about diagnostics because it doesn't care about this difference. E.g. the grammar violation/syntax error "virtual ~Foo() = 0L;" may cause the warning "pure virtual function must be declared as virtual ~Foo() = 0;". –  MSalters Dec 9 '10 at 15:41

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