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I'm one of these types of people who thinks "if it shouldn't be able to change, then it should be const". Perhaps I take const to the extreme by doing this, but, since my function return types generally should not be able to change, I declare all my functions to return const. (Unless they return void of course - does it even make sense to return by const void?)

You probably think either I'm kind of nutty, and I'm wearing out my keyboard typing stuff I don't need to, or that returning const makes sense because you already use it yourself. Or maybe you're thinking neither of those things in which case I guessed incorrectly.

I've compiled my program using g++4.8, and enabled the compiler switch -Wextra. When doing so, g++ warns me that it ignores every single one of my return statements. None of them are returning by const. This makes no difference after compiling obviously, but I wanted to know is there a way of forcing g++ to compile and pay some attention to my const return types.

More importantly, why does g++ ignore the const -- or is it simply because I'm nutty and g++ thinks returning const is unnecessary?

As requested: Example...

inline const bool collisionTest(...) { ... }

warning: type qualifiers ignored on function return type

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Can you add a simple example code to your question? And the text of the warning? –  gx_ Sep 1 '13 at 17:03
    
@gx_ Okay, but why? –  user3728501 Sep 1 '13 at 17:04
    
In my experience, const is useful in the following cases: const pointers or references, const member functions, compile-time constants (const int size = 10 for example) and const global variables (static const std::string name = "harry"). Everything else doesn't really matter. –  Neil Kirk Sep 1 '13 at 17:05
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@EdwardBird True it can be helpful to const the parameters to prevent accidental change. –  Neil Kirk Sep 1 '13 at 17:08
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"@gx_ Okay, but why?" Because it makes sense to provide all useful information when you ask a question. For example, we can now see that the warning does not actually say that g++ ignores your return statements, but that it ignores types qualifiers on the return types. We can also see that it warns for const bool but I verified that it doesn't for const Foo (where Foo is a class), so the fact that all your functions return "built-in" types (as opposed to user-defined) is another relevant and useful information that you didn't mention. –  gx_ Sep 1 '13 at 17:24

1 Answer 1

It doesn't ignore it, it's just useless if you return primitive types by value.

Returning by value means you can't modify whatever it is you returned anyways, because it's an r-value. The const would be redundant.

See:

int foo();

How would you modify the return?

foo() = 4;

would yield a compiler error.

If you return a reference though, the const does matter:

int& foo();
const int& goo();

foo() = 42;  //okay 
goo() = 42;  //error
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In c++11 you can, though I guess a const r value reference is pointless –  aaronman Sep 1 '13 at 17:03
    
Ah thanks, I didn't realize that would give a compiler error! –  user3728501 Sep 1 '13 at 17:03
    
@aaronman Why the difference in c++11? –  user3728501 Sep 1 '13 at 17:03
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"Returning by value means you can't modify whatever it is you returned anyways" Hop hop hop, did you forget user-defined types? std::string foo() { return "bar"; } then std::string s = "hello"; foo().swap(s); (std::string::swap is a non-const member function). ideone.com/KK1qiW –  gx_ Sep 1 '13 at 17:08
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@LuchianGrigore (ok :) ) You could add to your answer that return by const value is considered bad practice now (in C++11), because: for primitive types it's redundant (and ignored, as per gcc's warning) and, most important, for user-defined types it will prevent move semantics (and the useful optimization). –  gx_ Sep 1 '13 at 17:34

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