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I would like to return a pointer to an array owned by a class. However, I do not want to allow users to modify that data or pointer. According to how I understand things you need return a constant pointer to constant data using the following syntax.

const Type *const Class::Method() {
    return this->data_; 
}

However gcc gives the following warning when compiling.

warning: type qualifiers ignored on function return type

Why is this warning provided by gcc? What does it mean? If this is not the right syntax for what I want, what is?

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1  
Wouldn't it be easier to return a std::vector<decltype(data_[0])>? – chris Mar 3 '13 at 4:29
    
I am working with a C interface that expects a const float*, and for performance reasons I would like to shy away from instantiating a std::vector. – Matthew Hoggan Mar 3 '13 at 4:35
    
Enlighten us with the formal definition of Type please. – WhozCraig Mar 3 '13 at 4:42
    
The type of "Type" is float []; – Matthew Hoggan Mar 3 '13 at 4:45
up vote 1 down vote accepted

The top level const is ignored for built-in types. As there is a rule in C++[3.14p4]: class and array prvalues can have cv-qualified types; other prvalues always have cv-unqualified types.. In your case const Type* const, the top level const making the pointer const is ignored.

You could add const to the end: const Type * Class::Method() const {...}. This would prevent the pointer from being modified inside the member function. However, since the member function returns prvalue which is non-modifiable, it is not necessary to do this to prevent modification of the pointer member outside of the class (and this is also the reason why this rule exists in C++). It may be useful when you want to call the function with a constant reference to a Class object, etc., but for what you are doing, this doesn't seem necessary.

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I don't think const Type * Class::Method() const should be part of this answer: that might be the right thing to do but it doesn't have anything to do with what he's asking for. – Stephen Lin Mar 3 '13 at 5:10
    
(especially since his code seems to compile without error right now) – Stephen Lin Mar 3 '13 at 5:12
    
@StephenLin: I've reworded the answer to clarify (Thanks). – Jesse Good Mar 3 '13 at 5:18

The warning you get is because the final const is overlooked. Take it off and you're set.

You don't need to return a const pointer to const data, just a pointer to const data (which is const Type*). Just as it doesn't make sense to return a const int, it doesn't make sense to return a T* const, because as soon as the value is assigned to a new variable, that const is discarded.

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or Type const * – WhozCraig Mar 3 '13 at 4:49

First const is right, the second const does not make any sense. Just look at this example:

const int foo();
int a = foo();

The fact if foo returns const int or just int does not change anything in this case. Same for Type *.

share|improve this answer
    
Downvoter explain your point – Slava Mar 3 '13 at 4:38
    
Your example does not relate to the problem. – Matthew Hoggan Mar 3 '13 at 4:43
    
Try to compile const int foo() { return 0; } with the same warning level and see how it is unrelated... – Slava Mar 3 '13 at 5:15

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