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How can I declare a pure virtual member function that is also const? Can I do it like this?

virtual void print() = 0 const;

or like this?

virtual const void print() = 0;
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5  
I'd guess virtual void print() const = 0; –  chris Nov 7 '12 at 18:11
    
See this stack overflow: stackoverflow.com/questions/9488168/… –  Richard Chambers Nov 7 '12 at 18:12

4 Answers 4

up vote 22 down vote accepted

To declare a constant member function, place the const keyword after the closing parenthesis of the argument list.

So it should be:

virtual void print() const = 0;
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Only the virtual void print() const = 0 form is acceptable. Take a look at the grammar specification in C++03 §9/2:

member-declarator:
    declarator pure-specifieropt
    declarator constant-initializeropt
    identifieropt : constant-expression

pure-specifier:
    = 0

The const is part of the declarator -- it's the cv-qualifier-seqopt in the direct-declarator (§8/4):

declarator:
    direct-declarator
    ptr-operator *declarator*

direct-declarator:
    declarator-id
    direct-declarator ( parameter-declaration-clause ) cv-qualifier-seqopt exception-specificationopt
    direct-declarator [ constant-expressionopt ]
    ( declarator )

Hence, the = 0 must come after the const.

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Of course you can. The correct syntax is:

virtual void print() const = 0;
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Try this:-

 virtual void print()  const = 0;
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