4

This question already has an answer here:

I encountered some production code which made me wonder why it compiled. I've distilled it down to the following.

I compiled it with gcc 6.4.1 and 8.1 along with a couple of other online compilers and they all report no errors.

struct Y
{
};

struct X
{
    using XY = Y;
};

struct VZ
{
    virtual void f( X::X::XY xy ) = 0;
};

struct Z : public VZ
{
    virtual void f( X::XY xy ) override {}
};

int main( int c, char *v[] )
{
}

Notice that the pure virtual is declared with what looks like an incorrect type (X::X::XY). It also make no difference how many X:: I prepend the type with, it still compiles.

I suspect that it may be a simple parser issue but not sure.

marked as duplicate by NathanOliver c++ Jul 3 '18 at 14:42

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3

This is expected behavior, it's called injected class name. X::X refers to the class name X, and same as X::X::X, and so on. X::X::XY is same as X::XY here.

In a class scope, the name of the current class is treated as if it were a public member name; this is called injected-class-name.


BTW: This has nothing to do with type deduction; which is usually used as another term of C++.

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