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Why does the following not compile (MSVC10 - but I suspect it's not valid C++), and is there a workaround?

template <typename M>
struct MyClass
{
    typedef std::vector<M>::iterator iteratorT;

    iteratorT myIterator;

};

Error is error C2146: syntax error : missing ';' before identifier 'iteratorT'. I've tried a bunch of variations with the same result: you can use std::vector<M>::iterator as a type in a member function, but not as a type of a member variable.

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A rather frequent FAQ. See here parashift.com/c++-faq-lite/templates.html#faq-35.18 –  AnT May 18 '12 at 0:10
    
Thanks - I didn't know what to search for to find an answer! –  Zero May 18 '12 at 0:11

1 Answer 1

up vote 4 down vote accepted

It's a case of the typename. Short answer, you need to do this instead:

 typedef typename std::vector< M >::iterator iteratorT;

Long answer, the compiler doesn't know what std::vector< M >::iterator resolves to as M can be anything and there could be a specialization of std::vector for it. Specifically, it cannot tell if std::vector< M >::iterator is a type or a value, and it believes its a value. You have to explicitly tell the compiler its a type by inserting typename.

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D'oh! Idiot moment. I'm so used to MSVC not needing typename that I tend to think of it as a gcc problem! –  Zero May 18 '12 at 0:16
    
@Zero: Yeah, its quite unfortunate that MSVC does not implement two-phase template lookup correctly. –  K-ballo May 18 '12 at 0:19

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