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Let's say I'm using a templated class with something simple like:

template <class T> 
class MyClass

I want to use elements from T's namespace, for example T could be string, and I wanted to use

T::const_iterator myIterator; 

...or something like that. How do I achieve that? Probably, it's either not possible or very simple, but I have no idea.

Thanks for answers!

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2 Answers 2

up vote 12 down vote accepted

By default if T is a template parameter like in your example, the T::some_member is assumed not to name a type. You have to explicitly specify that it is, by prefixing it with typename:

typename T::const_iterator myIterator;

This resolves some parsing problems like in the following example

// multiplication, or declaration of a pointer?
T::const_iterator * myIterator;

So that the compiler can parse this even before instantiating the template, you have to give it a hand and use typename, including in those cases where it wouldn't be ambiguous, like in the first case above. The Template FAQ has more insight into this.

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Great answer, thanks ! –  Homer J. Simpson Dec 24 '09 at 17:00
2  
There is one case when "typename" doesn't have to be used (and can't be) : derivation, eg template<class T> class A : T::const_iterator {}; –  Benoît Dec 24 '09 at 18:38
    
@Benoit, right. Good note. –  Johannes Schaub - litb Dec 24 '09 at 18:43

It is definitely possible.

template< typename T >
class Example
{
    void foo( const T& t )
    {
    	typedef typename T::value_type Type;
    	typedef typename T::const_iterator Iter;
    	Iter begin = t.begin();
    	Iter end = t.end();

    	std::copy( begin, end, std::ostream_iterator<Type>(std::cout) );
    }
};

The key is the typename part of the typedef.

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Thank you too, making it an extra type for the whole class context seems a good idea. –  Homer J. Simpson Dec 24 '09 at 17:01

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