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C++ difference of keywords 'typename' and 'class' in templates

I already know in many cases that class cannot be replaced by typename. I am only talking about the opposite: replacing typename by class.

Someone pointed out that only typename can be used here:

template<class param_t> class Foo 
{     
        typedef typename param_t::baz sub_t; 
};

But I do not see any problem replacing typename with class here (in MSVC). To recap, can I ALWAYS replace typename with class? Please give an example if not.

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marked as duplicate by bobbymcr, Nate, R. Martinho Fernandes, Cat Plus Plus, zneak Nov 14 '11 at 4:03

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.

1  
In the above case you and some compilers might differ :) –  parapura rajkumar Nov 14 '11 at 1:53
2  
Already answered here: C++ difference of keywords 'typename' and 'class' in templates –  bobbymcr Nov 14 '11 at 1:55
    
Could you please clarify what your actual question is? –  Kerrek SB Nov 14 '11 at 2:04
    
question clarified. –  Rio Nov 14 '11 at 2:22
2  
@Rio: It's not fine. You probably use MSVC, which doesn't require typename in places where standard does. That you can use class is probably an artefact from inheriting struct x var; syntax from C. It's a red herring. –  Cat Plus Plus Nov 14 '11 at 2:36

2 Answers 2

No, you cannot always replace one with the other.

The two keywords typename and template are necessary for name disambiguation to inform the compiler whether a dependent name is a value (no keyword needed), a type (needs typename), or a template (needs template):

template <typename T> struct Foo
{
  char bar()
  {
    int x = T::zing;                 // value, no decoration for disambiguation of "T::zing"

    typedef typename T::bongo Type;  // typename, require disambiguation of "T::bongo"

    return T::template zip<Type>(x); // template, require disambiguation of "T::zip"
  }
};

Only the keywords typename and template work in those roles; you cannot replace either by anything else.

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+1, it's not allowed as soon as you use bar() strangely it seems that if class instead of typename will work, if used inside Foo directly (not inside function). –  iammilind Nov 14 '11 at 2:56
    
@iammilind: With class in place of typename, my GCC says, error: ‘class ****’ resolves to ‘**** {aka int}’, which is is not a class type. So you cannot use class as a generic disambiguator. However, it seems that you can use it to request a type of class-type explicitly. I didn't know that. –  Kerrek SB Nov 14 '11 at 2:56

You cannot use typename for template template arguments:

template <
    template <typename> class Container>, // cannot use typename for class
    typename T
  > struct TestMe
{
    Container<T> _data;
    // ... etc.
};

This is because only classes can be templated.

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1  
what I am asking is that when I cannot use CLASS. I know I cannot use TYPENAME. Please double check my question. –  Rio Nov 14 '11 at 2:07
1  
@Rio: Please double-check your question to see if you can improve the presentation! –  Kerrek SB Nov 14 '11 at 2:13

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