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From the question:

Proper use of this->

The answer states that -> can be used

...in a template, in order to force the following symbol to be dependent—in this latter use, it is often unavoidable.

What does this mean what what would a good example of this use be? I don't quite what "dependent" means in this context, but it sounds like a useful trick.

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3 Answers 3

up vote 12 down vote accepted

Posted in other question:

template <class T>
struct foo : T {
  void bar() {
    x = 5;       // doesn't work
    this->x = 5; // works - T has a member named x
  }
};

Without this-> compiler doesn't know x is a (inherited) member.

Similar to use of typename and template inside template code:

template <class T, class S>
struct foo : T {
  typedef T::ttype<S>; // doesn't work
  typedef typename T::template ttype<S> footype; // works
};

It's silly and somewhat unnecessary, but you still gotta do it.

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Okay, thanks for the answer :) now to stop myself from posting another question on this one... typename T::template ttype<S> - why do you need ::template on this line? –  w00te Nov 28 '11 at 17:43
    
@w00te There is an excellent FAQ entry that explains when and where to use typename and template –  Praetorian Nov 28 '11 at 17:45
    
Thanks Praetorian - I'll check that out :) –  w00te Nov 28 '11 at 17:45
3  
@w00te It's using template as a qualifier. Without it the compiler would see the <S as less than S. –  Pubby Nov 28 '11 at 17:46
1  
"It's silly and somewhat unnecessary, but you still gotta do it." It's absurd that typedef does not imply typename: there is no fundamental reason why typename is necessary just after typedef. OTOH, the fundamental need for typename, template and this-> actually derive from the modern name binding rules of templates (see my answer). –  curiousguy Nov 29 '11 at 5:24
template <typename T>
struct Base
{
  void foo() {}
};

template <typename T>
struct Derived : Base<T>
{
  void bar()
  {
    // foo();  //foo() is a dependent name, should not call it like this
    // Base<T>::foo(); //This is valid, but prevents dynamic dispatch if foo is virtual
    this->foo(); //use of this-> forces foo to be evaluated as a dependent name
  }
};

A more detailed explanation is available on the C++ FAQ

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+1 for mentioning "dynamic dispatch" –  curiousguy Nov 29 '11 at 5:26

See Using this keyword in destructor [closed].

This is ugly, but this ugliness derives directly from the general name binding rules of "modern" templates (as opposed to macro-like template, as implemented by MS).

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