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The following code is giving compilation error:

template <typename T>
class Base
{
    public:
    void bar(){};
};

template <typename T>
class Derived : public Base<T>
{
    public:
    void foo() { bar(); }   //Error
};

int main()
{
    Derived *b = new Derived;
    b->foo();
}

ERROR

Line 12: error: there are no arguments to 'bar' that depend on a template parameter, so a declaration of 'bar' must be available

Why is this error coming?

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As a side note: You did not specify the template parameter for Derived in main() –  Nobody Apr 25 '12 at 8:29
    

2 Answers 2

up vote 13 down vote accepted

The name foo() does not depend on any of Derived's template parameters - it's a non-dependent name. The base class where foo() is found, on the other hand - Base<T> - does depend on one of Derived's template parameters (namely, T), so it's a dependent base class. C++ does not look in dependent base classes when looking up non-dependent names.

To resolve this, you need to qualify the call to bar() in Derived::foo() as either this->bar() or Base<T>::bar().

This C++ FAQ item explains it nicely: see http://www.parashift.com/c++-faq-lite/templates.html#faq-35.19

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I always saw this as a short-coming of C++. In Python, the extra-qualification self. before attributes and methods may seem verbose, but it's consistent, so people are used to it. In C++ this-> is optional... so people forget when it's really necessary... all in the name of saving 5 characters :x –  Matthieu M. Apr 25 '12 at 8:33
    
@MatthieuM.: I used to think this behaviour (and many other things related to name lookup in C++) was annoying, too, but there are good reasons for it. A dependent name lookup is more expensive for the compiler than a non-dependent name lookup, because the lookup needs to be delayed until template instantiation time, and performed separately for each instantiation. So, by default, non-dependent name lookup is performed for names that don't mention template parameters, and you have the option of making the lookup dependent by adding this->. –  HighCommander4 Apr 25 '12 at 8:45
    
@MatthieuM.: [continued] This is consistent with the C++ design principle of "don't pay for what you don't use". It's similar to how functions are by default non-virtual, and you have the option of making them virtual (another behaviour that some find annoying), except for virtual functions the cost in question is a runtime cost, whereas for name lookup the cost in question is a compile-time cost. –  HighCommander4 Apr 25 '12 at 8:46
1  
Oh, I am not bashing on the template mechanism. I am bashing on inconsistencies in the syntax. The sometimes this-> is necessary is hard to grok. And imagine what would happen if you had a free function named bar ? It would get picked up, even though in classes normally methods have priority over free functions. My opinion is that requiring this-> for all method calls would make for a much more regular syntax. –  Matthieu M. Apr 25 '12 at 8:48
    
there is no rule in c++ that nondependent names are not looked up in dependent base classes. the rule is that unqualified names are not looked up inbdependent base classes. –  Johannes Schaub - litb Apr 25 '12 at 9:35

The code you've provided doesn't have a build error on the line you indicate. It DOES have one here:

Derived *b = new Derived;

which should read:

Derived<int> *b = new Derived<int>();

(or use whatever type you want instead of int.)

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It does have an error on the line OP says, as well as the error you pointed out. –  juanchopanza Apr 25 '12 at 8:33
    
@user*, it did not solve the issue –  cppcoder Apr 25 '12 at 8:39
    
@cppcoder well it solves ONE issue. As for the qualification mentioned in the answer above, it seems your compiler is dumber/more compliant/pickier than mine! :-) –  Grimm The Opiner Apr 25 '12 at 8:43
1  
@user1158692: More compliant is the correct choice. To be compliant, a compiler must barf at that unqualified reference to bar(). –  David Hammen Apr 25 '12 at 9:33

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