Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Possible Duplicate:
C++ template typedef

I am trying to derive a template type of another template by pre-specializing of another template:

template<unsigned a, unsigned b, unsigned c>
struct test
{
    enum
    {
        TEST_X = a,
        TEST_Y = b,
        TEST_Z = c,
    };
};

template<unsigned c>
typedef test<0, 1, c> test01;

However, on GCC 4.4.5, I am getting this error: error: template declaration of ‘typedef’ on the second type (test01).

Guidance would be highly appreciated, as I don't understand what is wrong with my code.

share|improve this question

marked as duplicate by GManNickG, the_drow, BЈовић, Fred Nurk, David Rodríguez - dribeas Feb 15 '11 at 8:55

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  
I know this is a duplicate, but I can't find it. EDIT: Aha, here. –  GManNickG Feb 15 '11 at 8:23
    
Please use the search next time –  the_drow Feb 15 '11 at 8:29
1  
When you look at the duplicate, note that in that particular case the user did not want to use inheritance, even if that was a common pattern for C++98 compilers: template <unsigned c> struct test01 : test<0,1,c> {} There is a slight difference, as you are adding inheritance to the mix and that has some pitfalls (beware: do not delete the type through pointers to test<0,1,N> as that will cause UB, always destroy at the test01 level) –  David Rodríguez - dribeas Feb 15 '11 at 8:59
add comment

2 Answers

up vote 9 down vote accepted

This syntax isn't allowed by C++03. The nearest work-around is:

template<unsigned c>
struct test01
{
    typedef test<0, 1, c> type;
};

typedef test01<2>::type my_type;

In C++0x, we can do this:

template<unsigned c>
using test01 = test<0, 1, c>;
share|improve this answer
1  
Damn you C++03!!! and damn you C++0x for not coming already! Thank you for clarifying this. –  LiraNuna Feb 15 '11 at 8:25
7  
It's so sad that templatetypedefs are illegal. ;-) –  templatetypedef Feb 15 '11 at 8:29
1  
@templatetypedef: Then what are you doing here? ;) –  Xeo Feb 15 '11 at 8:33
    
@templatetypedef : I knew you were illegal; thanks for admitting so :P –  Nawaz Feb 15 '11 at 8:38
add comment

Just for the sake of listing an alternative:

template <typename C>
struct test01 : test<0, 1, C> { };

test01<4> my_test014;

This does create new, distinct types and not simply aliases for instantiations of the base template :-(.

share|improve this answer
1  
Sadly it doesn't guard against: test<0, 1, 2>* x = new test01<2>(); delete x; // oops, UB!. –  GManNickG Feb 15 '11 at 8:53
    
@GMan: obviously true if you don't bother to put a virtual destructor in test<> (same old issue as derivation from Standard containers, and practically irrelevant in my experience and coding style, but everyone lives by the concerns that seem significant to them...) –  Tony D Feb 15 '11 at 9:24
    
Since I am doing mostly template meta-programming, this is fine by me. However, I do understand the difference. –  LiraNuna Feb 15 '11 at 9:27
    
Does not work for #include <memory> template<typename T> struct MyShared : public std::shared_ptr<T>{}; –  Cobaia Jun 30 at 13:50
    
@Cobala: it I was inclined to put as much effort and detail into this comment as you did for yours, I'd just say "you're wrong", but to be more constructive ;-P... here's an ideone example proving it "works", but more seriously you probably want to add a convenience function or two - e.g. at least constructor forwarding ala using std::shared_ptr<T>::shared_ptr; inside MyShared. Cheers. –  Tony D Jun 30 at 16:37
add comment

Not the answer you're looking for? Browse other questions tagged or ask your own question.