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I am trying to build a template function. Inside templated classes are used and I would like to pass the template type of the function to those classes. So I have:

template <class T>
T find_bottleneck (ListGraph &g, CrossRefMap<ListGraph, Edge, T> &weight, Node &s, Node &t) {
    // Check if theres a single edge left
    if (countEdges(g) == 1) {
        CrossRefMap<ListGraph, Edge, T>::ValueIt itr = weight.beginValue();
        return *itr;
    }

However this fails, citing

lemon_graph.cpp: In function ‘T find_bottleneck(lemon::ListGraph&, lemon::CrossRefMap<lemon::ListGraph, lemon::ListGraphBase::Edge, T>&, Node&, Node&)’:
lemon_graph.cpp:20: error: expected ‘;’ before ‘itr’
lemon_graph.cpp:21: error: ‘itr’ was not declared in this scope

I tried to recreate this using a simple example of a function which generates vectors based on the type passed to it and that compiled fine, so I am not sure what the problem is here.

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Would a simple "return *(weight.beginValue());" work? –  ypnos Aug 26 '10 at 18:56
    
You're making a function template in a class template. –  sbi Aug 26 '10 at 19:27
    
@sbi: I am? I thought find_bottleneck was a function template –  zenna Aug 26 '10 at 19:46
    
I was referring to your "template function....templated classes". It's function template and class template. (As trivial as this difference might sound, it's important. A class template is not a class, it's a template from which classes can be generated. That's why you cannot use the class template's name where a type is expected: std::vector<std::deque> won't compile, because std::deque is not a class. std::deque<int>, however, is, so std::vector< std::deque<int> > works. It's similar for function templates.) –  sbi Aug 26 '10 at 20:54

1 Answer 1

up vote 4 down vote accepted

It's just a missing typename.

typename CrossRefMap<ListGraph, Edge, T>::ValueIt

typename is the answer to at least 50% of all C++-template-related questions :-) It tells the compiler that what follows is always a type, regardless of the template parameters (ValueIt could for example be a int instead of a typedef for an iterator).

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ah ok, thanks! I thought it was typename but I was trying CrossRefMap<ListGraph, Edge, typename T>::ValueIt –  zenna Aug 26 '10 at 19:01
    
@zenna: The rule is to always consider typename when you see ::. typename is always applied to the "result" of an :: operator. –  Potatoswatter Aug 26 '10 at 21:12

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