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How to I get my class to infer the inner type of a parameter without explicitly referring to it? Look at the minimal example below:

#include <vector>

template <class T> 
class foo {
public:
  foo(std::vector<T> &x) :
    _x(x) {
      T dummy = x.front(); // Trying to trick the compiler here
   }
private:
  std::vector<T> _x;
};

int main() {
  std::vector<int> a;
  foo<int> b(a);  // This works
  foo c(a);       // This fails
  return 0;
}

I see that foo expects it's argument to be a vector<int>, but it let's me create an object of type T==[int] so it seems like it knows what the inner type is! Neverminding the fact that the assignment of dummy fails when a is empty ... how can I refer to the nested inner type?

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I don't understand the question. What do you mean by "nested inner type"? Where is the nested template? Where do you want the type to be inferred? The line foo c(a), or somewhere else? –  jalf Dec 8 '11 at 20:13
    
@jalf Sorry if the wording is unclear, or if I've confused my terms (please correct me). I'd like to make the line foo c(a) compile, whereas now it fails since foo doesn't have a type. –  Hooked Dec 8 '11 at 20:16

1 Answer 1

up vote 3 down vote accepted
foo c(a);       // This fails

For obvious reasons. foo is a class template, you cannot instantiate an object of it without naming a template parameter.
This is not like a function template, where the template arguments can be inferred through the function arguments. foo in this case names a type (or should), not the constructor.

In C++11, you might do this:

template<class T>
foo<T> make_foo(std::vector<T> const& x){
  return foo<T>(x);
}

// in main
auto f = make_foo(a);
share|improve this answer
    
Along those lines then, can you wrap the construction in a function and just use the new auto to return the type? Is this standard practice? –  Hooked Dec 8 '11 at 20:21
    
@Hooked: That you can do in C++11, sure. I'm not so sure if it's useful, though. But you can do it, no problem. –  Xeo Dec 8 '11 at 20:23
    
Actually you can't return an auto as it's a placeholder for a type. The type of auto will be deduced during initialization so it can't be used as a return type or as a parameter. –  AJG85 Dec 8 '11 at 21:12
    
@AJG: Oh, I didn't interpret the comment like that, as you can see in my edit. Good point though. –  Xeo Dec 8 '11 at 21:14
    
I know, I just wanted to point that out for @Hooked to be clear ;-) –  AJG85 Dec 8 '11 at 21:17

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