45

How can I pass a variable type to a function? like this:

void foo(type){
    cout << sizeof(type);
}

3 Answers 3

57

You can't pass types like that because types are not objects. They do not exist at run time. Instead, you want a template, which allows you to instantiate functions with different types at compile time:

template <typename T>
void foo() {
  cout << sizeof(T);
}

You could call this function with, for example, foo<int>(). It would instantiate a version of the function with T replaced with int. Look up function templates.

3
  • 3
    Only do this if you do not care about compile speed.
    – Ray Garner
    Jan 17, 2017 at 6:32
  • @RayGarner how do you mean? Aren't two template instantiations would only be as expensive as two classes right? My understanding is that templates increase compile time because of the hidden classes, not because templates are somehow expensive. Jan 14, 2018 at 20:33
  • 1
    @TankorSmash Right well scale is the point as long as its small enough project and scale you have no need to really worry about it. However every small project becomes a big one so just in case any FNG were to read that just wanted them to be aware of the trade off in compile times.
    – Ray Garner
    Jan 22, 2018 at 5:33
22

As Joseph Mansfield pointed out, a function template will do what you want. In some situations, it may make sense to add a parameter to the function so you don't have to explicitly specify the template argument:

template <typename T>
void foo(T) {
  cout << sizeof(T)
}

That allows you to call the function as foo(x), where x is a variable of type T. The parameterless version would have to be called as foo<T>().

1

You can do this:

#include <typeinfo>

template<class input>
void GetType(input inp){
    auto argumentType = typeid(inp).name();
}

Seems like it's not exactly you are looking for, but it may help.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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