33

When creating a template function in C++ is there a simple way to have the typename of the template represented as a string? I have a simple test case to show what I'm trying to do (note the code shown does not compile):

#include <stdio.h>
template <typename type>
type print(type *addr) 
{
  printf("type is: %s",type);
}

int main()
{
  int a;
  print(&a);
}

// Would like to print something like:
// type is: int

I think that the typename should be available at compile time when the function is instantiated, but I'm not that familiar with templates and I haven't seen a way to get the typename as a string.

The reason that I want to do this is for some printf type debugging. I have multiple threads running and stepping through with gdb changes the program behavior. So for some things I want to dump information about which functions were executing. It's not too important so if the solution is overly complex I would skip adding this information to my logging function. But if there was a simple way to do this it would be useful information to have.

  • 3
    Try typeid (type).name() after including <typeinfo> – chris Mar 21 '12 at 21:44
  • 1
    do you strictly need it at compile time? otherwise, typeid(type).name() might help. – Philipp Mar 21 '12 at 21:45
  • Never mind, didn't see the compile-time thing, but if you're printing it, I'm sure you can figure it out at run-time. – chris Mar 21 '12 at 21:46
  • I once had a question to see if a template argument was void so it wouldn't return anything. If it helps, it's here: stackoverflow.com/questions/9625526/… – chris Mar 21 '12 at 21:54
  • I don't think there's a way to get the name at compile time, since you couldn't do much of anything useful with it. typeid::name() is the right answer there. – Mooing Duck Mar 21 '12 at 22:05
21

__PRETTY_FUNCTION__ should solve your problem (at run time at least)

The output to the program below is:

asfdasdfasdf test<type>::test() [with type = int]
asfdasdfasdf test<type>::test() [with type = int]
asfdasdfasdf test<type>::test() [with type = int]
asfdasdfasdf test<type>::test() [with type = int]
asfdasdfasdf test<type>::test() [with type = int]
asfdasdfasdf test<type>::test() [with type = int]
asfdasdfasdf void tempFunction() [with type = bool]
asfdasdfasdf void tempFunction() [with type = bool]
asfdasdfasdf void tempFunction() [with type = bool]
asfdasdfasdf void tempFunction() [with type = bool]
asfdasdfasdf void tempFunction() [with type = bool]
asfdasdfasdf void tempFunction() [with type = bool]
!!!Hello World!!!

If you really, really, need the typename as a string, you could hack this (using snprintf instead of printf) and pull the substring after '=' and before ']'.

#include <iostream>
using namespace std;

template<typename type>
class test
{
public:
test()
{
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
}
};

template<typename type>
void tempFunction()
{
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
    printf("asfdasdfasdf %s\n", __PRETTY_FUNCTION__);
}

int main() {
    test<int> test;

    tempFunction<bool>();
    cout << "!!!Hello World!!!" << endl; // prints !!!Hello World!!!
    return 0;
}
  • Doesn't compile on VS15. – shinzou Jan 21 '16 at 19:15
  • 2
    @kuhaku It will only compile if you're using a compiler that supports PRETTY_FUNCTION. Review this answer to see details about PRETTY_FUNCTION. Also this link will show you what windows macros can be used to do the same thing. I suspect func will work, but have not tried or attempted to confirm. I exclusively use GCC, so I don't have an environment to confirm. – David D Jan 27 '16 at 17:37
  • Note: PRETTY_FUNCTION should be __PRETTY_FUNCTION__ and func should be __func__ – David D Jan 27 '16 at 17:45
52

To get a useful compile time name:

Supposing you have some unknown type named 'T'. You can get the compiler to print it's type by using it horribly. For example:

typedef typename T::something_made_up X;

The error message will be like:

error: no type named 'something_made_up' in 'Wt::Dbo::ptr<trader::model::Candle>'

The bit after 'in' shows the type. (Only tested with clang).

Other ways of triggering it:

bool x = T::nothing;   // error: no member named 'nothing' in 'Wt::Dbo::ptr<trader::model::Candle>'
using X = typename T::nothing;  // error: no type named 'nothing' in 'Wt::Dbo::ptr<trader::model::Candle>'

With C++11, you may already have an object and use 'decltype' to get its type, so you can also run:

auto obj = creatSomeObject();
bool x = decltype(obj)::nothing; // (Where nothing is not a real member). 
  • 4
    this really helps to print typenames at compile time when you have code which is not compiling! – m.s. Jul 8 '15 at 22:40
  • 2
    The only response to actually answer the question! – Jeff Trull Apr 27 '16 at 22:49
  • 2
    Works fine with gcc too. – cartoonist Oct 14 '16 at 19:20
  • 2
    IMHO this one should be an accepted answer – stryku Apr 1 '17 at 21:04
11

Since you have said you would need this for debugging purpose, maybe a runtime solution is also acceptable. And you have tagged this as g++ so you don't want to be standard conform.

Here is what that means:

#include <cxxabi.h> // the libstdc++ used by g++ does contain this header

template <typename type>
void print(const type *addr) // you wanted a pointer
{
  char * name = abi::__cxa_demangle(typeid(*addr).name(), 0, 0, NULL);
  printf("type is: %s\n", name);
  free(name);
}

print(new unsigned long);    // prints "type is: unsigned long"
print(new std::vector<int>); // prints "type is: std::vector<int, std::allocator<int> >"

EDIT: corrected the memory leak. Thx to Jesse.

  • This doesn't work at compile time it just prints out the demangled name – 111111 Mar 21 '12 at 22:27
  • Just keep in mind that you are leaking memory as malloc is called with __cxa_demangle. – Jesse Good Mar 21 '12 at 22:37
  • thanks the runtime solution works for what I need. – Gabriel Southern Mar 21 '12 at 22:43
  • I changed my accepted answer because for the problem I'm debugging doing the function call ended up changing the program behavior and so I was not reproducing the bug that I'm trying to fix. I thought the runtime overhead would not matter but I think the function call changed something with the stack and that did matter. The __PRETTY_FUNCTION__ method seems to work better for the problem I'm debugging, but both solutions look useful so thanks again. – Gabriel Southern Mar 21 '12 at 23:16
6

There is Boost.TypeIndex library.

See boost::typeindex::type_id for details.

It is very-easy-to-use, cross-platform and is real compile-type solution. Also it works as well even if no RTTI available. Also most of compilers are supported from the box.

  • Note that this is only available for Boost >= 1.56.0. – BenC Oct 10 '15 at 8:50
  • You are right but still is very-easy-to-use and it is real compile-type solution. And it works as well even if no RTTI info available. Also most of compilers are supported from the box. – Andrey Oct 12 '15 at 20:18
  • Absolutely, hence my +1. But the next information I needed was the minimum Boost version required, since distributions shipping older versions of Boost may not have the library available (e.g. Ubuntu 12.04), which means that you'd need to fall back to other solutions if Boost < 1.56.0 is detected. Still, the extra information you added deserves to be in your answer. – BenC Oct 13 '15 at 5:43
1

Another compile time solution, similar to the one provided by matiu, but perhaps a little more descriptive would be to use a static_assert wrapped in a little helper function.

template<typename T>
void print_type_in_compilation_error(T&&)
{
    static_assert(std::is_same<T, int>::value && !std::is_same<T, int>::value, "Compilation failed because you wanted to read the type. See below");
}
// usage:
int I;
print_type_in_compilation_error(I);

The above will give you a nice error message (tested in MSVC and Clang) as in the other answer, but the code is IMHO better to understand.

  • This was quite useful to me today in a situation where I was unable to get other approaches listed here to work. I also adapted this approach to use a template struct rather than a template function. – Some Guy May 7 '18 at 8:43
0

if you have a known set of types used instantiate the template we can use the approach described in this older thread: stackoverflow.com/questions/1055452

0

As commented by @chris and @Philipp, unless you really need the name in compile-time, you can use typeid(type).name() after including <typeinfo>.

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