58

I have a small obj loader and it takes two parameters and passes them back to the input variables.. however this is my first time doing this and i'm not sure how to print said values now. Here is my main function to test if the loader is working. I have two vectors of type glm::vec3 to hold the vertex and normal data.

std::vector<glm::vec3> vertices;
std::vector<glm::vec3> normals;    

int main() {
    bool test = loadOBJ("cube.obj", vertices, normals);
    for (int i = 0; i < vertices.size(); i++) {
       std::cout << vertices[i] << std::endl;   // problem line
    }

    return 0;   
}

The line commented above is what is generating useless info. If I leave it like that and run the program I get a bunch of errors spewed at me (too unformatted and long to paste here) and if I add the reference operator I get output like this:

0x711ea0
0x711eac
0x711eb8
0x711ec4    // etc

Any idea what I am doing wrong?

10
  • 3
    Does glm::vec3 overload operator<<? If not, you're probably better printing, for example, vertices[i].x << ' ' << vertices[i].y << ' ' << vertices[i].z
    – chris
    Jul 17 '12 at 3:06
  • that was one of the many garbled errors i saw in the ouput window? i don't know if it does.
    – iKlsR
    Jul 17 '12 at 3:06
  • 2
    show us the definition of glm:vec3.
    – Alanmars
    Jul 17 '12 at 3:09
  • 1
    @DeadMG, Oops, I meant lvalue :p Of course you don't go around &5, &"hi" etc.
    – chris
    Jul 17 '12 at 13:56
  • 1
    @iKlsR The answer to your other question about printing floats is std::copy(std::begin(verts),std::end(verts),std::ostream_iterator<float>(std::cout, " "));
    – bames53
    Jul 17 '12 at 16:55
130

glm has an extension for this. Add #include "glm/ext.hpp" or "glm/gtx/string_cast.hpp"

Then to print a vector for example:

glm::vec4 test;
std::cout<<glm::to_string(test)<<std::endl;
3
  • 12
    NTS: You also need to add GLM_ENABLE_EXPERIMENTAL, in order to use glm::to_string. (glm 0.9.9.3) Jan 19 '19 at 14:28
  • 3
    Note To Self and other c/cpp n00bs: above comment means type "#define GLM_ENABLE_EXPERIMENTAL"
    – Nathan
    Mar 9 '21 at 20:21
  • 2
    Also type it before including!
    – Le Sir Dog
    Mar 15 '21 at 12:07
20

I think the most elegant solution might be a combination of the two answers already posted, with the addition of templating so you don't have to reimplement the operator for all vector/matrix types (this restricts the function definition to header files, though).

#include <glm/gtx/string_cast.hpp>

template<typename genType>
std::ostream& operator<<(std::ostream& out, const genType& g)
{
    return out << glm::to_string(g);
}
6
  • 1
    Out of curiosity: what about your templating stops this function from being used with types other than the glm ones?
    – Ludwik
    Aug 6 '15 at 5:06
  • 2
    This only gives me "ambiguous overload".
    – Ludwik
    Aug 6 '15 at 5:50
  • @Ludwik Nothing other than judicious placement of the template and preexisting template specializations of operator<<, unfortunately, but I had little experience with SFINAE techniques at the time (still don't, for that matter) so I'll leave that exercise to someone with more experience than me. operator<< is generally specialized for built-in types, though, so as long as you aren't using it with classes/structs/etc. you haven't already defined a specialization for you should be okay normally. If you're getting "ambiguous overload", it means something else has a general overload for <<.
    – JAB
    Aug 6 '15 at 13:38
  • If I'm not mistaking something, I'm getting the "ambiguous overload" for string.
    – Ludwik
    Aug 9 '15 at 5:12
  • 2
    SFINAE only works if one of the template parameters fails to expand. To solve ambiguous overloads, include <type_traits> and <utility>, then use template <typename GLMType, typename = decltype(glm::to_string(std::declval<GLMType>()))>
    – Cory
    Sep 11 '17 at 19:14
15

glm::vec3 doesn't overload operator<< so you can't print the vector itself. What you can do, though, is print the members of the vector:

std::cout << "{" 
          << vertices[i].x << " " << vertices[i].y << " " << vertices[i].z 
          << "}";

Even better, if you use that a lot, you can overload operator<< yourself:

std::ostream &operator<< (std::ostream &out, const glm::vec3 &vec) {
    out << "{" 
        << vec.x << " " << vec.y << " "<< vec.z 
        << "}";

    return out;
}

Then to print, just use:

std::cout << vertices[i];
8
  • Hey, if I have a large, multi-file project, where can I put that overload so it becomes usable everywhere?
    – Ludwik
    Aug 3 '15 at 8:20
  • 1
    @Ludwik, Pretty please use the extension mentioned in the other answer (this answer works more generally, but I lack knowledge of this library). If you need an overload like this for something, it works like any other class or function you'd use repeatedly. Put a declaration for it into a header and either define it in the header as inline to satisfy linking or define it in one implementation file.
    – chris
    Aug 5 '15 at 4:05
  • I do use the accepted answer's extension, but it requires calling glm::to_string over the vector, while I'd prefer an << overload. Thanks, I'll put it in a header file.
    – Ludwik
    Aug 5 '15 at 7:23
  • 2
    It's probably better to put it in terms of what glm provides: operator <<(...) { return out << glm::to_string(vec); } Jan 11 '16 at 22:42
  • @LimitedAtonement, I agree. I was unaware that this function existed until the first other answer was written. At least the answer might still be useful in certain scenarios.
    – chris
    Jan 12 '16 at 0:38
8

GLM has operator<<() in <glm/gtx/io.hpp>

#include <iostream>
#include <glm/glm.hpp>
#include <glm/gtx/io.hpp>

int main()
{
   glm::vec3 v(1.0f, 2.0f, 3.0f);
   std::cout << v << std::endl;
}

Output is:

[    1.000,    2.000,    3.000]
0

To get the overload resolution right, you can do something like:

// Writes a generic GLM vector type to a stream.
template <int D, typename T, glm::qualifier P>
std::ostream &operator<<(std::ostream &os, glm::vec<D, T, P> v) {
  return os << glm::to_string(v);
}

0

Elaborating on JAB's answer, I use the following to avoid 'operator <<' is ambiguous errors:

#include <glm/glm.hpp>
#include <glm/gtx/string_cast.hpp>

/**
 * can_cout<T> tells whether there already exists an override of operator<< that
 * supports T.
 */
template <typename, typename = void>
struct can_cout : public std::false_type {};

template <typename T>
struct can_cout<T, std::void_t<decltype(operator<<(std::declval<std::ostream>(), std::declval<T>()))> > : public std::true_type {};

/**
 * Implement operator<< iff GlmType is handled by glm::to_string but there is
 * not already an override of operator<< that hanldes this type.
 */
template<
    typename GlmType,
    typename = std::enable_if_t<!can_cout<GlmType>::value>,
    typename = decltype(glm::to_string(std::declval<GlmType>()))
>
std::ostream& operator<<(std::ostream& out, const GlmType& g)
{
    return out << glm::to_string(g);
}

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