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我遇到了 boost::lexical_cast 的问题。我正在尝试在 GLM(OpenGL 数学)库中的一个类上使用它。

为了允许词法转换,我为相关类实现了 operator<< 函数:

template <class T>
std::ostream& operator<<(std::ostream& out, const glm::detail::tvec2<T>& vec)
{
  out << vec.x << " " << vec.y;
  return out;
}

template <class T>
std::istream& operator>>(std::istream& in, glm::detail::tvec2<T>& vec)
{
  in >> vec.x;
  in >> vec.y;
  return in;
}

我像这样测试了运算符:

std::cout <<  glm::ivec2(1, 1) << glm::vec2(1.0f, 1.0f);

和:

std::stringstream ss("640 480");
glm::ivec2 pt;
ss >> pt;
std::cout << pt << std::endl;

这工作得很好,但是如果我尝试这个:

glm::ivec2 pt = boost::lexical_cast<glm::ivec2>("1 1");

我收到以下错误:

/usr/include/boost/lexical_cast.hpp: In member function ‘bool boost::detail::lexical_stream_limited_src<CharT, Base, Traits>::operator>>(InputStreamable&) [with InputStreamable = glm::detail::tvec2<int>, CharT = char, Base = std::basic_streambuf<char>, Traits = std::char_traits<char>]’:
/usr/include/boost/lexical_cast.hpp:1151:13:   instantiated from ‘Target boost::detail::lexical_cast(typename boost::call_traits<B>::param_type, CharT*, std::size_t) [with Target = glm::detail::tvec2<int>, Source = const char*, bool Unlimited = false, CharT = char, typename boost::call_traits<B>::param_type = const char* const, std::size_t = long unsigned int]’
/usr/include/boost/lexical_cast.hpp:1174:77:   instantiated from ‘Target boost::lexical_cast(const Source&) [with Target = glm::detail::tvec2<int>, Source = char [8]]’
test2.cpp:41:59:   instantiated from here
/usr/include/boost/lexical_cast.hpp:785:29: error: cannot bind ‘std::basic_istream<char>’ lvalue to ‘std::basic_istream<char>&&’
/usr/include/c++/4.6/istream:852:5: error:   initializing argument 1 of ‘std::basic_istream<_CharT, _Traits>& std::operator>>(std::basic_istream<_CharT, _Traits>&&, _Tp&) [with _CharT = char, _Traits = std::char_traits<char>, _Tp = glm::detail::tvec2<int>]’

编辑:似乎只有在包含 Boost.PropertyTree 的标头时才会出现错误。

4

2 回答 2

1

您发布了此提取运算符:

template <class T>
std::istream& operator>>(std::istream& in, glm::detail::tvec2<T>& vec)

但错误意味着它正在尝试用这个编译:

std::istream& std::operator>>(std::istream&&, _Tp&)
[with ... _Tp = glm::detail::tvec2<int>]

您确定您发布的代码与您正在编译的代码相匹配吗?(如果您无法立即看到,请关注运算符的第一个参数)。

好的,这个完整的代码对我来说很好:

#include <sstream>
#include <iostream>

#include <boost/lexical_cast.hpp>

template <class T>
struct tvec2 { 
    tvec2() : x(), y() {}
    tvec2(tvec2 const &) = default;
    tvec2(T x_, T y_) : x(x_), y(y_) {}

    T x;
    T y;
};

template <class T>
std::ostream& operator<<(std::ostream& out, const tvec2<T>& vec)
{
  out << vec.x << " " << vec.y;
  return out;
}

template <class T>
std::istream& operator>>(std::istream& in, tvec2<T>& vec)
{
    // yuck, boost disables skipws on the input stream
    in >> vec.x;
    if (in.good() && in.ignore(256, ' ').good())
        in >> vec.y;
    return in;
}

void test_operators()
{
    tvec2<int> intvec(2,3);
    std::cout << "intvec = {" << intvec << "}\n";

    std::stringstream ss;
    ss << intvec;

    tvec2<int> dupvec;
    ss >> dupvec;
    std::cout << "dupvec = {" << dupvec << "}\n";
}

void test_lexical_cast()
{
    std::cout << "and now with lexical_cast ...\n";
    tvec2<int> dupvec = boost::lexical_cast<tvec2<int> >("2 3");
    std::cout << "dupvec = {" << dupvec << "}\n";
}

int main()
{
    test_operators();
    test_lexical_cast();
}
于 2011-10-26T14:52:52.027 回答
1

答案被另一个人找到了,所以我把它留在这里。

他提到了一些关于参数依赖查找的内容,并建议将流运算符放在 glm::detail 命名空间中,如下所示:

namespace glm {
namespace detail {

template <class T>
std::ostream& operator<<(std::ostream& out, const glm::detail::tvec2<T>& vec)
{
    out << vec.x << " " << vec.y;
    return out;
}

template <class T>
std::istream& operator>>(std::istream& in, glm::detail::tvec2<T>& vec)
{
    in >> vec.x;
    if (in.good() && in.ignore(256, ' ').good())
        in >> vec.y;
    return in;
}

}} // glm::detail

之后,一切正常。

于 2011-10-27T07:01:47.383 回答