我正在尝试在boost::phoenix缺乏 C++11 支持的旧编译器上模拟 C++ lambda 表达式,并且我无法从 lambda 表达式中调用简单函数。
C++11 版本:
[](unsigned a) { foo( a ); }( 12678u ); // calls foo( 12678u )
我的 Phoenix Lambda 代码如下:
#include <cstdint>
#include <iostream>
#include <boost/phoenix.hpp>
namespace ph = boost::phoenix;
using ph::local_names::_a;
using ph::placeholders::arg1;
void foo( uint32_t val )
{
std::cout << "\t" << __func__ << "( " << val << " ) called...\n";
}
int main()
{
auto myLambda = ph::lambda( _a = arg1 )
[
foo( _a )
//std::cout << ph::val( "Called with: " ) << _a << ph::val( "\n" )
]( 567u );
myLambda();
return 0;
}
这会产生以下编译器错误:
lambda-ex.cpp: In function ‘int main()’:
lambda-ex.cpp:18:19: error: cannot convert ‘const _a_type {aka const boost::phoenix::actor<boost::proto::exprns_::basic_expr<boost::proto::tag::terminal, boost::proto::argsns_::term<boost::phoenix::detail::local<boost::phoenix::local_names::_a_key> >, 0l> >}’ to ‘uint32_t {aka unsigned int}’ for argument ‘1’ to ‘void foo(uint32_t)’ lambda-ex.cpp:20:15: error: unable to deduce ‘auto’ from ‘<expression error>’
如何从 Phoenix lambda 表达式中调用函数?
我希望能够以phoneix::lambdas与过去使用 C++11 lambda 相同的方式使用,例如:
auto lambda1 = [&]( uint32_t arg )
{
func1( "Some Stuff", arg );
func2( "Some More Stuff", aValueFromLocalScope, arg );
func3( "Some Stuff", anotherValueFromLocalScope, arg );
};
someFuncImpl( aParam, lambda1 );