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Why this sentence is valid in C++?

qi::rule<Iterator, std::string(), skipper<Iterator> > name;

Extracted from here:

The definition of rule is (resumed) the following:

template <typename Iterator, typename T1, typename T2,
                             typename T3, typename T4>
struct rule : boost::proto::extends<bla, bla>, parser<bla, bla>
{
  bla, bla
};

Extracted from here:

The rule definition expects a type, however I send it an object. It is possible?

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2 Answers 2

up vote 3 down vote accepted

In this context, std::string() means the type of something that returns an std::string and has no parameters. For example,

std::string foo() { return "Foo!\n"; }

or an instance of

struct Foo
{
  std::string operator()() const { return "Foo!\n"; }
};
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It may be interesting to note that one reason why this is unambiguous is due to the fact that template arguments can only be (a) types or (b) compiletime constant integral expressions. Since a constructor cannot be constexpr it is clear to the compiler that you aren't constructing an object but declaring a function type. The C++ FQA has a nice paragraph on that yosefk.com/c++fqa/ctors.html#fqa-10.2 –  sehe Nov 21 '12 at 7:32
    
@sehe my understanding was that constructors can be constexpr, but since std::string is not an integral type, std::string() cannot be a non-type integral expression anyway. –  juanchopanza Nov 21 '12 at 8:27
    
Ok, that's pretty nifty! en.cppreference.com/w/cpp/language/constexpr. Thanks for the precision. –  sehe Nov 21 '12 at 11:44

You don't give it an object. std::string() is the type of a function that takes no arguments and returns an std::string.

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