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As a C++ beginner I want to write some simple type casts. It there a way to create casting logic which can be used in the type new = (type)old format with the prefix parentheses?

string Text = "Hello";
char* Chars = "Goodbye";
int Integer = 42;

string Message = Text + (string)Integer + (string)Chars + "!";

I'd like to stick with this syntax if possible. For example the string cast of boost int Number = boost::lexical_cast<int>("Hello World") has an unattractive long syntax.

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(int)Chars and (char*)Integer already have specific meanings that are completely unrelated to what you want them to mean. –  hvd Aug 25 '12 at 13:20
1  
What's wrong with boost::lexical_cast<int>(..)? I doubt you can get much terser than this unless you pull the function into the local namespace via a using statement. Even then I don't see the value, you want to be clear in what your code is doing and lexical_cast is understood, common and clear. –  Graeme Aug 25 '12 at 13:22
1  
I would really advice against using another syntax. The complexity of the newer casts are there for a reason and even if you would define them to other symbols it would only make your code hard to read for anyone else but yourself. Getting used to the syntax used by everyone else is the way to go in the long run –  Dervall Aug 25 '12 at 13:23
1  
In your example, C++11 lets you write std::to_string(Integer). The other cast works already. –  Bo Persson Aug 25 '12 at 13:53
    
@Bo Persson. to_string works fine. You say the others work already. Then how to convert string to char*? I want to do it in one line, like char* Text = ("Hello Number " + to_string(8) + "!"). –  danijar Aug 25 '12 at 14:00

2 Answers 2

up vote 2 down vote accepted

Just use a normal function that you overload for different types:

std::string str(int i) {
   return "an integer";
}

std::string str(char* s) {
   return std::string(s);
}

Then use if not like a cast, but as a normal function call:

string Message = Text + str(Integer) + str(Chars) + "!";
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3  
With C++11 you already have std::to_string(Integer) in the standard library. –  Bo Persson Aug 25 '12 at 13:51

It's the most common thing in C++ to cast using a NAME<TYPE>(ARGUMENT) syntax, like in static_cast<int>(char). It makes sense to extend this the way boost does.

However, if you want to convert non-primitive types, you can use non-explicit constructors with a single argument and the cast operator.

class MyType {
  public:
    MyType(int); // cast from int
    operator int() const; // cast to int
};

This is not possible if you are dealing with already existing types.

You cannot change the behaviour of the C-style cast. C++ will make up its mind how to interpret such a cast.

You could however come up with an intermediate type that shortens the syntax:

template <typename From>
struct Cast {
  From from;
  Cast(From const& from) : from(from) {}
  template <typename To>
  operator To() const {
    return convert(from,To());
  }
};

template <typename From>
Cast<From> cast(From const& from) {
  return Cast<From>(from);
};

std::string convert(int, std::string const&);

This would allow you to convert things explicitly but without stating how exactly:

int i = 7;
std::string s = cast(i);
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