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What is

operator size_t () const

Environment: Visual Studio 2010 Professional


TL; DR

Today I was searching for a way to use std::tr1::unordered_set. Because I asked for how to use std::map last time, I decided to find it out myself.

I googled and most of the results told me to have a struct to do hashing. The way looked a little bit complicated for me, and I kept searching and finally came across another approach.

I need to implement

bool operator == (const edge & another) const

and

operator size_t () const

The resulting code is near the end of the question.

== is familiar without any problem. size_t is familiar, too. But what is operator size_t?

It seems like equals and hashCode for Java, which need to be overridden together according to Effective Java. But I am not sure, especially when the name is size_t.


The resulting code is as follows. The complete program works fine, and produces correct outputs.

class edge {
public:
    int x;
    int y;
    edge(int _x, int _y) : x(_x), y(_y) {
    }
    bool operator == (const edge & another) const {
        return (x == another.x && y == another.y);
    }
    operator size_t () const {
        return x * 31 + y;
    }
};

A little bit more:

Not

size_t operator () const

which cannot be compiled:

error C2143: syntax error : missing ';' before 'const'
error C4430: missing type specifier - int assumed. Note: C++ does not support default-int
error C2059: syntax error : '{'
error C2334: unexpected token(s) preceding '{'; skipping apparent function body

Even not

int operator size_t () const

but as I see it, the function returns int. The error code is as follows:

error C2549: user-defined conversion cannot specify a return type
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5 Answers 5

up vote 12 down vote accepted

It's the type cast operator. Basically provides for implicitly converting the object to the specified type, in this case size_t.

EDIT:

Say you have a function defined as follows:

void Foo( size_t x )
{
  // do something with x
}

If your class edge defines the type-cast operator for conversion to size_t you can do the following:

edge e;
Foo( e );

The compiler will automatically convert the edge object to size_t. As @litb says in the comments section, do not do this. Implicit conversions can cause trouble by allowing the compiler to perform conversions when you may not have intended for that to happen.

You should instead define a member function like edge::to_size_t() (I know that's a terrible name) to perform the conversion.

As an example, std::string defines the std::string::c_str() member function instead of defining the type-cast operator for conversion to const char *.

EDIT 2: Sorry, I didn't read your question carefully enough. Now I see you're trying to use your class in an std::unordered_set. In that case you should define functors that do the hash and compare operations for your class. Alternatively, you can provide template specializations of std::hash and std::equal_to for your class and not have to specify the optional template parameters when creating the unordered_set object.

As you've asked in the question, this is very much like Java's hashCode() member function, but since C++ classes do not all derive from a common base class like Java classes, it is not implemented as an override-able base class function.

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Would you please provide more details about how this implicit conversion works? And why does it need to be converted to size_t? –  Dante is not a Geek Jul 5 '11 at 15:34
    
@Dante is not a Geek: I've added more details. –  Praetorian Jul 5 '11 at 15:42
    
I change operator size_t () const to size_t to_size_t() const, but it does not work. Your added details mean in general, I should not write this kind of conversion, right? In std::tr1::unordered_set, it seems to require that, and here is why I asked why. It works as hashing as it is converted to an unsigned integer (which is size_t)? –  Dante is not a Geek Jul 5 '11 at 15:52
    
@Dante is not a Geek: Yes, you're absolutely correct; I've edited the answer again :-). In general, it is a bad idea, but required in this case. –  Praetorian Jul 5 '11 at 15:57
1  
@Pratorian: OK -- you could do that, but you'd get a badge for most counter-intuitive design! (And what if those operators are already taken?) The main beef with that is that you need to remember this when you write your container parameters, which is why I'd usually prefer specializing std::hash. Almost always, even, there's really never a need to have more than one hash function for a type... –  Kerrek SB Jul 5 '11 at 17:29

It is a conversion operator, as hinted by error C2549: user-defined conversion cannot specify a return type. It defines how your type can be converted into size_t in this case. In general, operator X() {...} specifies how to create a X from your type.

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Would you please provide more details about how this conversion works? And why does it need to be converted to size_t? –  Dante is not a Geek Jul 5 '11 at 15:35

What is operator size_t () const?

It's a conversion-function. It's a function that allows you to implicitly convert an object of your class to type size_t. See further info and examples in the link I provided. Hth.

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Would you please provide more details about how this implicit conversion works? And why does it need to be converted to size_t? –  Dante is not a Geek Jul 5 '11 at 15:35
    
@Dante is not a Greek: I believe the link I provided contains multiple examples and a good explanation. No? –  Armen Tsirunyan Jul 5 '11 at 15:38
    
the link does not answer the second part of the question. –  Dante is not a Geek Jul 5 '11 at 15:42
2  
@Dante: We don't have enough information to tell for sure, but it sounds like the dubious-sounding approach to using unordered_set that you googled requires that the objects use this conversion operator to provide their hash-code. This is quite dangerous, since it stops the compiler from catching errors such as typing int x = edge; when you meant int x = edge.x;. With the conversion operator, this will assign the edge's hash to x. As you say in the question, the usual approach is to define a functor to calculate the hash. –  Mike Seymour Jul 5 '11 at 15:59
    
@Mike Seymour, and the functor has to be defined somewhere outside the class? –  Dante is not a Geek Jul 5 '11 at 16:02

In any class Foo, operator T () const is a cast operator which lets you cast Foo to T:

Foo x;
T y = x; // invokes Foo::operator T() const

For example, an std::fstream has a cast-to-bool operator so you can use it in expressions like if (mystream) ....


In response to your need to use unordered containers: You will need to implement a hash function or function object, which matches the signature size_t (const Foo &). If you want to do it with least visible impact on the user code, specialize std::hash<Foo>:

size_t my_magic_hash(const Foo &); // defined somehow
namespace std {
  template <>
  struct hash<Foo> : public std::unary_function<const Foo &, std::size_t>
  {
    inline std::size_t operator()(const Foo & x) const
    {
      return my_magic_hash(x);
    }
  };
}

Now we can use std::unordered_set<Foo> directly, provided Foo provides operator==.

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Note that the above also works if there is a T::T(const Foo&) defined. –  Node Jul 5 '11 at 15:31
1  
@Node: Yes, either you convert A to B, or you construct B from A. What happens if both are defined, though, does the one-argument constructor take precedence? –  Kerrek SB Jul 5 '11 at 15:35
    
Why does it need to be converted to size_t? –  Dante is not a Geek Jul 5 '11 at 15:38
    
@Dante: What do you mean? I'm answering two questions, 1) what is a cast operator, and 2) how to specify a hash function. The two are different things. The hash function is just an ordinary function (or functor), not cast operators are used there. –  Kerrek SB Jul 5 '11 at 15:41
    
@Kerrek SB, I know, my why is for the reason size_t acts as hashing. –  Dante is not a Geek Jul 5 '11 at 15:53

That's an implicit conversion operator. It basically allows an object of your class to be used in a context where a size_t is expected (calling that operator to do the conversion).

In order to use unordered_set you need to have some sort of hashign function. In this case, it's being disguised as operator size_t, which I don't really recommend because it's simply obfuscating the fact that it's a hash function. I would just go ahead and define a real hash function/functor and use that instead. It'll be more clear and future maintainers will thank you.

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I regard(ed) as the best way as all things now can be included in the class itself. Can a real hash function/functor be included in the class itself? Would you please give more details about the real hashing? –  Dante is not a Geek Jul 5 '11 at 15:57

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