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I wrapped a C++ standard library std::map<T1,T2> that I want to expose as a Node.JS addon. I want to have two functions, Set for adding a new value to the hash table, and Get for looking up value from the map. I want a single function that would work for "arbitrary" type. This means Get would have to extract value of type T1 from Args[0] (note that Args is of type v8::Arguments). See the code below.

template<typename T1, typename T2>
class Hash : public node::ObjectWrap {
public:
    static v8::Persistent<v8::FunctionTemplate> constructor;
    static void Init(v8::Handle<v8::Object> target);
protected:
    /* ... */
    static v8::Handle<v8::Value> New(const v8::Arguments& Args); // new object 
    static v8::Handle<v8::Value> Set(const v8::Arguments& Args); // set H[x]=y
    static v8::Handle<v8::Value> Get(const v8::Arguments& Args); // return H[x]
private:
    std::map<T1, T2> H;
};
/* ... */
template<typename T1, typename T2>
v8::Handle<v8::Value> Hash<T1, T2>::Get(const v8::Arguments& Args) {
    v8::HandleScope HandleScope;

    THash<T1, T2>* H = ObjectWrap::Unwrap<Hash<T1, T2> >(Args.This());
    // TODO: I want to extract argument Args[0] of type T1, call it x, and then
    // return argument y=H->get(x) of type T2.
    return v8::Undefined();
}

Is there a way to do this? If yes, what is the way of doing it?

In case there is no way of extracting an arbitrary type, what is the best practice in case I am willing to restrict to several predefined types? For example, T=int, T=std::string, T=MyType1, and T=MyType2.

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What happens when you try T1 x = *(T1 *)Args[0];? –  Austin Mullins Jul 22 '14 at 11:58
2  
@AustinMullins: You crash because V8 doesn't store strings the same way as std::string does. Most likely, this won't even work correctly for integers - and even if it does, you've just exploited an implementation detail that you cannot rely on. –  Wladimir Palant Jul 23 '14 at 10:17

1 Answer 1

up vote 1 down vote accepted
+50

You need helper functions that will convert from T1 and T2 to v8::Value and vice versa. The problem is, this conversion is type-specific so you won't get around type traits or overloaded functions for each type as suggested here. Something like this should work:

#include <type_traits> // C++0x

template<typename T>
T fromV8Value(v8::Handle<v8::Value> value)
{
  if (std::is_same<T,std::string>::value)
  {
    v8::String::Utf8Value stringValue(value);
    return std::string(*stringValue, stringValue.length());
  }
  else if (std::is_same<T,int>::value)
    return value->IntegerValue();
  else
    throw new std::exception("Unsupported type");
}

v8::Handle<v8::Value> toV8Value(std::string& value)
{
  return v8::String::New(value.c_str(), value.length());
}

v8::Handle<v8::Value> toV8Object(int value)
{
  return v8::Number::New(value);
}

...

v8::Handle<v8::Value> Hash::Set(const v8::Arguments& Args)
{
  T1 key = fromV8Value<T1>(Args[0]);
  T2 value = fromV8Value<T2>(Args[1]);
  return ...;
}

v8::Handle<v8::Value> Hash::Get(const v8::Arguments& Args)
{
  T1 key = fromV8Value<T1>(Args[0]);
  T2 value = ...;
  return toV8Object(value);
}
share|improve this answer
    
Yeah, I thought the answer to my first question should be "no". The solution with type traits that you suggest looks okay to me. Thanks. Just of curiosity, do V8 people usually go this way about this? (I mean, is this considered ``good practice''?) –  blazs Jul 24 '14 at 15:20
    
Also, can I avoid using standard library's std::is_same? –  blazs Jul 24 '14 at 15:46
1  
@blazs: I have no idea how V8 people go about this - I've never seen code doing anything similar in V8. As to std::is_same - what's the problem with it? If you are concerned that the multiple if statements will be slow - the compiler will optimize them away. I'm not aware of any better solutions. Function overloading could work here as well, but you would have to work with out parameters. –  Wladimir Palant Jul 24 '14 at 18:33
    
I'm not worried about compiler not optimizing it or anything like that. It's just that I've been using V8 with internal library that doesn't use C++'s standard library and including it (stdlib) just for the purpose of conversion between V8 types seems an overkill. –  blazs Jul 25 '14 at 7:29
    
@blazs: V8 itself uses stdlib. –  Wladimir Palant Jul 25 '14 at 7:34

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