3

I am using a 3rd party library that has a declaration like this:

typedef struct {} __INTERNAL_DATA, *HandleType;

And I'd like to create a class that takes a HandleType in the constructor:

class Foo
{
    Foo(HandleType h);
}

without including the header that defines HandleType. Normally, I'd just forward-declare such a type, but I can't figure out the syntax for this. I really want to say something like:

struct *HandleType;

But that says "Expected identifier before *" in GCC. The only solution I can see is to write my class like this:

struct __INTERNAL_DATA;
class Foo
{
    Foo(__INTERNAL_DATA *h);
}

But this relies on internal details of the library. That is to say, it uses the name __INTERNAL_DATA, which is an implementation detail.

It seems like it should be possible to forward-declare HandleType (part of the public API) without using __INTERNAL_DATA (part of the implementation of the library.) Anyone know how?

EDIT: Added more detail about what I'm looking for.

4

Update:

I am using it in the implementation .cpp of Foo, but I want to avoid including it in my header .h for Foo. Maybe I'm just being too pedantic? :)

Yes you are :) Go ahead with forward declaration.

If HandleType is part of the interface there must be a header declaring that. Use that header.

Your problem is still a vague one. You are trying to protect against something you cannot.

You can add the following line to your client library:

typedef struct INTERNAL_DATA *HandleType;

but, if the name/structure changes you may be in for some casting nastiness.

Try templates:

template <class T>
class Foo
{
    Foo(T h);
};

Forward declaration is fine. If you are going to use pointers or references you only need a class (__INTERNAL_DATA) declaration in scope. However, if you are going to use a member function or an object you will need to include the header.

| improve this answer | |
  • but then I need to forward-declare __INTERNAL_DATA, which is a name that could change or be removed altogether. (Since it's an implementation detail of the library.) – Jesse Rusak Mar 10 '09 at 19:50
  • So could HandleType for all you know. – dirkgently Mar 10 '09 at 19:53
  • Your requirements are not clear, maybe you can add some more detail. – dirkgently Mar 10 '09 at 19:55
  • HandleType is part of the public interface, though. I'm supposed to be using it. __INTERNAL_DATA isn't. – Jesse Rusak Mar 10 '09 at 19:56
  • I am using it in the implementation .cpp of Foo, but I want to avoid including it in my header .h for Foo. Maybe I'm just being too pedantic? :) – Jesse Rusak Mar 10 '09 at 20:02
1

If the type is in a 3rd party library then the big benefit of forward declaration (isolating rebuilds due to changes in headers) is effectively lost.

If you're worried about compilation times (it's a sizeable header) then perhaps you can place it in a precompiled header or just include the relevant header from a library.

E.g. many library headers look like

// library.h
#include "Library/Something.h"
#include "Library/SomethingElse.h"
| improve this answer | |
1
 typedef struct {} __INTERNAL_DATA, *HandleType;

If it is defined like that (all on one line), then __INTERNAL DATA is as much a part of the public interface as HandleType.

However, I don't think __INTERNAL_DATA actually exists. More than likely, HandleType is really (internally) an int. This odd definition is just a way of defining it so that it's the same size as an int, but distinct, so that the compiler give you an error if you try passing an int where you're supposed to pass an HandleType. The library vendor could just as easily have defined it as "int" or "void*", but this way we get some type checking.

Hence __INTERNAL_DATA is just a convention and is not going to change.


UPDATE: The above was a bit of a mental burp... OK, __INTERNAL_DATA definitely does not exist. We know this for a fact, because we can see it's definition as an empty struct. I'm going to guess that the 3rd-party library uses "C" external linkage (no name managling), in which case, just copy the typedef -- it will be fine.

Inside the library itself, HandleType will have a completely different definition; maybe int, maybe "struct MyStruct {.......} *".

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1

If you really, really, really don't want to expose _INTERNAL_DATA to the caller then your only real choice is to use typedef void* HandleType; Then inside your library you can do anything you want including changing the entire implementation of *HandleType.

Just create a helper function to access you real data.

inline _INTERNAL_DATA* Impl(HandleType h) {
    return static_cast<_INTERNAL_DATA*>(h);
}
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1

I'm not quite sure what you're going for, but the following will work without including the actual header file:

// foo.h
class Foo
{
    public:
    template<typename T>Foo(T* h) { /* body of constructor */ }
};

Mind you, you will still have to have access the public members of __INTERNAL_DATA within the body of the constructor.

edit: as pointed out by James Curran, the __INTERNAL_DATA structure has no members, so it can be used, as above, with no problems.

| improve this answer | |
  • Check the typedef closely... __INTERNAL_DATA has NO public (or private) members.... – James Curran Mar 10 '09 at 20:23
  • I assumed that was just an example structure, to keep the question simple. – e.James Mar 10 '09 at 20:26

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