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Why won't the compiler let me forward declare a typedef?

Assuming it's impossible, what's the best practice for keeping my inclusion tree small?

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6 Answers 6

You can do forward typedef. But to do

typedef A B;

you must first forward declare A:

class A;

typedef A B;
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8  
+1 in the end because while you technically can't "forward-typedef" (i.e. you can't write "typedef A;"), you can almost certainly accomplish what the OP wants to accomplish using your trick above. –  j_random_hacker Apr 30 '09 at 7:30
7  
But be aware, if the typedef changes you may change all those forward declarations too, which you might miss if the old and the new typedef using types with the same interface. –  math Jan 27 '11 at 16:34
6  
This doesn't work with templated classes, joyously. –  Alex Sep 11 '12 at 22:35
11  
In general this is not a useful solution. For example if the typedef names a complex multilevel template type using a forward declaration this way is rather complex and difficult. Not to mention that it might require diving into implementation details hidden in default template arguments. And the end solution is a lengthy and unreadable code (especially when types come from various namespaces) very prone to change in original type. –  Adam Badura Nov 29 '12 at 12:08
    
Also this shows "implementation details" (even if not fully but still...) while the idea behind forward declaration was to hide them. –  Adam Badura Nov 29 '12 at 12:09

For those of you like me, who are looking to forward declare a C-style struct that was defined using typedef, in some c++ code, I have found a solution that goes as follows...

// a.h
 typedef struct _bah {
    int a;
    int b;
 } bah;

// b.h
 struct _bah;
 typedef _bah bah;

 class foo {
   foo(bah * b);
   foo(bah b);
   bah * mBah;
 };

// b.cpp
 #include "b.h"
 #include "a.h"

 foo::foo(bah * b) {
   mBah = b;
 }

 foo::foo(bah b) {
   mBah = &b;
 }
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1  
+1 for pragmatism –  Travis Dec 28 '11 at 3:39
    
@LittleJohn The problem with this solution is that the dummy-name _bah is not considered as a part of the public API. See forward delcare FILE. –  user877329 Aug 9 '13 at 17:42

Because to declare a type, its size needs to be known. You can forward declare a pointer to the type, or typedef a pointer to the type.

If you really want to, you can use the pimpl idiom to keep the includes down. But if you want to use a type, rather than a pointer, the compiler has to know its size.

Edit: j_random_hacker adds an important qualification to this answer, basically that the size needs to be know to use the type, but a forward declaration can be made if we only need to know the type exists, in order to create pointers or references to the type. Since the OP didn't show code, but complained it wouldn't compile, I assumed (probably correctly) that the OP was trying to use the type, not just refer to it.

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21  
Well, forward declarations of class types declare these types without knowledge of their size. Also, in addition to being able to define pointers and references to such incomplete types, functions can be declared (but not defined) which take parameters and/or return a value of such types. –  j_random_hacker Apr 30 '09 at 7:47
1  
Sorry I don't think that is a good assumption. This answer is beside the point. This is very much the case of typedef a forward declaration. –  Cookie Jul 22 '11 at 16:27

In C++ (but not plain C), it's perfectly legal to typedef a type twice, so long as both definitions are completely identical:

// foo.h
struct A{};
typedef A *PA;

// bar.h
struct A;  // forward declare A
typedef A *PA;
void func(PA x);

// baz.cc
#include "bar.h"
#include "foo.h"
// We've now included the definition for PA twice, but it's ok since they're the same
...
A x;
func(&x);
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14  
Maintenance No No. This sort of thing will bite you in the keister sooner or later. –  Mark Storer Dec 8 '11 at 1:18

To "fwd declare a typedef" you need to fwd declare a class or a struct and then you can typedef declared type. Multiple identical typedefs are acceptable by compiler.

long form:

class MyClass;
typedef MyClass myclass_t;
struct my_struct;
typedef my_struct MY_STRUCT;

short form:

typedef class MyClass myclass_t;
typedef struct my_struct MY_STRUCT;
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Using forward declarations instead of a full #includes is possible only when you are not intending on using the type itself (in this file's scope) but a pointer or reference to it.

To use the type itself, the compiler must know its size - hence its full declaration must be seen - hence a full #include is needed.

However, the size of a pointer or reference is known to the compiler, regardless of the size of the pointee, so a forward declaration is sufficient - it declares a type identifier name.

Interestingly, when using pointer or reference to class or struct types, the compiler can handle incomplete types saving you the need to forward declare the pointee types as well:

// header.h

// Look Ma! No forward declarations!
typedef class A* APtr; // class A is an incomplete type - no fwd. decl. anywhere
typedef class A& ARef;

typedef struct B* BPtr; // struct B is an incomplete type - no fwd. decl. anywhere
typedef struct B& BRef;

// Using the name without the class/struct specifier requires fwd. decl. the type itself.    
class C;         // fwd. decl. type
typedef C* CPtr; // no class/struct specifier 
typedef C& CRef; // no class/struct specifier 

struct D;        // fwd. decl. type
typedef D* DPtr; // no class/struct specifier 
typedef D& DRef; // no class/struct specifier 
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