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I have two classes declared as below:

class User
{
public:
 MyMessageBox dataMsgBox;
};

class MyMessageBox
{
public:
 void sendMessage(Message *msg, User *recvr);
 Message receiveMessage();
 vector<Message> *dataMessageList;
};

When I try to compile it using gcc, it gives the following error: 'MyMessageBox does not name a type'. Please help me in this regard.

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6 Answers 6

up vote 68 down vote accepted

When the compiler compiles the class User and gets to the MyMessageBox line, MyMessageBox has not yet been defined. It has no idea it exists, so cannot understand the meaning of your class member.

You need to make sure MyMessageBox is defined before you use it as a member. This is solved by reversing the definition order. However, you have a cyclic dependency: if you move MyMessageBox above User, then in the definition of MyMessageBox the name User won't be defined!

What you can do is forward declare User; that is, declare it but don't define it. During compilation, a type that is declared but not defined is called an incomplete type. Consider the simpler example:

struct foo; // foo is *declared* to be a struct, but that struct is not yet defined

struct bar
{
    // this is okay, it's just a pointer;
    // we can point to something without knowing how that something is defined
    foo* fp; 

    // likewise, we can form a reference to it
    void some_func(foo& fr);

    // but this would be an error, as before, because it requires a definition
    /* foo fooMember; */
};

struct foo // okay, now define foo!
{
    int fooInt;
    double fooDouble;
};

void bar::some_func(foo& fr)
{
    // now that foo is defined, we can read that reference:
    fr.fooInt = 111605;
    fr.foDouble = 123.456;
}

By forward declaring User, MyMessageBox can still form a pointer or reference to it:

class User; // let the compiler know such a class will be defined

class MyMessageBox
{
public:
    // this is ok, no definitions needed yet for User (or Message)
    void sendMessage(Message *msg, User *recvr); 

    Message receiveMessage();
    vector<Message>* dataMessageList;
};

class User
{
public:
    // also ok, since it's now defined
    MyMessageBox dataMsgBox;
};

You cannot do this the other way around: as mentioned, a class member needs to have a definition. (The reason is that the compiler needs to know how much memory User takes up, and to know that it needs to know the size of its members.) If you were to say:

class MyMessageBox;

class User
{
public:
    // size not available! it's an incomplete type
    MyMessageBox dataMsgBox;
};

It wouldn't work, since it doesn't know the size yet.


On a side note, this function:

 void sendMessage(Message *msg, User *recvr);

Probably shouldn't take either of those by pointer. You can't send a message without a message, nor can you send a message without a user to send it to. And both of those situations are expressible by passing null as an argument to either parameter (null is a perfectly valid pointer value!)

Rather, use a reference (possibly const):

 void sendMessage(const Message& msg, User& recvr);
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+1 Learned something today - I thought forward declaring MyMessageBox would've been enough. What if MyMessageBox had a variable of type User too - would that be a deadlock? –  Amarghosh Jan 25 '10 at 15:38
4  
@Amargosh: Yes, it would be impossible. Logically impossible as well, since User would have a MessageBox which would have a User, which would have a MessageBox which would have a User, which would have a MessageBox which would have a User, which would have a MessageBox which would have a User... –  GManNickG Jan 25 '10 at 15:41
    
Thanks GMan. I have made changes to my code as you suggested and it works fine now. –  Rakesh K Jan 26 '10 at 12:09
    
@Rakesh: No problem. –  GManNickG Jan 26 '10 at 14:48
  1. Forward declare User
  2. Put the declaration of MyMessageBox before User
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C++ compilers process their input once. Each class you use must have been defined first. You use MyMessageBox before you define it. In this case, you can simply swap the two class definitions.

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Swapping won't work as MyMessageBox has User type in it's method declaration. –  Amarghosh Jan 25 '10 at 15:33
    
Don't work because MyMessageBox also uses the User class. –  Alex LE Jan 25 '10 at 15:39
    
Actually, that definition doesn't use class User. Important distinction, because that means class User only needs to be declared at that point, not defined. But see GMan's extensive post. –  MSalters Jan 26 '10 at 8:46
    
Yeah, but simply swapping the definitions won't work as User type is not declared yet. –  Amarghosh Jan 26 '10 at 10:28

You need to define MyMessageBox before User -- because User include object of MyMessageBox by value (and so compiler should know its size).

Also you'll need to forward declare User befor MyMessageBox -- because MyMessageBox include member of User* type.

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On a related note, if you had:

    class User; // let the compiler know such a class will be defined

    class MyMessageBox
    {
    public:
        User* myUser;
    };

    class User
    {
    public:
        // also ok, since it's now defined
        MyMessageBox dataMsgBox;
    };

Then that would also work, because the User is defined in MyMessageBox as a pointer

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You must declare the prototype it before using it:

class User;

class MyMessageBox
{
public:
 void sendMessage(Message *msg, User *recvr);
 Message receiveMessage();
 vector<Message> *dataMessageList;
};

class User
{
public:
 MyMessageBox dataMsgBox;
};

edit: Swapped the types

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1  
No, won't work. Class members must be defined, not forqward declared. –  MSalters Jan 25 '10 at 15:27

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