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How do i initialize a variable of structure B or C?

typedef struct _A
{
  union
  {
    struct
    {
      int b;
    } B;
    struct
    {
      int c;
    } C;
  } u;
} A;

Something like A.u.B *bVar; doesn't work

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3 Answers 3

up vote 1 down vote accepted

You should declare your structure aside.

typedef struct {
    int b;
} B;
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you mean declare B and C separately and include them inside the union in A as typedef struct _A { union { struct B b; struct C c;} u; } A; –  Nitrate Apr 26 '12 at 15:19
    
Yeah. Then you can use this type. –  md5 Apr 26 '12 at 15:20
    
@Nitrate but beware that if you declare a standalone B it will not automatically be part of an enclosing A. –  Alnitak Apr 26 '12 at 15:21
1  
@Alnitak yes i understand that –  Nitrate Apr 26 '12 at 15:24
    
@Nitrate if you've already typedef B and C then your A is just typedef struct { union { B b; C c; } u; } A; - there's no need to use struct to refer to B and C any more. –  Alnitak Apr 26 '12 at 15:30

The typedef only covers A, not the union or structures defined therein.

typedef can't be nested like that - each user-defined "type" must have a single label, so a declaration of a variable of type A.u.B is illegal.

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This should do it:

/* Initialise to zero */
A a = {{{0},{0}}};
/* Now set the b to 5 */
a.u.B.b = 5;

If you watch the curly brackets carefully, you will see that they exactly match the brackets in the type declaration. So the first brace begins A, the second begins A.u, the third begins A.u.B, and the first 0 corresponds to A.u.B.b. The close brace finishes A.u.B, then the comma means the next opening brace begins A.u.C, so the second zero initialises A.u.C.c, then all the braces close again.

Note anonymous structs may not be supported by all compilers. I cannot remember whether they are allowed by the standard or not...

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So i can't initialize as A.u.B b = 5 ?? –  Nitrate Apr 26 '12 at 15:14
    
@Nitrate no, because (per my answer) there's no such type as A.u.B. You have to declare a variable of type A and then set its contents. –  Alnitak Apr 26 '12 at 15:16
    
@Alnitak is correct, it is not really 'A.u.B' I have just used that notation to explain how the braces work to initialise. –  Ben Apr 26 '12 at 15:23

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