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I want to add a field to a structure in C. So for example I have the following structure.

struct A
{
 some_type x;
 some_type y;
}

I declare a new structure, like this.

struct B
{
 A a;
 some_type z;
}

Now say I have a function like this.

int some_function( A * a )

Is it possible to pass a variable of type B to it like this in the program.

B * b;
......
A * a = (A*)b;
some_function( a );

And also be able to use the fields inside some_function by using a->x for example?

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1  
Yes, this is valid C. (Just writing this as a comment rather than an answer because whoever answers should elaborate and dig up the references to why it's valid.) –  R.. Jun 3 '12 at 16:48
2  
I would suggest A *a = &(b->a); Otherwise, you're relying on the (fact? coincidence?) that A happens to be the first thing in B. –  paulsm4 Jun 3 '12 at 16:51
    
No, it won't work; there should be a ';' after the '}'. Also in C, a struct A { ...}; is not a typedef. (are you compiling C with a C++ compiler?) –  wildplasser Jun 3 '12 at 16:52
    
Also if you want to similate OOP this can be done nicely with unnamed structures if you are with a C11 compiler and I would suggest making the parameter of some_function() as a void* so that you showcase that it can accept both a type A and a type B struct –  Lefteris Jun 3 '12 at 17:01
    
Lefteris: No I can't make it void*, I have to work on legacy code. –  user1018562 Jun 3 '12 at 17:02

5 Answers 5

up vote 9 down vote accepted

Yes, it is valid. Word of the Standard, C99 6.7.2.1/13:

... A pointer to a structure object, suitably converted, points to its initial member (or if that member is a bit-field, then to the unit in which it resides), and vice versa. There may be unnamed padding within a structure object, but not at its beginning.

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Yes, it would work. A a will be the first member in the struct

This is how some people simulated OO inheritance in C

You may use

  &b->a

instead of the cast. And probably do an ASSERT like

 ASSERT (&b->a == b)

to be warned when you accidentally destroyed this semantic

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Why not just call the method on the member?

some_function( &b->a );

Your code works now, but what if somebody decides to change the members of B? Or add a new member before a?

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Because thats not what I want :). –  user1018562 Jun 3 '12 at 16:54
    
@user1018562 what do you want? –  Luchian Grigore Jun 3 '12 at 16:54
    
@user1018562 don't you want to pass member a of b to the method? –  Luchian Grigore Jun 3 '12 at 16:55
    
I want a functionality equivalent to a derived class of C++. –  user1018562 Jun 3 '12 at 16:56
    
@user1018562 - "What you want" doesn't count :). You should practice "Defensive Programming". In other words, with apologies to Mick Jagger, "If you try real hard, you sometimes get what you need" ;) –  paulsm4 Jun 3 '12 at 16:56

Yes, this would work, but only by accident.

If I recall the C99 standard correctly, this particular case is specifically required to work as you expect. But it's clear that this is only because sufficiently many people relied on it working before that, and it did work by accident in sufficiently many implementations, that the C99 standards committee felt obliged to legislate for it working de jure as well as de facto.

Don't let that tempt you into thinking that this is a good idea.

Anything which relies on standards edge-cases is permanently teetering on the edge of brokenness, because it looks hacky (and so makes your code's future readers uncomfortable) and looks clever (which makes them nervous of changing/fixing anything). Also it leads folk into making assumptions which, because you're already on the edge of what's legitimate, can tempt folk across the border into broken code. For example, the fact that the first element within the first sub-struct within a struct is aligned as you expect, does not imply that any other sub-elements are lined up. That fact that it works for your compiler does not imply that it'll work for anyone else's, leading to mind-bendingly confusing bugs.

Write:

A *a = &(b->a);

(as the comment above suggests) and your meaning is clear.

If for some obscure reason you have to cast B* to A*, then write a very clear comment explaining why you have no option but to do what you have to do, assuring the reader that it is legitimate, and pointing to the subsubsection of the C99 standard which licenses it.

If you really cannot find that subsection (and finding it is your homework/penance), then comment thus and I'll dig it up.

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No it won't work. It would work if you change it a bit:

struct A
{
 some_type x;
 some_type y;
}; /* <- note semicolon here */


struct B
{
 struct A a;
 some_type z;
}; /* ... and here */


int some_function(struct A *a ); /* ... and here ... */


struct B *b;
......
struct A *a = (struct A*)b;
some_function( a );
share|improve this answer
    
Although true, you're kinda missing the point of the question. –  Luchian Grigore Jun 3 '12 at 17:00
    
No, I am not. The question was not in the C language, and I fixed that. I cannot answer questions about non-existent languages. –  wildplasser Jun 3 '12 at 17:02
    
Downvoter: please explain. (have you been exposed to C++ ?) –  wildplasser Jun 3 '12 at 17:06
    
Thanks wildplasser as for myself being new to C, I found the question nonsensical. When you rewrote it according to C syntax, I now understand the question and answers. –  user1863152 May 17 at 20:50

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