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If I have two C structures initialised to have identical members, can I guarantee that:

memcmp(&struct1, &struct2, sizeof(my_struct))

will always return zero?

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4  
I've created an example that shows the padding issue the other answers mention : ideone.com/NdLJG4 . – Michael Anderson May 29 '13 at 14:14
    
Thanks Michael, that's an excellent example. – Sparky May 31 '13 at 9:43
up vote 10 down vote accepted

I don't think you can safely memcmp a structure to test for equality.

From C11 §6.2.6.6 Representations of types

When a value is stored in an object of structure or union type, including in a member object, the bytes of the object representation that correspond to any padding bytes take unspecified values.

This implies that you'd need to write a function which compares individual elements of the structure

int my_struct_equals(my_struct* s1, my_struct* s2)
{
    if (s1->intval == s2->intval &&
        strcmp(s1->strval, s2->strval) == 0 && 
        s1->binlen == s2->binlen &&
        memcmp(s1->binval, s2->binval, s1->binlen) == 0 &&
        ...
        ) {
        return 1;
    }
    return 0;
}
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No, two structures with all members equal may sometimes not compare equal for memcmp(), because of padding.

One plausible example is as follows. For the initialization of st2, a standard-compliant 32-bit compiler could generate a sequence of assembly instructions that leave part of the final padding uninitialized. This piece of padding will contain whatever happened to be there on the stack, whereas st1's padding will typically contain zero:

struct S { short s1; long long i; short s2; } st1 = { 1, 2, 3 };
int main() {
  struct S st2 = { 1, 2, 3 };
  ... at this point memcmp(&st1, &st2, sizeof(struct S)) could plausibly be nonzero
}
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You can make a structure packed so that it won't pad any (uninitialised) bits in it. – Evert May 30 '13 at 10:40

If both variables are global or static, and their members were initialized at init time of the program, then yes, they will compare equal with memcmp(). (Note, most systems just load the data pages into zero initialized pages, but the C standard does not guarantee this behavior.)

Also, if one of the structures were initialized with the other using memcpy(), then they will compare equal with memcmp().

If both were initialized to some common value with memset() first before their members are initialized to the same values, then they will also compare equal with memcmp() (unless their members are also structures, then the same restrictions apply recursively).

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I didn't downvote but I don't think C11 s6.7.9.10 backs this up the first paragraph. It reads as if initialisation of statics/globals is a series of assignments of members to 0 or NULL. If this is correct, s6.2.6.6 suggests that any padding bytes would have undefined value – simonc May 29 '13 at 14:17
1  
@simonc: Thanks, answer updated. – jxh May 29 '13 at 14:30

Beside the obvious case of struct padding, it is not even guaranteed for single variables. See the footnote for 6.2.6.1 (8):

It is possible for objects x and y with the same effective type T to have the same value when they are accessed as objects of type T, but to have different values in other contexts. In particular, if == is defined for type T, then x == y does not imply that memcmp(&x, &y, sizeof (T)) == 0. Furthermore, x == y does not necessarily imply that x and y have the same value; other operations on values of type T may distinguish between them.

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This is a great point. A concrete example of this is floating point types where there are +'ve and -'ve 0 values that compare equal but have different bit patterns. – Michael Anderson May 31 '13 at 11:29
    
Its probably worth noting that floats also provide the opposite case: i.e. take two doubles x=y=1.0/0 they compare as unequal, x!=y, but have memcmp(&x,&y,sizeof(double))==0. – Michael Anderson May 31 '13 at 14:15

You can guarantee that they're identical if you ensure that both entire memory blocks are initialised before they're populated, e.g. with memset:

memset(&struct1, 0, sizeof(my_struct))

EDIT leaving this here because the comment stream is useful.

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2  
that's not backed by language semantics - padding bytes always take unspecified values, which in particular means that compilers are free to overwrite ambient padding when assigning to members; no idea if that happens in practice, though... – Christoph May 29 '13 at 14:24
    
@Christoph: Are you sure about that? If so, I don't even want to think about how many protocol stacks will just suddenly break on such a system. – jxh May 29 '13 at 14:34
1  
@user315052: When a value is stored in an object of structure or union type, including in a member object, the bytes of the object representation that correspond to any padding bytes take unspecified values (C11 6.2.6.1 §6) – Christoph May 29 '13 at 14:40
1  
@Christoph: I read the footnote, though, and the intent of that phrase was to allow structure assignment to be implemented with memcpy(). – jxh May 29 '13 at 14:42
2  
note that after having re-read the relevant parts of the standard, my claim that the value of padding bytes is always unspecified appears to be incorrect - it only gets invalidated by storage into the structure (assignment to the structure or its members) - if you do all your modifying manipulations byte-wise (cast to char*, memcpy(), ...), padding bytes should retain their values – Christoph May 29 '13 at 16:27

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