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int i = 42;
int *p1 = &i;
int long *p2 = (long*)p1;

Is this undefined behavior? In C++, I think it is implementation defined behavior for some reason.

I looked in C Standard:

C99 6.3.2.3/7 A pointer to an object or incomplete type may be converted to a pointer to a different object or incomplete type. If the resulting pointer is not correctly aligned 57) for the pointed-to type, the behavior is undefined. Otherwise, when converted back again, the result shall compare equal to the original pointer.

57) In general, the concept "correctly aligned" is transitive: if a pointer to type A is correctly aligned for a pointer to type B, which in turn is correctly aligned for a pointer to type C, then a pointer to type A is correctly aligned for a pointer to type C.

What does the term correctly aligned mean here in practice? How do you know if you're doing it correctly without stepping into Undefined behavior?

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1  
It's Undefined Behavior if you dereference p2. Reason: You violate strict-aliasing. –  Mysticial Dec 4 '12 at 4:45
    
int long *p2??? what is long here? –  Krishnabhadra Dec 4 '12 at 4:48
    
On 32bit arch, sizeof(int) == sizeof(long), so there is no difference. On 64 - you'll have some garbage on other half of long, or could even leave allocated memory regions, so again - there is no point to do that. Other than that, it's correct. –  keltar Dec 4 '12 at 4:51
1  
@Krishnabhadra: int long *p2 is a legitimate but slightly unorthodox way of writing signed long int *p2, long *p2, long int *p2 or long int signed *p2 (these are all equivalent to each other). –  Jonathan Leffler Dec 4 '12 at 5:11
    
ok got it.. thanks –  Krishnabhadra Dec 4 '12 at 5:12

1 Answer 1

up vote 3 down vote accepted

It basically means that if, say, int is aligned to 4 bytes, and int long is aligned to 8 bytes, the behavior is undefined. Say you have something like:

 0x04     0x08    0x0C    0x10
+------+-------+-------+-------+
|      |       |   i   |       |
+------+-------+-------+-------+

In this case, &i == 0x0C (which is valid because int is aligned to 4 bytes). When you cast to int long*, the pointer is converted to an aligned one: p2 == 0x08, because our theoretical system aligns int long to 8 bytes, so you'd be basically reading off an address you don't own if you dereference p1, ergo the undefined behavior.

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So, basically if the sizeof two pointer types is not the same, say sizeof int and sizeof long is not equal then you get undefined behavior, right? –  user963241 Dec 4 '12 at 4:56
    
@user963241 AFAIK, alignment and size aren't always the same. I'd advise against doing this. Why do you need to anyway? –  Luchian Grigore Dec 4 '12 at 4:58
    
Just curious about what causes the undefined behavior when converting between pointer types. Thanks for advice. –  user963241 Dec 4 '12 at 5:02
    
sizeof(int *) == sizeof(long *) — the pointer sizes are the same. But the alignment requirements are not necessarily the same. On RISC chips (not Intel), an N-byte type (N = 1, 2, 4, 8) should be aligned on an N-byte boundary. Intel doesn't enforce that (but there's a performance penalty if you use misaligned pointers). –  Jonathan Leffler Dec 4 '12 at 5:16
    
Accessing the type-punned pointer leads to undefined behaviour. –  Jonathan Leffler Dec 4 '12 at 5:17

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