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I came across the following C puzzle:

Q: Why does the following program segfault on IA-64, but work fine on IA-32?

  int main()
  {
      int* p;
      p = (int*)malloc(sizeof(int));
      *p = 10;
      return 0;
  }

I know that the size of int on a 64 bit machine may not be the same as the size of a pointer (int could be 32 bits and pointer could be 64 bits). But I am not sure how this relates to the above program. Any ideas?

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26  
Is it something silly like stdlib.h not being included? –  user786653 Sep 25 '11 at 12:07
2  
This code runs fine on my 64 bit machine. It even compiles without warnings if you #include stdlib.h (for malloc) –  misha Sep 25 '11 at 12:08
1  
D'oh! @user786653 nailed the important bit. With #include <stdlib.h>, it's perfectly find, but that's not in the question. –  delnan Sep 25 '11 at 12:08
4  
@delnan - it doesn't have to work like that though, it could legitimately fail on a platform where sizeof(int) == sizeof(int*), if for example pointers got returned though a different register to ints in the calling convention used. –  Flexo Sep 25 '11 at 13:29
3  
In a C99 environment, the compiler should be giving you at least a warning about the implicit declaration of malloc(). GCC says: warning: incompatible implicit declaration of built-in function 'malloc' too. –  Jonathan Leffler Sep 25 '11 at 20:34

3 Answers 3

up vote 74 down vote accepted

The cast to int* masks the fact that without the proper #include the return type of malloc is assumed to be int. IA-64 happens to have sizeof(int) < sizeof(int*) which makes this problem obvious.

The comp.lang.c FAQ has an entry discussing why casting the return from malloc is never needed and potentially bad.

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1  
Note that the cast isn't needed in C, but it is needed in C++. Anyway, this question was about C so +1. –  user142019 Sep 25 '11 at 12:15
3  
without the proper #include, why is the return type of malloc assumed to be an int? –  user7 Sep 25 '11 at 12:15
8  
@WTP - which is a good reason to always use new in C++ and always compile C with a C compiler and not a C++ compiler. –  Flexo Sep 25 '11 at 12:16
3  
@user7 - that's the rules. Any return type is assumed to be int if it's not known –  Flexo Sep 25 '11 at 12:17
9  
@user7: "we have a pointer p (of size 64) which is pointing to 32 bits of memory" - wrong. The address of the block allocated by malloc was returned according to the calling convention for a void*. But the calling code thinks the function returns int (since you opted not to tell it otherwise), so it tries to read the return value according to the calling convention for an int. Hence p does not necessarily point to the allocated memory. It just so happened to work for IA32 because an int and a void* are the same size, and returned in the same way. On IA64 you get the wrong value. –  Steve Jessop Sep 25 '11 at 12:41

Most likely because you're not including the header file for malloc and, while the compiler would normally warn you of this, the fact that you're explicitly casting the return value means you're telling it you know what you're doing.

That means the compiler expects an int to be returned from malloc which it then casts to a pointer. If they're different sizes, that's going to cause you grief.

This is why you never cast the malloc return in C. The void* that it returns will be implicitly converted to a pointer of the correct type (unless you haven't included the header in which case it probably would have warned you of the potentially unsafe int-to-pointer conversion).

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sorry for sounding naive, but I always assumed that malloc returns a void pointer which can be cast to an appropriate type. I am not a C programmer and hence would appreciate a little more detail. –  user7 Sep 25 '11 at 12:19
4  
@user7: without the #include <stdlib.h> the C compiler assumes the return value of malloc is an int. –  sashang Sep 25 '11 at 12:31
3  
@user7: The void pointer can be cast, but it's not needed in C as void * can be converted to any other pointer type implicitly. int *p = malloc(sizeof(int)) works if the proper prototype is in scope and fails if it isn't (because then the result is assumed to be int). With the cast, both would compile and the latter would result in errors when sizeof(int) != sizeof(void *). –  delnan Sep 25 '11 at 12:31
2  
@user7 But if you not include stdlib.h, the compiler doesn't know malloc and neither its return type. So it just assumes int as default. –  Christian Rau Sep 25 '11 at 12:38

This is why you never compile without warnings about missing prototypes.

This is why you never cast the malloc return in C.

The cast is needed for C++ compatibility. There is little reason (read: no reason here) to omit it.

C++ compatibility is not always needed, and in a few cases not possible at all, but in most cases it is very easily achieved.

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14  
Why on earth would I care if my C code is "compatible" with C++? I don't care if it's compatible with perl or java or Eiffel or ... –  Stephen Canon Sep 25 '11 at 18:05
3  
If you guarantee somebody down the line isn't going to look at your C code and go, hey I'm going to compile it with a C++ compiler because that should work! –  Steven Lu Sep 25 '11 at 18:32
2  
That's cause most C code can be trivially made C++ compatible. –  curiousguy Sep 26 '11 at 21:22
    
this is so wrong... –  user529758 Nov 23 '13 at 7:42

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