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More specifically, if I have the following function pointer type:

typedef void (*callback_type) (intptr_t context, void* buffer, size_t count);

can I safely and without "undefined behavior" do:

callback_type func_ptr = (callback_type)write;
intptr_t context = fd;

func_ptr(context, some_buffer, buffer_size);

?

Where write() is the system call (EDIT: has the signature ssize_t write(int fd, const void *buf, size_t count);, thus takes an int as the first argument), and fd is an int file descriptor. I assume the answer would be the same for C and C++, so I am tagging both.

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What you're asking seems to be the opposite of what the title is asking. Edit: Ah, the write system call takes an int. –  Joseph Mansfield Apr 6 '13 at 16:41
    
Well, context is of type intptr_t, and is being passed to write that expects an int. Seems right to me... –  lvella Apr 6 '13 at 16:44
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Huh? At the moment you're passing an intptr_t to a function that expects an intptr_t. So where's the problem? What exaclty is the part that you worry about? The conversion from &write to callback_type, the conversion from fd to intptr_t or something else? –  Christian Rau Apr 6 '13 at 16:44
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@lvella You didn't explain that write takes an int as its first argument. Does the assignment to func_ptr compile correctly? If so, then intptr_t must be int on your machine, no? –  Joseph Mansfield Apr 6 '13 at 16:45
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@sftrabbit: The assignment involves a reinterpret-cast, so it will compile whether or not the conversion is valid. You'll get undefined behaviour if intptr_t is not int. –  Mike Seymour Apr 6 '13 at 16:47

3 Answers 3

up vote 6 down vote accepted

No

That won't be portable because you are passing a parameter that will be a different size in the common LP64 paradigm.

Also, you aren't dereferencing the function pointer with the correct type, and the results of that are undefined.

Now, as you seem to have concluded, the function pointer will work as expected and the only practical problem is going to be: how will write(2) interpret the intptr_t first parameter?

And the actual run-time problem is that, on LP64, you are passing a 64-bit value to a 32-bit parameter. This might misalign the subsequent parameters. On a system with register parameters it would probably work just fine.

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Let's have a look at C standard.

C11 (n1570), § 6.3.2.3 Pointers

A pointer to a function of one type may be converted to a pointer to a function of another type and back again; the result shall compare equal to the original pointer. If a converted pointer is used to call a function whose type is not compatible with the referenced type, the behavior is undefined.

C11 (n1570), § 6.7.6.3 Function declarators (including prototypes)

For two function types to be compatible, both shall specify compatible return types. Moreover, the parameter type lists, if both are present, shall agree in the number of parameters and in use of the ellipsis terminator; corresponding parameters shall have compatible types.

C11 (n1570), § 6.2.7 Compatible type and composite type

Two types have compatible type if their types are the same.

Conclusion:

void (*) (intptr_t context, void* buffer, size_t count);

cannot be converted to:

void (*) (int context, void* buffer, size_t count);
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The problem is not with passing the argument back and forth between functions, since automatic promotion from one integral type to another is done.

The problem is, what if intptr_t is shorter than int, thus not every value of int can be represented by an intptr_t? In such a case, the some of the highest bits in the int will be truncated when converting to intptr_t, so you'll end up write()ing to an invalid file descriptor. Although that should not invoke undefined behavior, it's still erroneous.

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Isn't the whole point of intptr_t is being able to hold both int and pointers? –  lvella Apr 6 '13 at 16:45
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@lvella the whole point is that it is an integer type which is guaranteed to be big enough to hold a pointer. But there is no guaranteed about what kinds of integers it is able to hold. The guarantee is just that the type itself is an integer type –  jalf Apr 6 '13 at 16:47
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@lvella As far as I know, intptr_t is an integral type guaranteed to be able to hold a pointer, and nothing else. Is there anything in the standard that requires that sizeof(T *) <= sizeof(int)? –  user529758 Apr 6 '13 at 16:47
    
@H2CO3 No requirement that I know. –  Joseph Mansfield Apr 6 '13 at 16:49
    
@sftrabbit Thanks. Right, then this is a real problem. –  user529758 Apr 6 '13 at 16:50

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