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I have an array of unsigned integers that need to store pointers to data and functions as well as some data. In the device I am working with, the sizeof pointer is the same as sizeof unsigned int. How can I cast pointer to function into unsigned int? I know that this makes the code not portable, but it is ucontroller specific. I tried this:

stackPtr[4] = reinterpret_cast<unsigned int>(task_ptr);

but it give me an error "invalid type conversion"

Casting it to void pointer and then to int is messy.

stackPtr[4] = reinterpret_cast<unsigned int>(static_cast<void *> (task_ptr));

Is there a clean way of doing it?

Edit - task_ptr is function pointer void task_ptr(void)

Love Barmar's answer, takes my portability shortcoming away. Also array of void pointer actually makes more sense then Unsigned Ints. Thank you Barmar and isaach1000.

EDIT 2: Got it, my compiler is thinking large memory model so it is using 32 bit pointers not 16 bit that I was expecting (small micros with 17K total memory).

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Can't you make the array an array of void pointers? – isaach1000 May 6 '13 at 15:07
How about using a union of function pointers and data pointers? – Barmar May 6 '13 at 15:09
A simple reinterpret_cast should work as long as (a) the integer type is large enough and (b) it's a pointer to a normal (non-member, or static member) function. Is that the case here? What exactly is task_ptr? – Mike Seymour May 6 '13 at 15:20
Wow, Barmar, that would make my code portable! This is a major case of tunnel vision on my part. Thanks a million, your comment is worth 1000+ – user1135541 May 6 '13 at 16:10
void(void) isn't a pointer type, it's a function type. The corresponding pointer type is void(*)(void). – Kerrek SB May 6 '13 at 16:59

3 Answers 3

A C-style cast can fit an octogonal peg into a trapezoidal hole, so I would say that given your extremely specific target hardware and requirements, I would use that cast, possibly wrapped into a template for greater clarity.

Alternately, the double cast to void* and then int does have the advantage of making the code stand out like a sore thumb so your future maintainers know something's going on and can pay special attention.

EDIT for comment: It appears your compiler may have a bug. The following code compiles on g++ 4.5:

#include <iostream>

int f()
    return 0;

int main()
    int value = (int)&f;

    std::cout << value << std::endl;

EDIT2: You may also wish to consider using the intptr_t type instead of int. It's an integral type large enough to hold a pointer.

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The C++ compiler returns an error when I use C style cast: Error[Pe171]: invalid type conversion – user1135541 May 6 '13 at 16:25
+1 for intptr_t – Oktalist May 6 '13 at 18:39
Unfortunately, intptr_t is not specified to allow the reconstitution of converted function pointers the way it is for object pointers, and there is no equivalent for function pointers, either :-(. So, there's no obvious way to ensure that your code will fail to compile on systems where function pointers won't fit in intptr_t. – SamB Sep 23 at 18:03

In C++ a pointer can be converted to a value of an integral type large enough to hold it. The conditionally-supported type std::intptr_t is defined such that you can convert a void* to intptr_t and back to get the original value. If void* has a size equal to or larger than function pointers on your platform then you can do the conversion in the following way.

#include <cstdint>
#include <cassert>

void foo() {}

int main() {
    void (*a)() = &foo;

    std::intptr_t b = reinterpret_cast<std::intptr_t>(a);

    void (*c)() = reinterpret_cast<void(*)()>(b);
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This is ansi compliant:

int MyFunc(void* p)
    return 1;

int main()
   int arr[2];
   int (*foo)(int*);

   arr[0] = (int)(MyFunc);

   foo = (int (*)(int*))(arr[0]);

   arr[1] = (*foo)(NULL);
share|improve this answer
Tried that, but my C++ complains, invalid type conversion. Need a standard C++ way of doing it. – user1135541 May 6 '13 at 16:30
This compile well in C++ too. What exact error you get ? – lsalamon May 6 '13 at 16:47
Last time I checked, void main() was non-standard. – Zyx 2000 May 6 '13 at 17:03
I am using the IAR Embedded Workbench. but I think I know why it is not working, it is thinking of larger memory model then I am using, which makes the pointers 20bit instead of 16. So yes, you are right, its the compiler issue. The MinGW compiler has no problems. – user1135541 May 6 '13 at 17:07

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