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This feels like a silly question, but I just can't work out a clean solution and can't find a similar question in the mass of other pointer related questions.

I have some dynamically allocated memory of unknown type and want to store a pointer inside it at the start. Dynamic memory returned by malloc should be suitably aligned so I don't think I have to worry about alignment when writing to the start of the allocated block.

This is my code, which works, but I'm representing a pointer as a 64-bit integer and want to do it in a more clean/portable way:

void *my_area = malloc(512);
void *my_pointer = get_my_pointer();
((long long *) my_area)[0] = (long long) my_pointer;
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Or you can use uintptr_t as well. –  user529758 Nov 7 '12 at 17:20

3 Answers 3

up vote 2 down vote accepted

The cast to long long is just extra baggage. Cast to void * instead.

void *my_area = malloc(512);
void *my_pointer = get_my_pointer();
((void **) my_area)[0] = my_pointer;

(I assume that this is for some kind of freelist or the like, i.e., you don't need to use the structure at the same time.)

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What will be found in my_area[0] is pointer to something, right ?

Then you can allocate my_area to be of type void **, which represent a pointer to a pointer containing memory area.

void **my_area = malloc(512 * sizeof(*my_area)); // alloc 512 pointer sized memory blocks
void *my_pointer = get_my_pointer();
my_area[0] = my_pointer;
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Define a struct with internal array of 8 bytes. Replace all the long long type references with your custom struct. This way you will not depend on platform-specific size of long long. The struct will be 64 bits on all platforms(you can add #pragma pack if you worry about alignment )

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1  
long long is already guaranteed to be at least 64 bits on all platforms, using a struct instead is not going to improve anything. –  Dietrich Epp Nov 7 '12 at 17:29
    
That's true only for C99 and C++11. Besides, being larger than 64bit breaks the portability with the same success. –  icepack Nov 7 '12 at 18:12

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