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I'm facing a weird problem on some (not all) 64-bit linux, where int value 16 gets truncated to zero.

  • is truncation is because casting int to void* and again back to int (understand that this is not a good practice)

    • 16 becomes hex-10 and
    • though void* is 8 byte on 64-bit OS, it can estimate only LSBs?? is this the cause?? If so why this is not easily reproducible all the time??

    • or this is due to big-endian??

    • Sample source code as below


    int main() {
    int i = 0;
    void *ptr = NULL;
    printf("\nsizeof - void(*) : %d , int : %d", sizeof(void*), sizeof(int));

    for(i = 0; i < 20; i++) {
          ptr = &i;
          printf("\n%d", *((int*)ptr));

    return 0;
share|improve this question
Endianess would only matter when you send a variable over say network or you try to read individual bytes. When you read a variable as a type, it would be read correctly whether big or little endian – fayyazkl Oct 23 '12 at 5:08
Does this truncation occur with your sample program? If so, what is its exact output? – user4815162342 Oct 23 '12 at 5:09
I have tried this code on Linux 64 gcc and it always gives the right output prints 0 - 19 in loop, sizeof poiter is 8 and that of int is 4. I have not seen 16 truncated to 0. I have never heard of this "only estimate the LSB" and doubt any such thing exists – fayyazkl Oct 23 '12 at 5:14
Your printfs for sizeof should be %zu not %d, especially since size_t is 8 bytes on x86-64. – Random832 Oct 23 '12 at 5:19
I read only estimate the LSB here - – Puneri Oct 23 '12 at 5:19

1 Answer 1

To demonstrate the issue described in the document referenced in the OP's comments mod your code like this:

      ptr = &i;
      printf("\n%d", (int)ptr))

To see that the address changed add this line:

      printf("\n%p", &i))

And see the two values printed are different.

All this assumes sizeof(void*) to be greater as sizeof(int).

share|improve this answer
yes, will try this..Thanks, it should have clicked me to check address. Thanks again, will update if this helps to identify the root cause. – Puneri Oct 24 '12 at 16:35
No, do not update the OP. No-one will ever be able to follow nad understand the thread of comments on the OP then. @Puneri – alk Oct 24 '12 at 16:40
The address will not change. For a given run of the function i will be stored at a fixed address that is relative to the stack pointer since it is an auto variable. – Robin Caron Nov 8 '12 at 1:19
Not the address itself changes, but what is printed out. The first call to ´printf()´ omites the most significant 4byte of the address, as it is printed by the second call to ´printf()´. @RobinCaron – alk Nov 9 '12 at 10:36

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