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I want to know the size allocated by malloc.
I have written the source code below.

test.c

#include <stdio.h>
#include <stdint.h>
#include <malloc.h>
void main(void)
{
    uint8_t *test;

    test = (uint8_t *)malloc(sizeof(uint8_t)*4);
    printf("sizeof(test) = %d\n",malloc_usable_size(test));

    free(test); 
}  

I expected size to be 4.
But the result is 12.

sizeof(test) = 12

Can you tell me what's wrong?
I hope that size 4 correctly comes out.

6
  • 3
    Read Notes of malloc_usable_size
    – BLUEPIXY
    Jun 16, 2017 at 5:08
  • 2
    No, malloc_usable_size() returns the right size. What is wrong is your expectation of what the right size should be.
    – Mike Nakis
    Jun 16, 2017 at 5:16
  • What's missing so far: malloc_usable_size() is for debugging, not for your main code. Even if the size is actually larger, you're not supposed to use it.
    – user2371524
    Jun 16, 2017 at 6:19
  • Don't think of malloc_usable_size as a way of determining the size of allocation. For multiple reasons - 1) It is not portable. 2) You are supposed to keep track of your allocations yourself. Since you called malloc, you know what size you had passed. If you are having a hard time remembering it, do some book keeping. One way could be to allocate extra space for size_t in the begining of the allocation and put the size there. That actual size that you passed to malloc. Others have made it clear why it returns 12 and not 4. Jun 16, 2017 at 6:35
  • 2
    @user2371524 "Even if the size is actually larger, you're not supposed to use it." I love how the name of the function (malloc_usable_size) literally says that that is the usable size.
    – jg6
    May 15, 2020 at 14:55

1 Answer 1

9
malloc_usable_size(test)

The value returned by above function is not fixed as you requested. it may be greater than the requested size of the allocation depending upon the cpu byte ordering and alignment. this is totally depend upon the underlaying implementation.

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  • CPU alignes requested memory to type size or cache line size, so in your case 8 bytes are added
    – Andre
    Jun 16, 2017 at 6:07
  • 2
    @Andre I think it more likely that the alignment (in this case -- it will vary) is on 16-byte boundaries. The "true" allocation will be 16 bytes; four will be used internally (e.g. pointer to next block) leaving 12 bytes [sort of] usable.
    – TripeHound
    Jun 16, 2017 at 7:04
  • That's true, i suppose all the space needed to administer the variable internally is added. So the size returned varies on based on CPU/OS administration needs and alignment requirements.
    – Andre
    Jun 16, 2017 at 8:09
  • 1
    @Andre The size returned is the number of usable bytes that one can write to "without ill effects", excluding bytes needed to manage the allocation. "The value returned by malloc_usable_size() may be greater than the requested size of the allocation because of alignment and minimum size constraints. Although the excess bytes can be overwritten by the application without ill effects, this is not good programming practice: the number of excess bytes in an allocation depends on the underlying implementation." [link](man7.org/linux/man-pages/man3/malloc_usable_size.3.html) Feb 19, 2018 at 13:25

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