14

If I have a struct:

struct Rec
{
    uint16_t vals[500];
};


Rec * prec = malloc(sizeof(Rec));
//Rec * prec = (Rec *) malloc(sizeof(Rec)); This code was my original and is incorrect.
//                                          See Below for details.

// initialize everything in vals

Will this code suffice to free all memory used?

free(prec);

Or do I have to free the array separately?

3
  • prec currently doesn't point to anything. You're missing the most important part of your code: how you allocate an object of type struct Rec. Show us that.
    – sarnold
    Nov 20 '11 at 6:19
  • @sarnold Rec * prec = (Rec *) malloc(sizeof(Rec)); From what I have gathered below, a free is necessary on prec, as it was malloc'ed, but not on vals.
    – providence
    Nov 20 '11 at 6:22
  • 4
    See also: meta.stackexchange.com/questions/10647/… Nov 20 '11 at 7:22
11

This will suffice.
You did not allocate the array separately, so just freeing the allocated pointer shall suffice.

Follow the Rule:
You should only call free on address returned to you by malloc, anything else will result in Undefined Behavior.

References:
c99 Standard: 7.20.3.2 The free function

Synopsis
#include
void free(void *ptr);

Description:
The free function causes the space pointed to by ptr to be deallocated, that is, made available for further allocation. If ptr is a null pointer, no action occurs. Otherwise, if the argument does not match a pointer earlier returned by the calloc, malloc,or realloc function, or if the space has been deallocated by a call to free or realloc, the behavior is undefined.

Returns
The free function returns no value.

5

In their earlier answers, tekknolagi and Als are both correct. If you try executing this code snippet, it might help illuminate what is happening.

// cc -o test test.c
#include <stdio.h>
#include <stdlib.h>
#include <stdint.h>

struct rec {
    uint16_t vals[500];
};

int main (int argc, char const *argv[])
{
    printf("struct rec is %ld bytes.\n", sizeof(struct rec));

    struct rec* rec_p = (struct rec*)malloc(sizeof(struct rec));
    free(rec_p);
}

When you execute this code, you will see:

struct rec is 1000 bytes.

You called malloc only once. That call allocated all the space described by your structure definition. The matching free likewise frees up all of this memory.

4

You only use free when you use malloc (or a NULL pointer)

Meaning, it will automatically be freed on exit.


If you have malloced for that, then it will suffice.

4
Rec * prec = (Rec *) malloc(sizeof(Rec));

Thanks for including the allocation in the comments (I edited it into the question, hope I got it right).

To free memory allocated with malloc(3), you do use free(3), as you've surmised.

But note that you do not need to use the (Rec *) case with malloc(3) if you #include <stdlib.h>. The function prototype provided in the header lets the compiler figure out the casts for you. Include the header and remove the cast.

2
  • 2
    And in fact casting the result of malloc() can hide errors in some cases. Nov 20 '11 at 6:39
  • 1
    I didn't know that re. stdlib. Thanks for the tip and for clarifying my question
    – providence
    Nov 20 '11 at 6:41

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