Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
#include <stdio.h>
#include <stdlib.h>
#include <string.h>

int main ()
{
    int * ptr;
    printf("before malloc pointer is :%p \n",ptr);
    printf("before malloc valu is :%d \n",*ptr);
    ptr = malloc(sizeof(int));
    printf("after malloc pointer is %p \n",ptr);
    printf("after malloc valu is :%d \n",*ptr);
    int jig=32;
    *ptr = jig;
    printf("after assignment valu is : %d\n",*ptr);
    free(ptr);
    printf("after free %p \n",ptr); // after free pointer holds sane address then 
    printf("after fee is %d\n",*ptr); // why it coudnt print that???
    return 0;
}

output is :

 before malloc pointer is :0x6edff4 
 before malloc valu is :7265660 
 after malloc pointer is 0x9a52008 
 after malloc valu is :0 
 after assignment valu is : 32
 after free 0x9a52008 
 after fee is 0

after free still pointer holds the address of that memory then why we can not print that memory's value.??

what does free() do.?

does it just make all memory as 0 ..??

share|improve this question
    
In the printf "before malloc valu", you are dereferencing a NULL pointer. Don't do that. –  Dhaivat Pandya Aug 10 '11 at 7:20
    
after declaration of any pointer doesnt points to NULL...THEN ITS SAFE.. DOESNT IT..?? –  Mr.32 Aug 10 '11 at 7:23
1  
No, its not always safe because that isn't standardized, and plus, you're not supposed to deference it when its NULL either. It leads to seg faults on any decent system. And, please refrain from using caps lock in the future. –  Dhaivat Pandya Aug 10 '11 at 7:24
1  
@Dhaivat I don't see anywhere in this code that sets the pointer to NULL. –  David Heffernan Aug 10 '11 at 7:31
1  
That's what I'm saying, that's its not standardized the pointer should be NULL, and, even if it isn't, he shouldn't be dereferencing something that doesn't have a set location to point to. –  Dhaivat Pandya Aug 10 '11 at 7:57

4 Answers 4

up vote 4 down vote accepted

after free still pointer holds the address of that memory then why we can not print that memory's value.??

Because the memory no longer belongs to you. You freed it, which means the OS is allowed to reuse it however it sees fit, wherever it needs to allocate more memory. You no longer own it, therefore you no longer have any business looking at the value of the data held by that memory.

Note also that:

int *ptr;
...
printf("Before malloc valu is :%d\n", *ptr);

is equally invalid. ptr holds a garbage value, and can point anywhere. Dereferencing it is not guaranteed to be a memory location you can access.

Both of these cases invoke undefined behavior, which means the standard says, "DON'T DO THIS," and if you ignore the standard your code will break in horrible ways whenever your boss is looking.

what does free() do.?

does it just make all memory as 0 ..??

No, not necessarily. The OS often zeroes out unused memory in the background to make calls to calloc faster, but free only tells the operating system "I'm done with this memory, do whatever you need to with it." The OS typically updates some housekeeping data to indicate that the block of memory is no longer owned by a process, so that a later call to malloc can use it if it's needed.

share|improve this answer
    
wow...u have explaned everything...think you –  Mr.32 Aug 10 '11 at 7:49
    
one more thing in any case m i able to access those memory which i have freed.? –  Mr.32 Aug 10 '11 at 7:58
1  
@Mr.32 - No. Accessing memory after you free it is undefined behavior. The compiler is legally allowed to make your code do anything (the usual joke is nasal demons: [catb.org/jargon/html/N/nasal-demons.html]) if you do so. –  Chris Lutz Aug 10 '11 at 8:04

The interesting thing about malloc() and free() is that they don't actually change the memory they give you -- they just change how it's "thought of".

When you call malloc(), a segment of memory is chosen and dedicated to be yours. While it's yours you can use it how you like.

When you're done with it you free() it -- but it's still there. It's still the same memory[1], it's just not considered "yours" anymore. So someone else might be using it.

[1] I supposed with virtual addressing this might not be always true. But it's usually true.

share|improve this answer

free returns the memory to the system. It is the partner operation to malloc. Everything block of memory that you allocate with malloc should be returned to the system by calling free. After you call free you are no longer allowed to access that memory.

It's generally considered wise to set the pointer to NULL after you have called free, at least in debug builds, so that you can be sure that an error will be raised if you later attempt to dereference the pointer by mistake.


So, why can you still access memory that has been freed? Well, you can't reliably do so. It just so happens that the implementation of most memory management systems mean that you can sometimes get away with such abuses. Many memory managers allocate large blocks of memory from the operating systems and then, in turn, allocate small sub-blocks to the application. When you call free, the allocator returns that block back to its pool of readily available memory, but does not necessarily give the memory back to the OS, since OS memory allocation routines are typically expensive. Hence accessing it may still appear to work, because the memory is still allocated in your process. It's just that its now owned by the memory manager rather than by your app. Something like that is happening to you here.

Of course, sometimes you won't get away with abuses like this, most likely once you have deployed your software onto your most important client's machine!

share|improve this answer
    
when we malloc something..where actuly this memory gona reseve.?? in stack ..? in heap..? in Ram..?? –  Mr.32 Aug 10 '11 at 7:20
    
@Mr. 32 That's implementation specific but in most systems malloc allocates heap memory. –  David Heffernan Aug 10 '11 at 7:23
    
Both the stack and heap on the RAM. Malloc should reserve on heap space, so it isn't deleted at the end of the function. –  Dhaivat Pandya Aug 10 '11 at 7:25
1  
Some people advocate using #define free(x) do { free(x); x = NULL; } while(0) to avoid forgetting to set the pointer to NULL when you're done with it. In my experience the pointer frequently falls out of scope right after I free it, so I don't usually bother. –  Chris Lutz Aug 10 '11 at 7:26
    
@David Heffernan i got it all....thnk u... one more thing in any case m i able to access those memory which i have freed.? –  Mr.32 Aug 10 '11 at 7:55

Typically the memory manager will have something like a linked list of free blocks that are used to satisfy subsequent allocations.

Here's a minimal implementation I wrote several years ago. It's not really intended (or suitable) for serious use, but gives at least some general notion of one way to manage a heap:

#include <stddef.h>

typedef struct node {
    size_t size;
    struct node *next;
} node;

node *free_list;

static void *split_end(node *block, size_t new_size) {
    size_t difference = block->size - new_size;

    node *temp = (node *)((char *)block + difference);
    temp->size = new_size;
    block->size = difference;
    return (void *)((size_t *)temp+1);
}

static void *split_begin(node *block, size_t new_size) {
    size_t difference = block->size-new_size;
    node *temp = (node *)((char *)block + new_size);
    temp->size = difference;
    temp->next = free_list;
    free_list = temp;
    return block;
}

void b_init(void *block, size_t block_size) {
    ((node *)block)->size = block_size - sizeof(node);
    ((node *)block)->next = NULL;
    free_list = block;
}

void b_free(void *block) {
    node *b = (node *)((size_t *)block -1);

    b->next = free_list;
    free_list = b;
}

void *b_malloc(size_t size) {
    node *temp, **ptr;
    size_t larger = size+sizeof(node);
    size += sizeof(size_t);

    for ( ptr = &free_list;
        NULL != ptr;
        ptr = &((*ptr)->next)) 
    {
        if ((*ptr)->size >= size) {
            if ( (*ptr)->size <= larger) {
                temp = (*ptr);
                (*ptr) = (*ptr)->next;
                return (void *)((size_t *)temp + 1);
            }
            else
                return split_end(*ptr, size);       
        }
    }
    return NULL;
}

void *b_realloc(void *block, size_t new_size) {
    node *b = (node *)((char *)block - sizeof(size_t));
    char *temp;
    size_t i, size;

    if ( new_size == 0) {
        b_free(block);
        return NULL;
    }

    new_size += sizeof(size_t);

    size = b->size;
    if ( new_size <size)
        size = new_size;

    size -= sizeof(size_t);

    if ( b->size >= new_size+sizeof(node *) )
        return split_begin(b, new_size);

    if ( b->size >= new_size)
        return b;

    temp = b_malloc(new_size);
    if ( NULL == temp)
        return NULL;

    for ( i=0; i<size;i++)
        temp[i] = ((char *)block)[i];
    b_free(block);
    return temp;
}

#ifdef TEST 
#define num 10

int main(void) {

    int i;
    char block[4096];
    char *temp[num];
    char *big;

    b_init(block, sizeof(block));

    big = b_malloc(100);

    for (i=0; i<num; i++)
        temp[i] = b_malloc(10);

    for (i=0; i<num; i++)
        b_free(temp[i]);

    b_realloc(big, 200);
    b_realloc(big, 10);
    b_realloc(big, 0);

    return 0;
}

#endif
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.