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This question already has an answer here:

I have a small code which allocates some memory on heap and then after its use tries to free it. I am getting this error with memory map.

The Code is ::

void merge(int *arr, int start, int mid, int end)
{
     int i = 0, j = 0, k = 0, tmp1 = 0, siz = 0;
     int *pt = NULL;
     j = start, k = mid+1, tmp1 = start;

     siz = (end - start) + 1;

     if ((pt = malloc(siz * sizeof(int))) == NULL) /* line 32 */
     {
         printf("\n ERROR Aloocating mem \n");
         return;
     }

     while (j <= mid && k <= end)
     {
        if (arr[j] <= arr[k])
        {
          pt[tmp1] = arr[j];
          ++j;
          ++tmp1;
        }
        if (arr[j] > arr[k])
        {
          pt[tmp1] = arr[k]; /* line 48 */
          ++k;
          ++tmp1;
        }

      } 
       while (j <= mid)
       {
          pt[tmp1] = arr[j]; /* line 56 */
          ++tmp1;
          ++j;
       }
        while (k <= end)
        {
           pt[tmp1] = arr[k];
           ++k;
           ++tmp1;
        }

        for (i = 0; i < siz; i++)
        {
           arr[end] = pt[end]; /* line 69 */
           --end;
        }   

        free(pt);   
    }   

The error i am getting is ::

*** glibc detected *** ./m: free(): invalid next size (fast): 0x0940c008 ***
======= Backtrace: =========
/lib/tls/i686/cmov/libc.so.6(+0x6b161)[0x213161]
/lib/tls/i686/cmov/libc.so.6(+0x6c9b8)[0x2149b8]
/lib/tls/i686/cmov/libc.so.6(cfree+0x6d)[0x217a9d]
./m[0x80486d8]
./m[0x8048562]
./m[0x8048526]
./m[0x8048542]
./m[0x804874b]
/lib/tls/i686/cmov/libc.so.6(__libc_start_main+0xe6)[0x1bebd6]
./m[0x8048441]
======= Memory map: ========
001a8000-002fb000 r-xp 00000000 08:01 1535       /lib/tls/i686/cmov/libc-2.11.1.so
002fb000-002fd000 r--p 00153000 08:01 1535       /lib/tls/i686/cmov/libc-2.11.1.so
002fd000-002fe000 rw-p 00155000 08:01 1535       /lib/tls/i686/cmov/libc-2.11.1.so
002fe000-00301000 rw-p 00000000 00:00 0 
00483000-0049e000 r-xp 00000000 08:01 1712996    /lib/ld-2.11.1.so
0049e000-0049f000 r--p 0001a000 08:01 1712996    /lib/ld-2.11.1.so
0049f000-004a0000 rw-p 0001b000 08:01 1712996    /lib/ld-2.11.1.so
007f8000-00815000 r-xp 00000000 08:01 1708381    /lib/libgcc_s.so.1
00815000-00816000 r--p 0001c000 08:01 1708381    /lib/libgcc_s.so.1
00816000-00817000 rw-p 0001d000 08:01 1708381    /lib/libgcc_s.so.1
00b38000-00b39000 r-xp 00000000 00:00 0          [vdso]
08048000-08049000 r-xp 00000000 08:01 1317230    /home/abhi/Desktop/ad/A1/misc/m
08049000-0804a000 r--p 00000000 08:01 1317230    /home/abhi/Desktop/ad/A1/misc/m
0804a000-0804b000 rw-p 00001000 08:01 1317230    /home/abhi/Desktop/ad/A1/misc/m
0940c000-0942d000 rw-p 00000000 00:00 0          [heap]
b7600000-b7621000 rw-p 00000000 00:00 0 
b7621000-b7700000 ---p 00000000 00:00 0 
b777e000-b777f000 rw-p 00000000 00:00 0 
b778c000-b7790000 rw-p 00000000 00:00 0 
bf8b5000-bf8ca000 rw-p 00000000 00:00 0          [stack]
Aborted

I went through the answers of some of the similar questions on SO and learnt that it is a memory error.

So i ran the coded with valgrind and got the following output (Not the complete output)

==4494== 
==4494== Invalid write of size 4
==4494==    at 0x8048650: merge (merge.c:48)
==4494==    by 0x8048561: merge_sort (merge.c:20)
==4494==    by 0x8048525: merge_sort (merge.c:18)
==4494==    by 0x8048541: merge_sort (merge.c:19)
==4494==    by 0x8048766: main (merge.c:89)
==4494==  Address 0x41920ac is 4 bytes after a block of size 8 alloc'd
==4494==    at 0x4023AB8: malloc (vg_replace_malloc.c:207)
==4494==    by 0x80485CB: merge (merge.c:32)
==4494==    by 0x8048561: merge_sort (merge.c:20)
==4494==    by 0x8048525: merge_sort (merge.c:18)
==4494==    by 0x8048541: merge_sort (merge.c:19)
==4494==    by 0x8048766: main (merge.c:89)
==4494== 
==4494== Invalid write of size 4
==4494==    at 0x8048680: merge (merge.c:56)
==4494==    by 0x8048561: merge_sort (merge.c:20)
==4494==    by 0x8048525: merge_sort (merge.c:18)
==4494==    by 0x8048541: merge_sort (merge.c:19)
==4494==    by 0x8048766: main (merge.c:89)
==4494==  Address 0x41920b0 is 8 bytes after a block of size 8 alloc'd
==4494==    at 0x4023AB8: malloc (vg_replace_malloc.c:207)

==4494== Invalid read of size 4
==4494==    at 0x80486D5: merge (merge.c:69)
==4494==    by 0x8048561: merge_sort (merge.c:20)
==4494==    by 0x8048541: merge_sort (merge.c:19)
==4494==    by 0x8048766: main (merge.c:89)
==4494==  Address 0x41920ec is 8 bytes after a block of size 12 alloc'd
==4494==    at 0x4023AB8: malloc (vg_replace_malloc.c:207)
==4494==    by 0x80485CB: merge (merge.c:32)
==4494==    by 0x8048561: merge_sort (merge.c:20)
==4494==    by 0x8048541: merge_sort (merge.c:19)
==4494==    by 0x8048766: main (merge.c:89)

I am not able to rectify the problem the malloc looks fine to me. I am allocating siz * sizeof(int) bytes (int is 4 bytes on my machine) and then using the allocated memory in form if array.

If someone point out the mistake i am doing and the explain the reasons, it will be much appreciated. Thanks

share|improve this question

marked as duplicate by Jonathan Leffler c May 14 '14 at 6:13

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

2  
This is telling you that you're writing outside the bounds of your allocated buffer. You should step through your code, and confirm that all indices are exactly as you expect. – Oliver Charlesworth Feb 20 '13 at 19:25
1  
Use valgrind and compile your code with gcc -Wall -g and learn to use the debugger. – Basile Starynkevitch Feb 20 '13 at 19:30
    
@Bill Please see my edit in code for Line numbers – abhi Feb 20 '13 at 19:31
up vote 5 down vote accepted

To expand on Daniel correctly pointing out that pt[end] is incorrect, assume the following function call:

int values[] = { 0, 1, 2, 3, 4, 5, 6, 7 };
merge(values, 4, 5, 6);

In merge, pt is allocated to be large enough for (6 - 4) + 1 = 3 ints. tmp1 is set to 4. On line 48, you do pt[tmp1] = arr[k], but this is pt[4] = arr[0], and you're writing on memory outside of pt!

share|improve this answer
    
Oh, wow, completely overlooked that line. All I saw was the original initialisation to 0. – Daniel Fischer Feb 20 '13 at 19:38
    
Yep, the double-initialization of tmp1 threw me too, at first. :) – Bill Feb 20 '13 at 19:41
    
@Bill Thanks Bill for pointing out the mistake i did.. – abhi Feb 20 '13 at 19:41

You're using tmp1 as the index, and initializing it to start instead of 0. In detail:

 j = start, k = mid+1, tmp1 = start;

 siz = (end - start) + 1;

 if ((pt = malloc(siz * sizeof(int))) == NULL)

pt goes from 0 to (end-start) + 1, yet you begin accessing it with the index tmp1 = start.

tmp1 should be 0. Concretely, if end is 10, and start is 8, you will allocate 3 bytes... and you do NOT want the tmp1 index to begin at 8 in a 3 element array!

share|improve this answer
    
Thanks wilsonmuchaelpatrick – abhi Feb 20 '13 at 19:43
arr[end] = pt[end];

accesses pt out of bounds unless start == 0. The last valid index for pt is end-start.

Also, in

 while (j <= mid && k <= end)
 {
    if (arr[j] <= arr[k])
    {
      pt[tmp1] = arr[j];
      ++j;
      ++tmp1;
    }
    if (arr[j] > arr[k])
    {
      pt[tmp1] = arr[k];
      ++k;
      ++tmp1;
    }

  }

in the second if, j can be larger than mid - if it was == mid on the start of the iteration - you should better replace the second if with an else.

share|improve this answer
    
Thanks for the answer. I surely missed that. my bad.I will edit the code and check. – abhi Feb 20 '13 at 19:35

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