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Assume that I have an array of strings, some of which are already free'd, as an example:

char **array;
array = malloc(20*sizeof(char*));

for(i=0;i<arr_size;i++)
{
    array[i]='\0';
    free(array[i]);
}
free(array);

Is this a correct way to do it? Because I still seem to get some memory leaks, in my case an array of 20 strings where 9 are already freed.

I guess the question is how to go about freeing "freed" strings. Thanks for the help!

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Does this compile? What is the declaration of array? –  Ed Heal Mar 12 at 18:04
    
char ** array; array =malloc(20*sizeof(char*)); –  Pavoo Mar 12 at 18:05
    
So why the single quotes? –  Ed Heal Mar 12 at 18:07

4 Answers 4

up vote 2 down vote accepted

I guess the question is how to go about freeing "freed" strings.

Well, you don't. You must free every malloc'ed string exactly once. Calling free several times on the same string will lead to undefined behaviour.

That aside, your problem is the following:

array[i]='\0';

Here, you are overwriting the value of the pointer before you free it.

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Also, array[i] has not been malloced. Only array has been malloced. Freeing it will probably cause a crash. –  cup Mar 12 at 18:11
1  
... And it is being assigned a character not a string –  Ed Heal Mar 12 at 18:14

By convention, you should always set a pointer to NULL after free-ing. Then you should check to see if the pointer is NULL, if not, then you can free. That way you can keep track of which ones have been free-ed and which ones haven't.

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2  
You don't even have to check for NULL when freeing, free(NULL) is harmless. –  sth Mar 12 at 18:10
    
Really? That's new to me. –  Tobi Lehman Mar 12 at 18:53
    
See for example this standard draft, in 7.22.3.3/2: "If ptr is a null pointer, no action occurs." –  sth Mar 12 at 19:23

1 malloc() allocation requires just 1 free() to deallocate memory. So free(array); is sufficient to deallocate the memory.

free() deallocating memory is counter to allocated memory dynamically using malloc().

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Nope. free(array) does not 'deallocate memory', it only frees the array of pointers, but it doesn't free the strings which are pointed to by the array's items. –  CiaPan Mar 12 at 19:40

Using free(array[i]); will cause problems / strange errors as you are trying to free a pointer whose value (pointer) you have changed on the previous line.

The code array[i]='\0';

may not have the desired results as it is setting the pointer value not the character contents. Perhaps sprintf(array[i],"\0"); would be better

char **array=NULL;  //(Helps you to give it an initial value pointing to NULL)

array = malloc(arr_size+1);  

if (!array[i])
{
// array == NULL which is not right after malloc
// there has been an error with malloc, trap and exit somehow
}
else
{
// Use array as you wish as it has been allocated, take care not to 
// run past the end of the array length
}

if (array[i]) free(array[i]);   // checks that it is not NULL anymore, as NULL does not need freeing.

You could expand the IF statement to: (means that same as above, but includes forcing a freed variable to NULL)

if (array[i]!=NULL) 
{
 free(array[i]);   
 array[i] = NULL;
}
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