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folks i had a question regarding to memory-things in C

please see following code :

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

char *tesaja(char *data)
{
        char *tmp = (char*)malloc(sizeof(char) * strlen(data));
        tmp = data;
        return tmp;
}

int main()
{
//area 1
char *wew = tesaja("budipergikepasar");
printf("nilai wew : %s\n",wew);

//area 2
wew = tesaja("kepasarbudisedangpergi");
printf("nilai wew : %s\n",wew);

return 0;
}

and showing output like following :

nilai wew : budipergikepasar
nilai wew : kepasarbudisedangpergi

and the only question i had is, is the memory in area 1 will automatically deallocated and replacing with the new one ?

thx in advance

share|improve this question
    
Malay language? –  cMinor May 4 '11 at 17:58
    
nah, it indonesian :D –  capede May 4 '11 at 18:02
    
cool my friend. :3 –  cMinor May 4 '11 at 18:02
    
thanks my friend, xoxo –  capede May 4 '11 at 18:09

5 Answers 5

up vote 7 down vote accepted

The line "tmp = data" is not doing what you think it is. In C, strings are copied using strcpy(). C strings are arrays of char elements. That line is setting the variable tmp to the value of the variable data, not copying the char's like you think.

The result is you lose your only reference to the memory allocated by malloc() and cause a memory leak.

share|improve this answer
    
yes i really mean to strcpy(), i just forget to use strcpy() -_-, and if only in these case i used strcpy() to copy value of data to varable of tmp, will area 1 still automatic deallocate and replacing with the new one when it calling function of tesaja() one more time ? –  capede May 4 '11 at 18:06
    
No, C does not automatically deallocate the result of a malloc. You need to explicitly call free(wew); at the end of area 1. –  BMitch May 4 '11 at 18:52

Hold on. Consider replacing:

char *tmp = (char*)malloc(sizeof(char) * strlen(data));
tmp = data;
return tmp;

with:

char *tmp;
tmp = (char*)malloc(sizeof(char) * strlen(data));
if (tmp == NULL) {Do some error handling because you are out of heap memory};
strcpy(tmp,data);
return tmp;

To answer your question, each time you successfully call malloc(), you will be given a pointer that points to a newly identified block of free heap memory.

The way your code is written

char *wew = tesaja("budipergikepasar");
.
.
.
wew = tesaja("kepasarbudisedangpergi");

Yuo will "lose track" of where tesaja("budipergikepasar") is in heap RAM when wew is overwritten by the second call to tesaja. You will then be stuck with a "memory leak" because you no longer have a pointer to the block of RAM containing "budipergikepasar" and you will not be able to call free() with "budipergikepasar"'s location. Consider using your code like this:

if (wew != NULL) {
   free(wew);
   }

wew = tesaja("budipergikepasar");
.
.
.
if (wew != NULL) {
   free(wew);
   }
wew = tesaja("kepasarbudisedangpergi");

Using malloc() and free() this way will help you to make use of available RAM in a more efficient fashion. There are some other ways to handle memory management, but I laid things out this way to highlight the importance of keeping track of what you have allocated with malloc() and then freeing up that space with free() when you are ready.

hope that helps -

Perry

share|improve this answer

Right now, you're allocating space for tmp, but then you are switching the reference to tmp to be that of data. Your code should instead use strcpy, like so, to avoid memory leaks:

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

char *tesaja(char *data)
{
        char *tmp = (char*)malloc(sizeof(char) * strlen(data));
        tmp = strcpy(tmp, data);
        return tmp;
}

int main()
{
   //area 1
   char *wew = tesaja("budipergikepasar");
   printf("nilai wew : %s\n",wew);

   //area 2
   wew = tesaja("kepasarbudisedangpergi");
   printf("nilai wew : %s\n",wew);

   return 0;
}
share|improve this answer
    
aight, if only the situation is your code, will area 1 will automatic deallocate once area 2 tryin to call tesaja() ? –  capede May 4 '11 at 18:16
    
No, it will not. I believe the reference to wew will simply switch from the "budipergikepasar" string to the new "kepasarbudisedangpergi" string. C requires explicit deallocation, even when the object is out of scope. –  John Leehey May 4 '11 at 19:50

This program is completely wrong.

tmp=data just assigns static character sequence declared in main to tmp, and leaks allocated memory.

What do you want to accomplish?

share|improve this answer
    
Harsh, but true. Hard to know which problem to fix first here. –  Perry Horwich May 4 '11 at 18:48

is the memory in area 1 will automatically deallocated

No. You shall call free()

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