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I have seen some differences in the result of the following code:

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

int main(void)
{
 char* ptr;
 ptr = (char*)malloc(sizeof(char) * 12);
 strcpy(ptr, "Hello World");

 printf("%s\n", ptr);
 printf("FREEING ?\n");

 free(ptr);

 printf("%s\n", ptr);
}

Let me explain:

In the third call to printf depending the OS I get different results, gargabge caracters in Windows, nothing in Linux and in A Unix system "Hello World" is printed.

Is there a way to check the status of the pointer to know when memory has been freed?

I think this mechanism of print can not be trusted all the times.

Thnaks.

Greetings.

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2  
Freeing a pointer does not necessarily change the actual memory that it points to. –  Gabe Mar 17 '11 at 2:22

3 Answers 3

Using a pointer after it has been freed results in undefined behavior.

That means the program may print garbage, print the former contents of the string, erase your hard drive, or make monkeys fly out of your bottom, and still be in compliance with the C standard.

There's no way to look at a pointer and "know when memory has been freed". It's up to you as a programmer to keep track.

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If you call free(), the memory will have been freed when that function returns. That doesn't mean that the memory will be overwritten immediately, but it's nevertheless unsafe to use any pointer on which you've called free().

It's a good idea to always assign nil to a pointer variable once you've freed it. That way, you know that non-nil pointers are safe to use.

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+1 - the memory is freed when you call free(). –  detly Mar 17 '11 at 2:47

Simple ansewr: you can't check if a pointer has been freed already in C. Different behaviors are probably due to different compilers, as using a pointer after freeing it is undefined you can get all sorts of behavior (including a SEGFAULT and program termination).

If you want to check if you use free property and your program is memory leak free, then use a tool like Valgrind.

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