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#include <stdio.h>
int main ()

{

   int *p = (int *)malloc((100*sizeof(int)));

   p++;

   free(p);

/* do something */

return 0;

}

Questions:

  1. Will the memory starting from the location p+1 be free(say if malloc returned 0x1000, the memory freed will be from 0x1004,assuming a 4 byte integer)?

  2. Are there anypitfalls of this code apart from the fact that the 4 bytes from 0x1000(if malloc returned 0x1000) are not useable (unless you do a p-- and use the address)

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I fixed your formatting. Please read the editing help to see how to format code properly. –  Karl Knechtel Dec 8 '10 at 12:03
1  
For some hints not directly concerned with your question, but with your code: (1) in C, don't cast the return from malloc this may hide the bug of not including "stdlib.h", such as in your example. Your code may then fail when you go from a 32 bit machine to 64 bit. (2) don't "reinvent" a signature for main. In C int main() and int main(void) are not the same. –  Jens Gustedt Dec 8 '10 at 12:45

5 Answers 5

That's undefined behavior - you must pass exactly the same pointer to free() as you obtained from malloc(). With your code anything can happen - likely heap will be corrupted.

Think of it this way. free() has only one parameter, so it must deduce what to mark free from exactly that one parameter. There's no way to "free less memory" - either it will free all (deduction required for that will be very time-consuming btw), or something bad happens - the latter is more likely. You shouldn't assume anything, just don't do that.

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The free() call will fail, because p is no longer the address of a block allocated with malloc().

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Not necessarily it will fail. It might covertly corrupt heap and you won't notice until much later. –  sharptooth Dec 8 '10 at 12:06
    
it is undefined behaviour as 'sharptooth' suggested above. free() will not fail. –  steve Dec 8 '10 at 12:07
    
@steve: Maybe it will fail. –  sharptooth Dec 8 '10 at 12:07
    
Yes, it may not return an error value, but silently screw things up. It's undefined behavior. –  ChrisJ Dec 8 '10 at 12:08

This code just won't work - you can only free pointers that were allocated by malloc or similar function, you can't free part of the allocated memory range.

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Hey I tried this code over gcc and it stopped with:

*** glibc detected *** ./a.out: free(): invalid pointer: 0x0829600c ***
======= Backtrace: =========
/lib/tls/i686/cmov/libc.so.6(+0x6b591)[0x7be591]
/lib/tls/i686/cmov/libc.so.6(+0x6cde8)[0x7bfde8]
/lib/tls/i686/cmov/libc.so.6(cfree+0x6d)[0x7c2ecd]

So as per your first answer you can't free the next memory location. and for the second question: and the four bytes won't be usable unless you do p-- and this code will work fine unless you change the contents of next memory location and you can use the allocated memory location by doing p--

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"This particular C++ implementation" doesn't necessarily mean "this is the correct answer." It's the correct answer for that implementation, but not for the language, "C++". –  Billy ONeal Dec 8 '10 at 13:25

in standardese this behavior is "undefined", but actually, nothing will get freed. the reason is that what malloc does it keep a list of the chunks it had allocated, each chunk is identified by its starting address. p+1 is not on that list, so free will find a chunk to free, and will do nothing.

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