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Another C question:

let's say I have a struct that has a pointer member of char* type.

When I want to initialize an instance of the struct I call malloc:

MyStruct* ptr = (MyStruct*)malloc(sizeof(MyStruct)

And then allocate 256 bytes of memory for the char* member:

ptr->mem = (char*)malloc(sizeof(char)*256);

what happens to the pointer member and the memory it points to when I call free(ptr);? when I check the program with valgrind I see that I have a memory leak, but when I explicitly call free(ptr->member); I still have a memory leak and valgrind shows an "Invalid free" error

What's the proper way the manage the memory pointed by the member?

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1  
You shouldn't cast the return value from malloc in C. –  Oliver Charlesworth Apr 9 '12 at 21:07
    
What's wrong with memcpy? –  user195488 Apr 9 '12 at 21:08
    
@Oli Charlesworth: Why not?? –  stefan bachert Apr 9 '12 at 21:10
1  
@stefanbachert: See stackoverflow.com/a/605858/129570. –  Oliver Charlesworth Apr 9 '12 at 21:10
    
@stefanbachert: it is a point of contention. It isn't strictly necessary, and if you aren't compiling with options to warn you about missing function declarations, could lead to errors because the compiler assumed malloc() returns int and it doesn't. OTOH, in C++, the cast is necessary. I often put the cast in; I understand why people leave it out, and don't get het up about it either way. –  Jonathan Leffler Apr 9 '12 at 21:12

3 Answers 3

You have to free ptr->member first, then the struct

free(ptr->member);
free(ptr);
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As soon as you call free(ptr), none of the members in ptr are valid any more. You can't do anything with them. But the memory that was pointed to be ptr->mem still needs to be freed. So you must either free(ptr->mem) first, or have otherwise copied that pointer somewhere so have a valid pointer to free.

The general pattern of allocating and freeing compound structures is something like (and it is helpful to wrap them up in nice clean functions that do this):

MyStruct* MakeMyStruct() {
    MyStruct* ptr = malloc(sizeof(MyStruct)); //N.B. don't need cast if it's C
    ptr->mem = malloc(sizeof(char)*256);
    //initialise other members
    return ptr;
}

void DestroyMyStruct(MyStruct *ptr) {
    //Free members first, then the struct
    free(ptr->mem);
    free(ptr);
}

If some of the members are complicated structs themselves, they would in turn be allocated/freed with MakeWhatever and DestroyWhatever instead of malloc and free in the above two functions.

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+1 for nice clean functions. It could be argued that adding ptr->mem = NULL; to DestroyMyStruct would help catch bugs elsewhere. –  Oliver Charlesworth Apr 9 '12 at 21:19
    
+1. Abstraction is your friend. –  John Bode Apr 9 '12 at 22:58
    
That's what I implemented, but I get a double free error for some reason.. The valgrind output shows that the double free is from the method that destroys the struct.. –  mat Apr 10 '12 at 11:54
    
Could be that ptr->mem equals ptr somehow. Do you want to update the question with your new code? –  Edmund Apr 10 '12 at 12:50

The rule of thumb is that you need one free for every (successful) call to malloc (and generally, these occur in the reverse order).

If you only free(ptr), then you have a memory leak (because there's no way to access the memory allocated for ptr->mem). If you only free(ptr->mem), then you haven't cleared up completely (not quite as bad as a memory leak).

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