Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This following code works fine:

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

int main()
{
    struct node{
        int a, b, c, d, e;
    };
    struct node *ptr = NULL;
    printf("Size of pointer ptr is %lu bytes\n",sizeof (ptr));
    printf("Size of struct node is %lu bytes\n",sizeof (struct node));
    ptr = (struct node*)malloc(sizeof (ptr));               //Line 1
//    ptr = (struct node*)malloc(sizeof (struct node));    //Line 2

    ptr->a = 1; ptr->b = 2; ptr->c = 3; ptr->d = 4; ptr->e = 5;
    printf("a: %d, b: %d, c: %d, d: %d, e: %d\n",
            ptr->a,ptr->b,ptr->c,ptr->d,ptr->e);
    return 0;
}

When complied as:

gcc -Wall file.c

My question is: why is this fine?

malloc allocates the number of bytes which are specified in it's argument. Here sizeof ptr is 8 bytes on my 64-bit linux machine. I thought malloc will provide 8 bytes but then how is it accessing all the variables a,b,c,d,e? Is it with gcc only or am I missing something with standard C?

As far as I know "Line 2" should be there instead of "Line 1" but either of the line works fine. Why?

share|improve this question
6  
The following may also work fine: int* x = (int*)rand(); *x = 123; that doesn't mean it's a good idea. –  John Ledbetter Jul 31 '12 at 17:11
    
C/C++ in combination with malloc does not check or verify that the size matches the size of the underlying type of the pointer to which the results are assigned - that's up to you. –  Richard Sitze Jul 31 '12 at 17:13
2  
Undefined behavior is undefined. It might crash, it might appear to succeed, or it might erase your hard drive. You can never be sure what will happen the moment you invoke undefined behavior, which includes reading/writing to memory beyond what you've allocated. –  Adam Rosenfield Jul 31 '12 at 17:31
    
I am tempted to say: b/c it's not Java. With C, as long as you stay in the process memory you can write wherever you please (as long as the pages are not read-only) –  bestsss Aug 7 '12 at 16:07

4 Answers 4

up vote 8 down vote accepted

You have undefined behavior here.

malloc will allocate 8 bytes (as you say), but this cast is "bad":

ptr = (struct node*)malloc(sizeof (ptr));

After this line, ptr will point to a memory block, which has only 8 allocated bytes, the rest are some "random" bytes. So, making

ptr->a = 1; ptr->b = 2; ptr->c = 3; ptr->d = 4; ptr->e = 5;

you actually change some memory, not only the allocated by malloc.

In other words, you are rewriting memory, you're not supposed to touch.

share|improve this answer

Line 1 is incorrect and won't allocate sufficient space. If you can access the structure members later it is only because C does nothing to prevent you from accessing memory that doesn't belong to you.

Accessing ptr->b, ptr-c, etc., when you haven't allocated enough space for the entire structure is undefined behavior, and the next time that you run your code it could crash, or you could end up overwriting data in another part of your program.

To demonstrate the problem, allocate a second struct node immediately after the first. This isn't guaranteed to demonstrate the problem, but you're likely to see results similar to the following:

struct node *ptr = NULL;
struct node *ptr2 = NULL;

ptr = (struct node*)malloc(sizeof (ptr));  // Your Line 1
ptr2 = malloc(sizeof(struct node));        // alloc another struct on the heap

ptr->a = 1; ptr->b = 2; ptr->c = 3; ptr->d = 4; ptr->e = 5;
ptr2->a = 11; ptr->b = 12; ptr->c = 13; ptr->d = 14; ptr->e = 15;

printf("ptr:  a: %d, b: %d, c: %d, d: %d, e: %d\n",
        ptr->a, ptr->b, ptr->c, ptr->d, ptr->e);
printf("ptr2: a: %d, b: %d, c: %d, d: %d, e: %d\n",
        ptr2->a, ptr2->b, ptr2->c, ptr2->d, ptr2->e);

Output:

ptr:  a: 1, b: 2, c: 3, d: 4, e: 11
ptr2: a: 11, b: 12, c: 13, d: 14, e: 15

Note that ptr->e has been modified by the assignment to ptr2->a, so you can see that one improperly-allocated structure is stepping on the memory of another. This certainly isn't what you want.

share|improve this answer
    
if line 1 is incorrect then after removing this line would give segmentation fault as there was no memory so we can't access structure members. May be I didn't get u. –  Bharat Kul Ratan Jul 31 '12 at 17:13
2  
not allocating memory for a structure, and allocating insufficient memory are both equally wrong, even though the second may cause a crash more often. Just because Line 1 seems to work doesn't mean that it's correct. Always use line 2. –  pb2q Jul 31 '12 at 17:15

malloc is allocating only 8 bytes, but that doesn't stop you accessing memory beyond that. You will probably corrupt the heap and might write over other objects. The behaviour of the program is undefined.

share|improve this answer

In ptr->a = 1; ptr->b = 2; ptr->c = 3; ptr->d = 4; ptr->e = 5;you are accessing beyond the memory allocated by the malloc.
This is a case of buffer overflow and causes undefined behaviour.

It is possible because

 C and C++ provide no built-in protection against accessing or overwriting data
in any part of memory.

so, it may work sometime, sometime it may crash the program also.

share|improve this answer
    
In Soviet Russia, buffer overflow causes undefined behaviour... –  Kerrek SB Jul 31 '12 at 17:45
1  
@KerrekSB hope it is clear now. –  abhinav8 Jul 31 '12 at 17:58

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.