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This question is a continuation of Malloc call crashing, but works elsewhere

I tried the following program and I found it working (i.e. not crashing - and this was mentioned in the above mentioned link too). I May be lucky to have it working but I'm looking for a reasonable explanation from the SO experts on why this is working?!

Here are some basic understanding on allocation of memory using malloc() w.r.t structures and pointers

  • malloc(sizeof(struct a) * n) allocates n number of type struct a elements. And, this memory location can be stored and accessed using a pointer-to-type-"struct a". Basically a struct a *.
  • malloc(sizeof(struct a *) * n) allocates n number of type struct a * elements. Each element can then point to elements of type struct a. Basically malloc(sizeof(struct a *) * n) allocates an array(n-elements)-of-pointers-to-type-"struct a". And, the allocated memory location can be stored and accessed using a pointer-to-(pointer-to-"struct a"). Basically a struct a **.

So when we create an array(n-elements)-of-pointers-to-type-"struct a", is it

  1. valid to assign that to struct a * instead of struct a ** ?
  2. valid to access/de-reference the allocated array(n-elements)-of-pointers-to-type-"struct a" using pointer-to-"struct a" ?

data * array = NULL;

if ((array = (data *)malloc(sizeof(data *) * n)) == NULL) {
    printf("unable to allocate memory \n");
    return -1; 
}   

The code snippet is as follows:

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

int main(void) 
{
    typedef struct { 
        int value1;
        int value2;
    }data;

    int n = 1000;
    int i;
    int val=0;

    data * array = NULL;

    if ((array = (data *)malloc(sizeof(data *) * n)) == NULL) {
        printf("unable to allocate memory \n");
        return -1; 
    }   
    printf("allocation successful\n");

    for (i=0 ; i<n ; i++) {
        array[i].value1 = val++;
        array[i].value2 = val++;
    }   

    for (i=0 ; i<n ; i++) {
        printf("%3d %3d %3d\n", i, array[i].value1, array[i].value2);
    } 

    free(array);
    printf("freeing successful\n");

    return 0;
}

EDIT: OK say if I do the following by mistake

data * array = NULL;
if ((array = (data *)malloc(sizeof(data *) * n)) == NULL) {

Is there a way to capture (during compile-time using any GCC flags) these kind of unintended programming typo's which could work at times and might blow out anytime! I compiled this using -Wall and found no warnings!

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1  
Your question title doesn't seem to match the actual questions in the rest of your text above... –  Oli Charlesworth Jan 6 '12 at 18:06
    
Also, why would you want to assign the result of malloc to the wrong thing and then dereference it? I don't understand the premise of the questions. –  Oli Charlesworth Jan 6 '12 at 18:07
    
@OliCharlesworth I do it by mistake and not intentionally! so Isn't the program suppose to crash when I do that?! –  Sangeeth Saravanaraj Jan 6 '12 at 18:08
    
Regarding the edit: don't write array = malloc(sizeof(data) * n). Instead, write array = malloc(sizeof(*array) * n);. It doesn't help the compiler any, but it helps you allocate the right type because you don't have to name the type, you just have to remember to put a * before the name of the pointer you're assigning to. I don't think there's anything in GCC to enforce this, but if you look around you might find a lint-style tool that would enforce style rules around the use of malloc. –  Steve Jessop Jan 6 '12 at 18:39
    
@SangeethSaravanaraj your code is not correct it's working because the val variable is to small if it was bigger it will fail –  obounaim Jan 6 '12 at 18:40

4 Answers 4

up vote 2 down vote accepted

There seems to be a fundamental misunderstanding.

malloc(sizeof(struct a) * n) allocates n number of type struct a elements.

No, that's just what one usually does use it as after such a call. malloc(size) allocates a memory region of size bytes. What you do with that region is entirely up to you. The only thing that matters is that you don't overstep the limits of the allocated memory. Assuming 4 byte float and int and 8 byte double, after a successful malloc(100*sizeof(float));, you can use the first 120 of the 400 bytes as an array of 15 doubles, the next 120 as an array of 30 floats, then place an array of 20 chars right behind that and fill up the remaining 140 bytes with 35 ints if you wish. That's perfectly harmless defined behaviour.

malloc returns a void*, which can be implicitly cast to a pointer of any type, so

some_type **array = malloc(100 * sizeof(data *)); // intentionally unrelated types

is perfectly fine, it might just not be the amount of memory you wanted. In this case it very likely is, because pointers tend to have the same size regardless of what they're pointing to.

More likely to give you the wrong amount of memory is

data *array = malloc(n * sizeof(data*));

as you had it. If you use the allocated piece of memory as an array of n elements of type data, there are three possibilities

  1. sizeof(data) < sizeof(data*). Then your only problem is that you're wasting some space.
  2. sizeof(data) == sizeof(data*). Everything's fine, no space wasted, as if you had no typo at all.
  3. sizeof(data) > sizeof(data*). Then you'll access memory you shouldn't have accessed when touching later array elements, which is undefined behaviour. Depending on various things, that could consistently work as if your code was correct, immediately crash with a segfault or anything in between (technically it could behave in a manner that cannot meaningfully be placed between those two, but that would be unusual).

If you intentionally do that, knowing point 1. or 2. applies, it's bad practice, but not an error. If you do it unintentionally, it is an error regardless of which point applies, harmless but hard to find while 1. or 2. applies, harmful but normally easier to detect in case of 3.

In your examples. data was 4 resp. 8 bytes (probably), which on a 64-bit system puts them into 1. resp. 2. with high probability, on a 32-bit system into 2 resp. 3.

The recommended way to avoid such errors is to

type *pointer = malloc(num_elems * sizeof(*pointer));
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Thanks for a detailed explanation. +1 and right answer! :) –  Sangeeth Saravanaraj Jan 7 '12 at 3:37

is it valid to assign that to struct a * instead of struct a ** ?

Well, technically speaking, it is valid to assign like that, but it is wrong (UB) to dereference such pointer. You don't want to do this.

valid to access/de-reference the allocated array(n-elements)-of-pointers-to-type-"struct a" using pointer-to-"struct a" ?

No, undefined behavior.

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1  
It is certainly safe to cast (or directly assign) the result of a call to malloc() to the "wrong" pointer type. malloc() has no concept of types, it just allocates sequences of bytes. Undefined behavior only results from writing past the end of the sequence of bytes that you asked malloc() to give you. –  James McNellis Jan 6 '12 at 18:13

This array = (data *)malloc(sizeof(data *) * n) allocates a sizeof(data*) (pointer) to struct data, if you want to do that, you need a your array to be a data** array.

In your case you want your pointer to point to sizeof(data), a structure in memory, not to another pointer. That would require a data** (pointer to pointer).

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No.

sizeof(struct a*) is the size of a pointer.
sizeof(struct a) is the size of the entire struct.

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Thanks for your answer. But could you please elaborate on why the above code snippet is working! ..Isn't that suppose to crash? –  Sangeeth Saravanaraj Jan 6 '12 at 18:07
2  
@SangeethSaravanaraj: Undefined Behavior does not mean the program will always crash,it just means the program is ill formed and you cannot define the behavior of it. –  Alok Save Jan 6 '12 at 18:09
1  
@SangeethSaravanaraj: Undefined behavior is what's supposed to happen. –  Drew Dormann Jan 6 '12 at 18:09

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