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I'm fighting with memory managment right now. It's verry funny for me :)

Here is simple app which I wrote. I can allocate memory in two ways.

int main (int argc,  const char * argv[])
{
    int *x;
    int *z;

    x = malloc(sizeof(int));
    z = (int *)sizeof(int);

    free(x);
    free(z);
}

Is there any difference between the ways of memory allocating used in the code above ?

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Err where is y? –  another.anon.coward Oct 5 '11 at 14:12
    
Where is you y defined? You played with z just before –  Geoffroy Oct 5 '11 at 14:13
3  
Probably a typo or brainfart. –  tekknolagi Oct 5 '11 at 14:13
3  
Casting sizeof(int) to int* doesn't allocate anything, and makes no sense. –  Wyzard Oct 5 '11 at 14:14
1  
Just out of curiosity, why did you think that z = (int *) sizeof(int) would allocate any memory? –  John Bode Oct 5 '11 at 14:49

6 Answers 6

up vote 10 down vote accepted

The second line doesn't allocate any memory, it's the equivalent of

z=(int *)4;

ie, z will point to the (unallocated and most likely non-existant) (virtual) memory at address 4. If you do something like:

*z=0;

your program will crash to an access violation.

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The program won't crash because it won't even compile! ;-) –  David Heffernan Oct 5 '11 at 14:18
    
@David, you get my point though :) –  Blindy Oct 5 '11 at 14:19

Is there any difference between the ways of memory allocating used in the code above?

The first one allocates memory. The second one does not.

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Yes. z = (int *)sizeof(int); isn't actually allocating memory. I believe the behavior is technically undefined, but since you are basically assigning z to some unknown portion of the heap. The corresponding call to free(z) could cause major issues if this is used in production code.

Of course, you do not have a corresponding call to free(z). You are freeing y. Since I don't know what y is, then I can't tell you what that will do.

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You actually want to cast the malloc statement into an int pointer. So

x = (int *) malloc(sizeof(int))

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4  
    
void* is implicitly convertible to int*, so there is no need for a cast. –  sth Oct 5 '11 at 14:14
1  
hmm... just the way i was taught –  tekknolagi Oct 5 '11 at 14:17
    
Very old implementations of C (before C89) had malloc return a char *, so a cast was necessary. This hasn't been true since the C89 standard was adopted, however. –  John Bode Oct 5 '11 at 14:23
    
Ohhhhh okay thank you @JohnBode –  tekknolagi Oct 6 '11 at 22:54

You are not allocating memory for z, will cause segmentation fault if used.
If you are question is if or not you should typecast result of malloc it is better you don't. Please refer Do I cast the result of malloc? for more details.
Also a NULL check of the return value ofmalloc will do more good than bad!
Hope this helps!

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I disagree, what will a NULL check on the return value do for you? Let you write more code to just exit the program anyway? It won't even return NULL on Linux in out of memory conditions. –  Blindy Oct 5 '11 at 14:23
    
I've used implementations where a memory allocation actually can fail by returning a null pointer - if you only ever write programs for Linux, and if you can ensure that over-commit will always be enabled (it's user-configurable), and you never allocate anything so big that it fails without trying, maybe then you can ignore the return value of malloc. But that's tying your code tightly to a particular environment and is terrible advice for general C programming. –  Steve Jessop Oct 5 '11 at 14:29
    
@Blindy: Well Sir I have the tendency to do a NULL check before the operating on the return value of malloc. It is not always exit code from the program (from whatever little experience I have had). Well in the case of the question posted, you are right! –  another.anon.coward Oct 5 '11 at 14:30
    
@Steve Jessop : I am little confused, because I have programmed throughout in Linux . Do you think that suggesting NULL check is a bad idea? I will be more than happy to correct my response! –  another.anon.coward Oct 5 '11 at 14:32
    
@Steve, I actually never program in Linux. However in my opinion when you're so out of resources that your allocations are failing you can't really truly recover anyway, might as well let the whole thing crash. When does that ever happen anyway outside of development builds memory leaks :) –  Blindy Oct 5 '11 at 14:34

The 2 statements should be combined .

The first allocates dynamic memory from the heap and returns a void pointer to that area. The second just makes a cast without allocating any memory.

The recommended way is :

int* a = (int *) malloc( sizeof(int ) );

Also you can use calloc which is the same as malloc, but it also initialize the allocated memory to 0 .

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