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.

Maybe it is different from platform to platform, but

when I compile using gcc and run the code below, I get 0 every time in my ubuntu 11.10.

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

int main()
{
    double *a = (double*) malloc(sizeof(double)*100)
    printf("%f", *a);
}

Why do malloc behave like this even though there is calloc?

Doesn't it mean that there is an unwanted performance overhead just to initialize the values to 0 even if you don't want it to be sometimes?


EDIT: Oh, my previous example was not initiazling, but happened to use "fresh" block.

What I precisely was looking for was why it initializes it when it allocates a large block:

int main()
{
    int *a = (int*) malloc(sizeof(int)*200000);
    a[10] = 3;
    printf("%d", *(a+10));

    free(a);

    a = (double*) malloc(sizeof(double)*200000);
    printf("%d", *(a+10));
}

OUTPUT: 3
        0 (initialized)

But thanks for pointing out that there is a SECURITY reason when mallocing! (Never thought about it). Sure it has to initialize to zero when allocating fresh block, or the large block.

share|improve this question
11  
For a more realistic test, have you tried allocating, freeing and then allocating again (possibly repeating each multiple times)? Just because malloc returns zero-initialized memory the first time doesn't mean you can count on it in general. –  user786653 Nov 6 '11 at 19:08
    
It also could be that the memory was set to 0 by the operating system or something and malloc had nothing to do with it. –  Seth Carnegie Nov 6 '11 at 19:09

10 Answers 10

up vote 105 down vote accepted

Short Answer:

It doesn't, it just happens to be zero in your case.
(Also your test case doesn't show that the data is zero. It only shows if one element is zero.)


Long Answer:

When you call malloc(), one of two things will happen:

  1. It recycles memory that was previous allocated and freed from the same process.
  2. It requests new page(s) from the operating system.

In the first case, the memory will contain data leftover from previous allocations. So it won't be zero. This is the usual case when performing small allocations.

In the second case, the memory will be from the OS. This happens when the program runs out of memory - or when you are requesting a very large allocation. (as is the case in your example)

Here's the catch: Memory coming from the OS will be zeroed for security reasons.*

When the OS gives you memory, it could have been freed from a different process. So that memory could contain sensitive information such as a password. So to prevent you reading such data, the OS will zero it before it gives it to you.

*I note that the C standard says nothing about this. This is strictly an OS behavior. So this zeroing may or may not be present on systems where security is not a concern.


To give more of a performance background to this:

As @R. mentions in the comments, this zeroing is why you should always use calloc() instead of malloc() + memset(). calloc() can take advantage of this fact to avoid a separate memset().


On the other hand, this zeroing is sometimes a performance bottleneck. In some numerical applications (such as the out-of-place FFT), you need to allocate a huge chunk of scratch memory. Use it to perform whatever algorithm, then free it.

In these cases, the zeroing is unnecessary and amounts to pure overhead.

The most extreme example I've seen is a 20-second zeroing overhead for a 70-second operation with a 48 GB scratch buffer. (Roughly 30% overhead.) (Granted: the machine did have a lack of memory bandwidth.)

The obvious solution is to simply reuse the memory manually. But that often requires breaking through established interfaces. (especially if it's part of a library routine)

share|improve this answer
13  
+1 for security reasons. –  Seth Carnegie Nov 6 '11 at 19:17
12  
But you still can't count on it being zero unless you do so yourself (or with calloc, which does it for you after getting memory from the OS). –  Greg Hewgill Nov 6 '11 at 19:20
28  
It's subtle. When the OS gives you memory, it could have been freed from a different process. So that memory could contain sensitive information such as a password. So to prevent you reading such data, the OS will zero it before it gives it to you. But it's an implementation detail and may be different such as in some embedded systems. –  Mysticial Nov 6 '11 at 19:34
16  
This is a bit of an aside from OP's question, but one consequence of this effect is that you should always use calloc rather than malloc+memset when you want zero-initialized memory (at least for large blocks where time to zero could matter). malloc+memset will always incur a heavy cost of writing to the whole block, but the system's calloc can take advantage of the fact that new anonymous memory will be zero-filled to begin with. –  R.. Nov 6 '11 at 21:16
1  
The answers in this question may help you to understand that. The kernel can cheat with calloc by not actually writing out all the zeroed-out pages until they are used. Memset (apparently) forces the pages to be written out immediately. More info at the link. –  thomasrutter Nov 7 '11 at 4:50

The OS will usually clear fresh memory pages it sends to your process so it can't look at an older process' data. This means that the first time you initialize a variable (or malloc something) it will often be zero but if you ever reuse that memory (by freeing it and malloc-ing again, for instance) then all bets are off.

This inconsistence is precisely why uninitialized variables are such a hard to find bug.


As for the unwanted performance overheads, avoiding unspecified behaviour is probably more important. Whatever small performance boost you could gain in this case won't compensate the hard to find bugs you will have to deal with if someone slightly modifies the codes (breaking previous assumptions) or ports it to another system (where the assumptions might have been invalid in the first place).

share|improve this answer
3  
+1 ... not sure if "probably" is required in the bold text thought ;-) –  user166390 Nov 6 '11 at 19:25

Why do you assume that malloc() initializes to zero? It just so happens to be that the first call to malloc() results in a call to sbrk or mmap system calls, which allocate a page of memory from the OS. The OS is obliged to provide zero-initialized memory for security reasons (otherwise, data from other processes gets visible!). So you might think there - the OS wastes time zeroing the page. But no! In Linux, there is a special system-wide singleton page called the 'zero page' and that page will get mapped as Copy-On-Write, which means that only when you actually write on that page, the OS will allocate another page and initialize it. So I hope this answers your question regarding performance. The memory paging model allows usage of memory to be sort-of lazy by supporting the capability of multiple mapping of the same page plus the ability to handle the case when the first write occurs.

If you call free(), the glibc allocator will return the region to its free lists, and when malloc() is called again, you might get that same region, but dirty with the previous data. Eventually, free() might return the memory to the OS by calling system calls again.

Notice that the glibc man page on malloc() strictly says that the memory is not cleared, so by the "contract" on the API, you cannot assume that it does get cleared. Here's the original excerpt:

malloc() allocates size bytes and returns a pointer to the allocated memory.
The memory is not cleared. If size is 0, then malloc() returns either NULL, or a unique pointer value that can later be successfully passed to free().

If you would like, you can read more about of that documentation if you are worried about performance or other side-effects.

share|improve this answer
2  
Thank you for your detailed answer about performance issue. –  SHH Nov 6 '11 at 19:32

I modified your example to contain 2 identical allocations. Now it is easy to see malloc doesn't zero initialize memory.

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

int main(void)
{
    {
      double *a = malloc(sizeof(double)*100);
      *a = 100;
      printf("%f\n", *a);
      free(a);
    }
    {
      double *a = malloc(sizeof(double)*100);
      printf("%f\n", *a);
      free(a);
    }

    return 0;
}

Output with gcc 4.3.4

100.000000
100.000000
share|improve this answer

The standard does not dictate that malloc() should initialize the values to zero. It just happens at your platform that it might be set to zero, or it might have been zero at the specific moment you read that value.

share|improve this answer

Your code doesn't demonstrate that malloc initialises its memory to 0. That could be done by the operating system, before the program starts. To see shich is the case, write a different value to the memory, free it, and call malloc again. You will probably get the same address, but you will have to check this. If so, you can look to see what it contains. Let us know!

share|improve this answer

From gnu.org:

Very large blocks (much larger than a page) are allocated with mmap (anonymous or via /dev/zero) by this implementation.

share|improve this answer
    
The OP is mallocing in small steps though. Does that reference you found have anything about that too? –  hugomg Nov 6 '11 at 19:18

Do you know that it is definitely being initialised? Is it possible that the area returned by malloc() just frequently has 0 at the beginning?

share|improve this answer

Never ever count on any compiler to generate code that will initialize memory to anything. malloc simply returns a pointer to n bytes of memory someplace hell it might even be in swap.

If the contents of the memory is critical initialize it yourself.

share|improve this answer
4  
Except in cases where the language guarantees that it will be initialized. Static objects without explicit initialization are implicitly initialized to zero. –  Keith Thompson Dec 30 '11 at 8:19

It used to be the case that malloc didn't initialize or do anything with the allocated memory. Some compilers may still implement this behaviour. It may also be the case that free() sets the memory contents of what is freed to 0 and that is why any new malloc() will have the contents returned appear as they were initialized.

It is not uncommon for malloc or free to behave this way nowdays due to the fact that it would be possible to have direct access to the contents of memory used by other applications which was then freed which may lead to users having unauthorised access to data that they were not supposed to have access to.

However one can never rely on malloc to behave like this on every system so it is important to manually initialize your memory contents and then destroy any critical data before freeing them.

share|improve this answer

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.