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.

What is the difference between doing:

ptr = (char **) malloc (MAXELEMS * sizeof(char *));

or:

ptr = (char **) calloc (MAXELEMS, sizeof(char*));

When is it a good idea to use calloc over malloc or vice versa?

share|improve this question

12 Answers 12

up vote 260 down vote accepted

calloc() zero-initializes the buffer, while malloc() leaves the memory uninitialized.

EDIT:

Zeroing out the memory may take a little time, so you probably want to use malloc() if that performance is an issue. If initializing the memory is more important, use calloc(). For example, calloc() might save you a call to memset().

share|improve this answer
64  
The *alloc variants are pretty mnemonic - clear-alloc, memory-alloc, re-alloc. –  Jefromi Oct 8 '09 at 15:07
14  
Use malloc() if you are going to set everything that you use in the allocated space. Use calloc() if you're going to leave parts of the data uninitialized - and it would be beneficial to have the unset parts zeroed. –  Jonathan Leffler Oct 8 '09 at 15:16
96  
calloc is not necessarily more expensive, since OS can do some tricks to speed it up. I know that FreeBSD, when it gets any idle CPU time, uses that to run a simple process that just goes around and zeroes out deallocated blocks of memory, and marks blocks thus processes with a flag. So when you do calloc, it first tries to find one of such pre-zeroed blocks and just give it to you - and most likely it will find one. –  Pavel Minaev Oct 8 '09 at 15:18
8  
I tend to feel that if your code becomes "safer" as a result of zero-initing allocations by default, then your code is insufficiently safe whether you use malloc or calloc. Using malloc is a good indicator that the data needs initialisation - I only use calloc in cases where those 0 bytes are actually meaningful. Also note that calloc doesn't necessarily do what you think for non-char types. Nobody really uses trap representations any more, or non-IEEE floats, but that's no excuse for thinking your code is truly portable when it isn't. –  Steve Jessop Oct 8 '09 at 15:51
12  
Somebody downvoted my 4-year-old answer without explanation? Fascinating. –  Fred Larson Jan 2 at 23:09

A less known difference is that in operating systems with optimistic memory allocation, like Linux, the pointer returned by malloc isn't backed by real memory until the program actually touches it.

calloc does indeed touch the memory (it writes zeroes on it) and thus you'll be sure the OS is backing the allocation with actual RAM (or swap). This is also why it is slower than malloc (not only does it have to zero it, the OS must also find a suitable memory area by possibly swapping out other processes)

See for instance this SO question for further discussion about the behavior of malloc

share|improve this answer
10  
calloc need not write zeros. If the allocated block consists mostly of new zero pages provided by the operating system, it can leave those untouched. This of course requires calloc to be tuned to the operating system rather than a generic library function on top of malloc. Or, an implementor could make calloc compare each word against zero before zeroing it. This would not save any time, but it would avoid dirtying the new pages. –  R.. Jan 4 '11 at 13:46
    
@R.. interesting note. But in practice, does such implementations exist in the wild? –  Isak Savo Jan 4 '11 at 14:00
4  
All dlmalloc-like implementations skip the memset if the chunk was obtained via mmaping new anonymous pages (or equivalent). Usually this kind of allocation is used for larger chunks, starting at 256k or so. I don't know of any implementations that do the comparison against zero before writing zero aside from my own. –  R.. Jan 5 '11 at 15:57
    
omalloc also skips the memset; calloc does not need to touch any pages that are not already used by the application (page cache), ever. Though, extremely primitive calloc implementations differ. –  mirabilos Mar 31 at 21:05
    
glibc's calloc checks if it's getting fresh memory from the OS. If so, it knows it DOESN'T need to write it, because mmap(..., MAP_ANONYMOUS) returns memory that's already zeroed. –  Peter Cordes Dec 7 at 22:45

One often-overlooked advantage of calloc is that (conformant implementations of) it will help protect you against integer overflow vulnerabilities. Compare:

size_t count = get_int32(file);
struct foo *bar = malloc(count * sizeof *bar);

vs.

size_t count = get_int32(file);
struct foo *bar = calloc(count, sizeof *bar);

The former could result in a tiny allocation and subsequent buffer overflows, if count is greater than SIZE_MAX/sizeof *bar. The latter will automatically fail in this case since an object that large cannot be created.

Of course you may have to be on the lookout for non-conformant implementations which simply ignore the possibility of overflow... If this is a concern on platforms you target, you'll have to do a manual test for overflow anyway.

share|improve this answer
2  
Apparently the arithmetic overflow was what caused OpenSSH hole in 2002. Good article from OpenBSD on the perils of this with memory-related functions: undeadly.org/cgi?action=article&sid=20060330071917 –  Komrade P. Apr 24 at 14:35
    
@KomradeP.: Interesting. Sadly the article you linked has misinformation right at the beginning. The example with char is not an overflow but rather an implementation-defined conversion when assigning the result back into a char object. –  R.. Apr 24 at 15:32
    
It's there probably for illustration purpose only. Because compiler is likely to optimise that away anyway. Mine compiles into this asm: push 1. –  Komrade P. Apr 24 at 17:22
1  
@tristopia: The point is not that the code is exploitable on all implementations, but that it's incorrect without additional assumptions and thus not correct/portable usage. –  R.. Sep 20 at 21:38
2  
@tristopia: If your mode of thinking is "size_t is 64-bit so that's no problem", that's a flawed way of thinking that's going to lead to security bugs. size_t is an abstract type that represents sizes, and there's no reason to think the arbitrary product of a 32-bit number and a size_t (note: sizeof *bar could in principle be greater than 2^32 on a 64-bit C implementation!) fits in size_t. –  R.. Sep 20 at 23:40

from an article Benchmarking fun with calloc() and zero pages on Georg Hager's Blog

When allocating memory using calloc(), the amount of memory requested is not allocated right away. Instead, all pages that belong to the memory block are connected to a single page containing all zeroes by some MMU magic (links below). If such pages are only read (which was true for arrays b, c and d in the original version of the benchmark), the data is provided from the single zero page, which – of course – fits into cache. So much for memory-bound loop kernels. If a page gets written to (no matter how), a fault occurs, the “real” page is mapped and the zero page is copied to memory. This is called copy-on-write, a well-known optimization approach (that I even have taught multiple times in my C++ lectures). After that, the zero-read trick does not work any more for that page and this is why performance was so much lower after inserting the – supposedly redundant – init loop.

share|improve this answer

There's no difference in the size of the memory block allocated. calloc just fills the memory block with physical all-zero-bits pattern. In practice it is often assumed that the objects located in the memory block allocated with calloc have initilial value as if they were initialized with literal 0, i.e. integers should have value of 0, floating-point variables - value of 0.0, pointers - the appropriate null-pointer value, and so on.

From the pedantic point of view though, calloc (as well as memset(..., 0, ...)) is only guaranteed to properly initialize (with zeroes) objects of type unsigned char. Everything else is not guaranteed to be properly initialized and may contain so called trap representation, which causes undefined behavior. In other words, for any type other than unsigned char the aforementioned all-zero-bits patterm might represent an illegal value, trap representation.

Later, in one of the Technical Corrigenda to C99 standard, the behavior was defined for all integer types (which makes sense). I.e. formally, in the current C language you can initialize only integer types with calloc (and memset(..., 0, ...)). Using it to initialize anything else in general case leads to undefined behavior, from the point of view of C language.

In practice, calloc works, as we all know :), but whether you'd want to use it (considering the above) is up to you. I personally prefer to avoid it completely, use malloc instead and perform my own initialization.

Finally, another important detail is that calloc is required to calculate the final block size internally, by multiplying element size by number of elements. While doing that, calloc must watch for possible arithmetic overflow. It will result in unsuccessful allocation (null pointer) if the requested block size cannot be correctly calculated. Meanwhile, your malloc version makes no attempt to watch for overflow. It will allocate some "unpredictable" amount of memory in case overflow happens.

share|improve this answer

The documentation makes the calloc look like malloc, which just does zero-initialize the memory; this is not the primary difference! The idea of calloc is to abstact copy-on-write semantics for memory allocation. When you allocate memory with calloc it all maps to same physical page which is initialized to zero. When any of the pages of the allocated memory is written into a physical page is allocated. This is often used to make HUGE hash tables, for example since the parts of hash which are empty aren't backed by any extra memory (pages); they happily point to the single zero-initialized page, which can be even shared between processes.

Any write to virtual address is mapped to a page, if that page is the zero-page, another physical page is allocated, the zero page is copied there and the control flow is returned to the client process. This works same way memory mapped files, virtual memory, etc. work.. it uses paging.

Here is one optimization story about the topic: http://blogs.fau.de/hager/2007/05/08/benchmarking-fun-with-calloc-and-zero-pages/

share|improve this answer

calloc is generally malloc+memset to 0

It is generally slightly better to use malloc+memset explicitly, especially when you are doing something like:

ptr=malloc(sizeof(Item));
memset(ptr, 0, sizeof(Item));

That is better because sizeof(Item) is know to the compiler at compile time and the compiler will in most cases replace it with the best possible instructions to zero memory. On the other hand if memset is happening in calloc, the parameter size of the allocation is not compiled in in the calloc code and real memset is often called, which would typically contain code to do byte-by-byte fill up until long boundary, than cycle to fill up memory in sizeof(long) chunks and finally byte-by-byte fill up of the remaining space. Even if the allocator is smart enough to call some aligned_memset it will still be a generic loop.

One notable exception would be when you are doing malloc/calloc of a very large chunk of memory (some power_of_two kilobytes) in which case allocation may be done directly from kernel. As OS kernels will typically zero out all memory they give away for security reasons, smart enough calloc might just return it withoud additional zeroing. Again - if you are just allocating something you know is small, you may be better off with malloc+memset performance-wise.

share|improve this answer
    
+1 for the reminder that a generic implementation of a functionality in a system library is not necessarily faster than the same operation in the user code. –  tristopia Sep 20 at 7:30
    
There is also a second point that make calloc() slower than malloc(): the multiplication for the size. calloc() is required to use a generic multiplication (if size_t is 64 bits even the very costly 64 bits*64 bits=64 bits operation) while the malloc() will often have a compile time constant. –  tristopia Sep 20 at 7:37
    
glibc calloc has some smarts to decide how to most efficiently clear the returned chunk, e.g. sometimes only part of it needs clearing, and also an unrolled clear up to 9*sizeof(size_t). Memory is memory, clearing it 3 bytes at a time isn't going to be faster just because you're then going to use it to hold struct foo { char a,b,c; };. calloc is always better than malloc+memset, if you're always going to clear the whole malloced region. calloc has a careful but efficient check for int overflow in size * elements, too. –  Peter Cordes Dec 7 at 22:58

There are three main differences between calloc and malloc :-
1). calloc initialize the allocated memory with 0(zero) while malloc just fill it with garbage.
And it is correctly said that : Zeroing out the memory may take a little time, so you probably want to use malloc() if that performance is an issue. If initializing the memory is more important, use calloc(). For example, calloc() might save you a call to memset().
2). calloc takes the number and type of data as arguments while malloc takes the number of bytes.
3). calloc may or may not allocate contiguous memory locations but malloc always allocate contiguous memory locations.

share|improve this answer
1  
well.. malloc doesn't exactly fill it with garbage. Memory is just allocated, keeping its contents. They can be the user banking account, pieces of images or videos, or any other chunk of binary data that was once allocated. –  rupps Sep 21 at 17:21

The calloc() function that is declared in the <stdlib.h> header offers a couple of advantages over the malloc() function.

  1. It allocates memory as a number of elements of a given size, and
  2. It initializes the memory that is allocated so that all bits are zero.
share|improve this answer

There are two differences.
First, is in the number of arguments. malloc() takes a single argument (memory required in bytes), while calloc() needs two arguments.
Secondly, malloc() does not initialize the memory allocated, while calloc() initializes the allocated memory to ZERO.

  • calloc() allocates a memory area, the length will be the product of its parameters. calloc fills the memory with ZERO's and returns a pointer to first byte. If it fails to locate enough space it returns a NULL pointer.

Syntax: ptr_var=(cast_type *)calloc(no_of_blocks , size_of_each_block); i.e. ptr_var=(type *)calloc(n,s);

  • malloc() allocates a single block of memory of REQUSTED SIZE and returns a pointer to first byte. If it fails to locate requsted amount of memory it returns a null pointer.

Syntax: ptr_var=(cast_type *)malloc(Size_in_bytes); The malloc() function take one argument, which is the number of bytes to allocate, while the calloc() function takes two arguments, one being the number of elements, and the other being the number of bytes to allocate for each of those elements. Also, calloc() initializes the allocated space to zeroes, while malloc() does not.

share|improve this answer

calloc will clear allotted memory to the particular allotted pointer variable

The calloc() function allocates memory for an array of nmemb elements of size bytes each and returns a pointer to the allocated memory. The memory is set to zero. If nmemb or size is 0, then calloc() returns either NULL,

share|improve this answer

malloc(): Allocates requested size of bytes and returns a pointer first byte of allocated space

calloc(): Allocates space for an array elements, initializes to zero and then returns a pointer to memory

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.