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What is the use of typecast in malloc? If I don't write the typecast in malloc then what will it return? (Why is typecasting required in malloc?)

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possible duplicate of Do I cast the result of malloc? –  Vi. yesterday

6 Answers 6

I assume you mean something like this:

int *iptr = (int*)malloc(/* something */);

And in C, you do not have to (and should not) cast the return pointer from malloc. It's a void * and in C, it is implicitly converted to another pointer type.

int *iptr = malloc(/* something */);

Is the preferred form.

This does not apply to C++, which does not share the same void * implicit cast behavior.

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can u explain clearly? –  user615929 Feb 14 '11 at 15:37
    
@user615929 - what do you need more clearly explained? You do not need to cast the return void * from malloc since it can be freely, and implicitly, converted to other pointer types. –  birryree Feb 14 '11 at 15:39
    
char iptr = (char)malloc(/* something); means, it will type cast in to char ; char iptr =malloc(/ something); after allocating the size ... how it will type cast in to char? –  user615929 Feb 14 '11 at 15:48
    
u mean automatically it will type cast? –  user615929 Feb 14 '11 at 15:53
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@user615929 - In C, pointers to void (void *) can be converted to any other pointer type without a cast, unlike pointers to other types (e.g., assigning a value of type char * to a variable of type int * does require an explicit cast). Thus, the value returned by malloc will be automatically converted to the target pointer type, no cast necessary. Note that in very old (pre-1989) versions of C, malloc returned char *, so an explicit cast was neccesary if you were assigning the result to a variable of a diffferent type. –  John Bode Feb 14 '11 at 15:54

You should never cast the return value of malloc(), in C. Doing so is:

  • Unnecessary, since void * is compatible with any other pointer type (except function pointers, but that doesn't apply here).
  • Potentially dangerous, since it can hide an error (missing declaration of the function).
  • Cluttering, casts are long and often hard to read, so it just makes the code uglier.

So: there are no benefits, at least three drawbacks, and thus it should be avoided.

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I didn't get the second point. Could you please explain further ? –  Mahesh Dec 8 '11 at 19:28
    
The second point is wrong. If you forget to include <stdlib.h> it does not matter whether you cast the result of malloc or not, you get a warning "implicit function declaration" (without any additional switches to most compilers). If you produce and ignore warnings - it is your problem, not the laguage, not the compiler, not the casting - it is you. The first point is a dry fact, no argue about that. All other points are only about your personal preference. –  sirgeorge Mar 16 '12 at 7:08

You're not required to cast the return value of malloc. This is discussed further in the C FAQ: http://c-faq.com/malloc/cast.html and http://c-faq.com/malloc/mallocnocast.html .

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Just because malloc returns a void* and since void* has not defined size you can't apply pointer aritmetic on it. So you generally cast the pointer to the data type your allocated memory block actually points.

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The answers are correct, I just have an advice:

  • don't play with pointers - which malloc() returns - too much, cast them to a specified type asap;
  • if you need to do some math with them, cast them to char*, so ptr++ will mean what you except: add 1 to it (the size of the datatype will be added, which is 1 for char).
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Casting the return value of malloc() is commonly done in libraries that are designed to work in C and C++.

You will see it in many libraries that use the following in the public header:

#ifdef __cplusplus
extern "C" {
#endif

Unless you are making a library that has to be portable between both (and as noted in comments, it addresses only corner cases), no - it is not necessary to cast the return value of malloc(). In many instances, doing so actually hides things that you probably want to notice.

Edit after comment debate

You will see this (mostly) in library code that:

  • The user has to build
  • Treats warnings as errors due to requirements

In such a case, especially in the UNIX / UNIX-like world, it is almost impossible to look out for and deal with broken or buggy compilers going back the last ten years. So in that case, casting the return value of malloc() is a strategic decision, where the author is fully aware of the possible issues. It should never be done out of 'general practice' or because 'libfoo does it that way, so it must be right!'.

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It's only necessary if (a) malloc is used in a macro (ugh) or (b) malloc is used in a C++ module. –  larsmans Feb 14 '11 at 14:36
    
@larsmans - correct, updated my answer to be more specific. –  Tim Post Feb 14 '11 at 14:38
    
Some compilers which focus more on c++ will issue a warning when the cast is not present even in c code. –  Nick Feb 14 '11 at 15:58
    
@Nick: These compilers should be avoided, and their warning options tweaked to eliminate this nonsense. –  R.. Feb 14 '11 at 17:32
    
@R.. You can't always avoid those compilers, especially with library code (where casting is typically used). I don't agree that it should be done, but updated my answer to better reflect why it's done. –  Tim Post Feb 15 '11 at 8:15

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