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Knowing more C++ than C I wondered if someone could explain the reason why malloc() always returns a pointer of type void, rather than malloc having been implemented with some mechanism which allows it to return a pointer of the type the user passed in? It just seems a little "hacky" constantly explicitly casting the returned void pointer to the type you want.

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The type the user passed in? You mean size_t? –  Mr Lister Jun 23 '13 at 14:10
    
there is no generics in C, and malloc doesnt have to be a macro. So you dont have a choice than defining malloc return type as void* . –  UmNyobe Jun 23 '13 at 14:12
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Note that you don't have to (and according to some, including me, shouldn't) cast the return value of malloc. In C, there is an implicit conversion from void * to any pointer type. –  delnan Jun 23 '13 at 14:12
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@StilesCrisis, what is C++ mode? C and C++ are distinct languages, code written in one generally is not very good code for the other. In particular, C++ code should never use malloc but new, directly. So there is no real need for that in C++. –  Jens Gustedt Jun 23 '13 at 15:24
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@JensGustedt Compiling C as C++ does sometimes happen. With some toolsets, it's far easier to just compile everything as C++ instead of selectively compiling some files as C. Sometimes you don't even have a C compiler. There's a reason for #ifdef __cplusplus extern "C" { #endif seen in C files all over the world. –  delnan Jun 23 '13 at 17:29
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3 Answers

up vote 5 down vote accepted

Well, in C you don't have to do the cast, so your point is moot. That is, these two statements are 100% equivalent:

 char *x = malloc(100);
 char *y = (char *)malloc(100);

Conversions to and from void * are implicit in C. So, to address your question, the very reason malloc returns void * is so that you don't have to cast.

Besides that, in C there's no way to pass type information around, so doing something like:

 char *x = malloc(100, char);

is not possible.

If you're in C++, the cast is necessary, but you shouldn't be using malloc anyway - that's what new is for, and it does handle the type information correctly.

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Passing the type is possible using a macro: #define ALLOC(t, n) (((t) *)malloc(sizeof(t) * (n))). It's just not necessary. –  larsmans Jun 23 '13 at 14:13
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@larsmans - yes, but OP is asking why malloc itself doesn't have such an interface, I think. –  Carl Norum Jun 23 '13 at 14:15
    
I think so too, and +1 for your answer. I was just replying to the "is not possible" remark. –  larsmans Jun 23 '13 at 14:17
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It's not hacky at all, from C standard ISO/IEC 9899 2011, section 6.2.2.3:

A pointer to void may be converted to or from a pointer to any object type. A pointer to any object type may be converted to a pointer to void and back again; the result shall compare equal to the original pointer.

So a pointer to void* is a valid pointer to whatever type you want without the need of explicit casting.

In addition to this you can't dynamically pass a type to a function to let so that it will return the correct type, you can pass just the size itself (so malloc would be able to allocate size_t count * size_t size but not return the correctly type in any case).

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C has no mechanism for "passing a type" at all. Also, in C, conversion from void* to a pointer of any other type is automatic (no cast is needed) so malloc works naturally in C. It's only in C++ where malloc requires casts to work.

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