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would it be OK if the function was: void memcpy(char* dst, const char* src, size_t size)?

What is the advantage of using void pointers in memcpy()?

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Yes, you can. It is a void pointer as a notice that you can pass any kind of pointer to it. You don't HAVE to send a char*, or an int*, you can send a MyNewStruct* and it will copy memory just the same. But anyway, this is something that you can look up in literally 3 seconds. Pretty worthless question, I'm afraid. –  BrainSteel Jul 22 '13 at 7:00
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void *memcpy() return destination... how would you get data with `void memcpy()' ? –  someone Jul 22 '13 at 7:01
    
@Krishna data is ready in *dst. Returning a pointer to dst is just a customary for chained function call, to me it is not mandatory though. –  Deqing Jul 22 '13 at 7:10
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3 Answers

up vote 1 down vote accepted

Before the void data type was added in the 1989 standard, that was how functions like memcpy were designed. char * was the closest thing to a "generic" pointer at the time.

The problem is that if memcpy still used char * arguments and you wanted to call memcpy on a target that wasn't an array of char, you would have to explicitly cast the pointer value:

int foo[N];
int bar[N];
...
memcpy( (char *) foo, (const char *) bar, N * sizeof *foo );

because you can't assign pointers of one type to another type without a cast. This wasn't (as much of) a problem in pre-ANSI C because you didn't have function prototypes; that is, the compiler didn't check that the number and types of arguments in the function call matched the definition, but it's definitely an issue now.

However, unlike other object pointer types, you can assign any T * value to void * and back again without needing the cast, so the memcpy call can be written as

memcpy( foo, bar, N * sizeof *foo );

I remember the pre-standardization days (although I was still in college). Casting gymnastics weren't fun. Embrace the void * type, because it is saving you some heartburn.

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What is the advantage of using void pointer in memcpy()?

A void pointer is a generic pointer, so it can accept a pointer to any type.

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memcpy() does not "return" anything. You certainly meant "accept a pointer of any type" instead. –  Gil Jul 22 '13 at 7:02
    
@Gil Yep, that's indeed what I meant to type. I'll fix that. –  alex Jul 22 '13 at 7:05
    
I plus'ed your answer, as it's more concise than mine now. –  Gil Jul 22 '13 at 7:06
    
@Gil you said memcpy() does not "return" anything? I think it returns pointer to destination string.correct me if i am wrong? –  Dayal rai Jul 22 '13 at 7:07
    
Not in the syntax given by the question above: void memcpy(char* dst, const char* src, size_t size) –  Gil Jul 22 '13 at 7:09
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would it be OK if the function was: void memcpy(char* dst, const char* src, size_t size)?

Yes, because pointers can be casted to another pointer type.

What is the advantage of using void pointer in memcpy()?

Avoiding a cast to the destination pointer type.

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