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Please have a look at the below mentioned code snippet and tell me the difference?

int main()
{
struct sockaddr_in serv_addr, cli_addr;
/* Initialize socket structure */
    bzero((char *) &serv_addr, sizeof(serv_addr));
}

Now, what if i do something similar without typecasting (char *), then also i feel it will do the same thing? Can someone clarify?

/* Initialize socket structure */
bzero( &serv_addr, sizeof(serv_addr));
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Please format your code using the code option next time :-) –  richsage May 7 '10 at 10:24
    
Please edit your question so that the code is properly formatted (use the 101010 button and space over at least 4 spaces for each line). –  GreenMatt May 7 '10 at 10:24

2 Answers 2

Since the first parameter is void *, you only need to cast in C++.

In C this is not necessary, as a void * was introduced1 precisely so that you wouldn't need to cast it to or from other object2 pointers. (Similarly with malloc() and other functions that deal with void *s)


  1. In C89.
  2. Any non-function pointer.
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1  
Emmm... why do I need to cast from SomeType* to void* in C++? Perhaps you meant that the reverse cast is required in C++, but not in C? –  sharptooth May 7 '10 at 10:29
    
I mean that a conversion from void * to any other non-function pointer is implicit in C, and does not require a cast. In C++ this is no longer true. –  Alex Budovski May 7 '10 at 10:30
    
Okay, where is void* converted to anything in this question? I only see a SomeType* to void* conversion. –  sharptooth May 7 '10 at 10:32
    
The conversion happens during the call to bzero, as the first parameter is void *, but the passed argument is struct sockaddr_in *. Actually, it looks like his prototype may take a char * instead. Perhaps he has an old header file. –  Alex Budovski May 7 '10 at 10:36
2  
@Alex and JeremyP: what sharptooth is saying is that C++ is fine with an implicit cast to void* (just like C), which is what's happening in the code snippet. Where C++ differs from C (in this area) is that it doesn't allow an implicit cast from void* - but that's not happening in the example. –  Michael Burr May 7 '10 at 14:28

The cast is not needed, since bzero() accepts void* as the first argument and AnyType* can be implicitly converted to void*.

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