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I noticed some standard library functions use void* as their parameters, for example, the memcpy function, its prototype is :

void * memcpy ( void * destination, const void * source, size_t num );

There are also functions using char* as their paramters, for example, the read function of ifstream class, its prototype is:

istream& read ( char* s, streamsize n );

Why does not the standard library unify these paramteres, for example, all using char* or all using void*. Are there any particular reasons?

cheng

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2  
memcpy is most definitely not an STL function! –  Oliver Charlesworth Nov 12 '11 at 2:34
    
Neither is istream. –  Pubby Nov 12 '11 at 2:35
    
@Pubby Ok. Let's say it's party of the C++ standard functions. –  cheng Nov 12 '11 at 2:38
1  
The old C functions typically used void pointers for memory locations. That's great and fine, and so do the C++ allocation functions, but void pointers don't lend themselves to pointer arithmetic. Since char means "byte" (i.e. "smallest data unit"), char* is really an entirely satisfactory replacement type. Oh well. –  Kerrek SB Nov 12 '11 at 2:41

1 Answer 1

Pointers can be implicitly casted to void*, but not char*. This leads to type safety - if you care about the type then don't use void*.

Since memcpy is designed to work on pointer types it uses void*. read was not designed to work on all pointer types and so it uses char*

void foo(void* x) {}
void bar(char* x) {}

int main() {
  int* x;
  foo(x);
  bar(x); // error - can't convert int* to char*
}
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