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This is a default HashKey function in MFC's CMap class.

AFX_INLINE UINT AFXAPI HashKey(ARG_KEY key)
{
  // default identity hash - works for most primitive values
  return ((UINT)(void*)(DWORD)key) >> 4;
}

My question is why the type casting (DWORD) and (void*) are needed?. I guess the (DWORD) may have some relationship with compatibility affairs for 16-bit machines. But I'm confused about the void*.

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closed as too localized by Alexey Frunze, Öö Tiib, Laurent Etiemble, H.Muster, Nik Bougalis Feb 26 '13 at 1:17

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2  
Nope, no reason. Whoever wrote this code just had no idea what they were doing. –  R.. Feb 25 '13 at 4:46
1  
Dunno, but (void*) and one of (UINT) and (DWORD) are useless. –  Alexey Frunze Feb 25 '13 at 4:46
    
@R.. This code snippet is coped from “Programming Windows with MFC" –  duleshi Feb 25 '13 at 4:57
    
Someone was on something, probably. –  Mehrdad Feb 25 '13 at 7:25
    
@R.. Considering that you do not know the history of that function or the intent of the original programmers, it's a little naive to suggest that whoever wrote it had no idea what they were doing. There WAS a point to this madness at the time the code was originally written, which Hans Passant explains. –  Nik Bougalis Feb 25 '13 at 19:22

4 Answers 4

up vote 8 down vote accepted
template<class ARG_KEY>
AFX_INLINE UINT AFXAPI HashKey(ARG_KEY key)
{
    // default identity hash - works for most primitive values
    return (DWORD)(((DWORD_PTR)key)>>4);
}

That's what that function looks like today. Your version came from a very old version of MFC, old enough to still support 16-bit programs. MFC was first released in 1992, the days of Windows version 3. MFC versions 1.0 through 2.5 supported 16-bit targets. The current version of the function is good for 32-bit and 64-bit code.

In 16-bit code, one option to select was the memory model. You could pick cheap 16-bit near pointers or expensive 32-bit far pointers. So the extra void* cast trims the value to the memory model size.

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The cast to DWORD will reduce the size to a DWORD.

The cast to void* will reduce the size to a pointer.

There is not much more that can be inferred from these casts, and in a realistic environment it's overkill, but it's fair to expect an optimizing compiler not to do any unnecessary work through these conversions.

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But isn't it that sizeof (DWORD)==sizeof( void*)?So the casting just makes no sense? –  duleshi Feb 25 '13 at 5:06
1  
the size of the a pointer differs on machines. On 64bit machine void * is 64 bit. –  Min Lin Feb 25 '13 at 5:38

The casting to DWORD(Double Word) is needed here to tell the CPU which bytes he need to shift in this case he shift only the DWORD bits.The (void*) casting is to make the number you just shift 4 times to a pointer(casting to generic address size).

The size of void* can be different between OS(32b system or 64b system) because of that you must do this casting.

The last casting to (UINT) is to cast the pointer to unsigned integer to get the memory address as a number.

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DWORD is data type of unsigned int 32 bit as a Windows data type

in this statement void* changes the value to memory size and it different in machines . On 64bit machine void * is 64 bit and my idea about it is for compatibility issues.

if you want to find more about c++ cast : Type Conversion in c++

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dynamic_cast uses RTTI to perform the cast. How does the series of C-style casts (UINT)(Void*)(DWORD) produce dynamic behavior? –  Pavel Zhuravlev Feb 25 '13 at 6:00
    
There are several incorrect statements here. This is not a dynamic cast. DWORD is not a polymorphic type. There is no casting from "one pointer or reference...to another". There is no type safety check at runtime performed. –  Drew Dormann Feb 25 '13 at 18:40
    
i have changed it and correct incorrect statements thanks –  saeed Feb 26 '13 at 14:10

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