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For a function with signature:

struct Pair { void *v1, *v2 };
void f(Pair p);

compiled on x64, I would like Pair's fields to be passed via register, as if the function was:

void f(void *v1, void *v2);

Compiling a test with gcc 4.2.1 for x86_64 on OSX 10.6, I can see this is exactly what happens by examining the disassembly. However, compiling with MSVC 2008 for x64 on Windows, the disassembly shows that Pair is passed on the stack. I understand that platform ABIs can prevent this optimization; does anyone know any MSVC-specific annotations, calling conventions, flags, or other hacks that can get this to work?

Thank you!

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Can you pass a pointer to the structure instead? That's probably the easiest solution. –  Carl Norum Mar 25 '10 at 18:37
    
Maybe try __fastcall. I heard it can do register related things. –  Johannes Schaub - litb Mar 25 '10 at 18:39
    
If you pass a pointer to the struct, then you are still performing stores (to fill the struct, which would live on the caller's stack frame) and loads (to read the fields). In the no-struct "void f(void *, void *)" case, there are (potentially) no such loads. –  Luke Mar 25 '10 at 18:42
    
__fastcall is basically what you get when you compile for x64. (From MSDN: "Given the expanded register set, x64 just uses the __fastcall calling convention and a RISC-based exception-handling model.") –  Luke Mar 25 '10 at 18:43
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2 Answers 2

My VS2008 x64 compiler doesn't do the same thing yours does. The struct fits in an XMM register, it passes a pointer to the copy of the pair object in a register:

    Pair p;
    f(p);
000000013F2B1189  movaps      xmm6,xmmword ptr [p] 
000000013F2B118E  lea         rcx,[p] 
000000013F2B1193  movdqa      xmmword ptr [p],xmm6 
000000013F2B1199  call        f (13F2B1000h) 

Nothing is passed on the stack here.

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Thanks for answering! What does the disassembly for the callee look like if it accesses a field of the struct? Any loads? –  Luke Mar 25 '10 at 19:01
    
@Luke, have a look at it yourself. Start the debugger, right-click the text editor and choose "Go To Disassembly". Beware that only looking at the Release build code is meaningful. –  Hans Passant Mar 25 '10 at 19:07
    
that's what I did before asking the question. The reason I ask you is because your assembly looks different. It also is not clear that the callee won't be doing loads to access the parameter values. –  Luke Mar 25 '10 at 19:10
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what if you do this ?

   void f( void *ps ){
       struct Pair *p = (struct Pair *)ps;
   }

or

void f( unsigned long addr ){
    struct Pair *p = (struct Pair *)addr;
}

struct Pair pp;

f( reinterpret_cast<unsigned long>(&pp) );
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Still paying the stores/loads, see the third comment on the question. –  Luke Mar 25 '10 at 18:44
    
Saw it, even with the second solution ? (i'm just guessing, never coded such things on 64bit) –  Simone Margaritelli Mar 25 '10 at 18:47
    
I think sizeof(unsigned long) is 4; the sizeof(Pair) (containing two pointers) is 16. That might work, though, if were a portable builtin which is 16 bytes on both gcc and MSVC and is passed by register. (Is there?) It would also require the ABI allowing scalar values to be split across registers. –  Luke Mar 25 '10 at 18:49
    
Actually, it would be something more like (assuming a mystical long long long): void f(long long long bits) { Pair &p = *reinterpret_cast<Pair *>(&bits); } Pair p; f(reinterpret_cast<long long long *>(&p)); –  Luke Mar 25 '10 at 18:51
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