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Let's say that I want to put two 32 bit registers EAX as low 32 bit word and EDX as high 32 bit word into RAX. I have find one way:

  shl   rdx, 32
  or    rax, rdx

This method works only if we are sure that bits from 32 to 61 of RAX are 0. If we are not shure that, than we must first clear the high 32 bit word, like:

  mov   eax, eax      //This instruction should clear the high 32 bit word of RAX

Is this the shortest way?

Is there a single asm x86-64 instruction that does this operation?

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AFAIK there is nothing shorter. If the target register is a xmm regsiter, you could use two pinsd instructions and avoid the clearing instruction. –  hirschhornsalz Dec 20 '11 at 20:04
    
@drhirsch: I have check almost all Intel documentation and I didn't find anything usefull. :) –  GJ. Dec 20 '11 at 20:09
    
Yeah, you might be able to save a little space with a "xor eax, eax" to clear it, but that seems about as short as it can be. –  Nicholas Embry Dec 20 '11 at 20:20
    
@Nicholas Hembree: No, under x86-64 the instruction xor eax, eax clears whole RAX register! –  GJ. Dec 20 '11 at 20:23
    
Shouldn't that be mov rax, eax? –  BlackBear Dec 20 '11 at 21:20

1 Answer 1

up vote 5 down vote accepted

Perhaps this is a tad better:

shl     rax,32
shrd    rax,rdx,32

Does not assume that high dwords are zero.

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That was the combination I was searching for. I knew it had to be a shrd or shld –  hirschhornsalz Dec 21 '11 at 12:57

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