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Today I learnt about x64 assembly (Source: http://x86asm.net/articles/x86-64-tour-of-intel-manuals/) that

Perhaps the most surprising fact is that an instruction such as MOV EAX, EBX automatically zeroes upper 32 bits of RAX register.

The Intel documentation (3.4.1.1 General-Purpose Registers in 64-Bit Mode in manual Basic Architecture) quoted at the same source tells us:

  • 64-bit operands generate a 64-bit result in the destination general-purpose register.
  • 32-bit operands generate a 32-bit result, zero-extended to a 64-bit result in the destination general-purpose register.
  • 8-bit and 16-bit operands generate an 8-bit or 16-bit result. The upper 56 bits or 48 bits (respectively) of the destination general-purpose register are not be modified by the operation. If the result of an 8-bit or 16-bit operation is intended for 64-bit address calculation, explicitly sign-extend the register to the full 64-bits.

In x32 assembly, 16 bit instructions such as

mov ax, bx

don't show this kind of "strange" behaviour that the upper word of eax is zeroed.

Thus: what is the reason why this behaviour was introduced? At a first glance it seems illogical (but the reason might be that I am used to the quirks of x32 assembly).

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If you Google for "Partial register stall", you'll find quite a bit of information about the problem they were (almost certainly) trying to avoid. –  Jerry Coffin Jun 24 '12 at 14:38
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2 Answers 2

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I'm not AMD or speaking for them, but I would have done it the same way. Because zeroing the high half doesn't create a dependency on the previous value, that the cpu would have to wait on. The register renaming mechanism would essentially be defeated if it wasn't done that way. This way you can write fast 32bit code in 64bit mode without having to explicitly break dependencies all the time. Without this behaviour, every single 32bit instruction in 64bit mode would have to wait on something that happened before, even though that high part would almost never be used.

The behaviour for 16bit instructions is the strange one. The dependency madness is one of the reasons that 16bit instructions are avoided now.

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I don't think it's strange, I think they didn't want to break too much and kept the old behavior there. –  Alexey Frunze Jun 24 '12 at 11:56
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@Alex when they introduced 32bit mode, there was no old behaviour for the high part. There was no high part before.. Of course after that it couldn't be changed anymore. –  harold Jun 24 '12 at 11:59
    
I was speaking about 16-bit operands, why the top bits don't get zeroed in that case. They don't in non-64-bit modes. And that's kept in 64-bit mode too. –  Alexey Frunze Jun 24 '12 at 12:04
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I interpreted your "The behaviour for 16bit instructions is the strange one" as "it's strange that zero-extension doesn't happen with 16-bit operands in 64-bit mode". Hence my comments about keeping it the same way in 64-bit mode for better compatibility. –  Alexey Frunze Jun 24 '12 at 12:09
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@Alex oh I see. Ok. I don't think it's strange from that perspective. Just from a "looking back, maybe it wasn't such a good idea"-perspective. Guess I should have been clearer :) –  harold Jun 24 '12 at 12:12
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It simply saves space in the instructions, and the instruction set. You can move small immediate values to a 64-bit register by using existing (32-bit) instructions.

It also saves you from having to encode 8 byte values for MOV RAX, 42, when MOV EAX, 42 can be reused.

This optimization is not as important for 8 and 16 bit ops (because they are smaller), and changing the rules there would also break old code.

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If that's correct, wouldn't it have made more sense for it to sign-extend rather than 0 extend? –  Damien_The_Unbeliever Jun 24 '12 at 11:54
    
@Damien_The_Unbeliever Possibly. But zero-extension is extremely cheap. –  Alexey Frunze Jun 24 '12 at 11:57
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@Alex: And sign-extension isn't? Both can be done very cheaply in hardware. –  jalf Jun 24 '12 at 11:59
    
In x32 assembly this is what the MOVZX instruction is for. So I don't believe this is the final answer. –  Nubok Jun 24 '12 at 12:01
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@Alex: no it's not. It would be a bit slower if done in software, sure, but in hardware, it'd, at worst, cost a few more transistors, which, on a chip the size and complexity of a modern CPU, that's really not an issue. –  jalf Jun 24 '12 at 14:03
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