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I am trying to write a function that determines the length of a string given as the first argument, so %rdi will contain char *ptr. When I call movb (%rdi),%rcx to move the character pointed to by %rdi into %rcx, I get the following error:
incorrect register '%rdx' used with 'b' suffix As I understand it, only certain registers can hold a byte in x86-64, so which ones can I use to move the byte into? Or is the method I am using to extract the character at each byte in the string incorrect?

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1 Answer 1

All the general-purpose registers have the low 8 bits separately addressable as al, bl, cl, dl, sil, dil, bpl, spl, r8b through r15b (intel documentation uses l suffix). In addition, a few have bits 8..15 also addressable, namely ah, bh, ch and dh.

So if you only want to load a byte, you can use one of the above. Alternatively, you can use zero- or sign-extension to widen the byte data, for example in your case movzbl (%rdi), %ecx (read: move zero extended byte to long). Note that operating on 32 bit registers zeroes the top 32 bits of the "parent" 64 bit register, but operating on 8 or 16 bit sub-registers leaves the rest of the bits unchanged.

I feel you should probably (re-)read the basic architecture section of the intel manuals.

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+1, using zero/sign extensions is important, if you keep your upper bytes you create false dependencies and introduce implicit merges all over the place, this might incur quite a penalty! –  Leeor Oct 29 '13 at 14:55

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