I found the assembly instruction

cltd

by disassembling code on an Intel architecture. The description I found was, that it clears the %edx register, but I don't understand what happens.... can anyone explain what the command exactly does?

up vote 1 down vote accepted

cltd converts signed long to signed double long

If you want to see a diagram of what happens, jump to page 160 of http://download.intel.com/products/processor/manual/325462.pdf (more details on page 681)

cltd is an alias for cdq (reference), which sign-extends eax into edx:eax.

What this means in practice is that edx is filled with the most significant bit of eax (the sign bit). For example, if eax is 0x7F000000 edx would become 0x00000000 after cdq. And if eax is 0x80000000 edx would become 0xFFFFFFFF.

  • I found the description, but I still don't get it :/ – Muten Roshi Jun 18 '13 at 13:45
  • As I say in my answer: edx is filled with the most significant bit of eax (the sign bit). I think that's about as clear as it gets. – Michael Jun 18 '13 at 13:47

It looks pretty straightforward to me: cltd converts the signed long in EAX to a signed double long in EDX:EAX by extending the most-significant bit (sign bit) of EAX into all bits of EDX."

  • Ah, I got it. "sign-extend EAX -> EDX:EAX" thanks for the link ;-) – Muten Roshi Jun 18 '13 at 13:47

Simpler than that, for example:

If the bit is less than 0x7F000000, which is less than 127 in decimal, its "positive", is between 0 to 127.

If the bit is greater than 0x80000000 it's more than 128 in decimal, its "negative", is between -1 and -128.

So edx will get 0x00000000 for pos and 0xffffffff for neg.

For example as a hack it can be used to null edx when you know eax is pos number instead of xor rex, edx.

P.S. cltd might not compile as 0x99 in some asm compilers. Better to use cdq

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