23

How do you add a 16 and a 8 bit register with carry (for example, HL, and A)?

  • OMG. I haven't done any Z80 programming since POKE-ing machine code into a Sinclair ZX-80 REM statement in 1980 or so. My loss, it's an excellent processor for some tasks right through to today. Dunno, maybe this will help: nemesis.lonestar.org/computers/tandy/software/apps/m4/qd/… – T.J. Crowder Feb 11 '10 at 21:43
  • 6
    +1 just for being a z80 question. Good times. – Kevin Montrose Feb 11 '10 at 21:46
  • Heh... haven't touched it since the Spectrum either (much preferred it to the register-starved 6502). Carl's edited answer looks right from what I remember, though I can't vote it up now, having already vote-changed over the BC order issue. Ah well. – bobince Feb 11 '10 at 21:53
  • 1
    ZX-80? You sissies! I had a TRS-80 Model I Level II with full blown 16KB of mem! :-) – Serge Wautier Jan 13 '12 at 10:12
14

You can't do it directly. You need to copy A into a 16-bit register pair and then do the add:

LD  B, 0
LD  C, A
ADC HL, BC
| improve this answer | |
  • Yea I think that works.. but shouldn't B be 0 and C be A, not the other way around? (wait now it doesn't work anymore since 'ld bc, a' isn't valid) – xkdkxdxc Feb 11 '10 at 21:47
  • Yeah, quite possibly. Sorry don't remember the right order off the top of my head. Edited back. – Carl Norum Feb 11 '10 at 21:50
  • 1
    I thought you wanted with Carry? – Carl Norum Feb 11 '10 at 21:53
  • 2
    C holds the lower byte, B the higher byte. So, yeah, B should be the zero. – bart Feb 12 '10 at 0:57
  • 1
    For posterity: make sure to compare this to James's answer below (add a,l \ ld l,a \ adc a,h \ sub l \ ld h,a) which is faster (20 cycles < 22 cycles), uses fewer registers, works more generally (for BC += A or DE += A), but is one byte longer. – Lynn Jul 12 '18 at 18:45
26

I would like to point out that the checked response (by Carl Norum) is correct, but not the best answer. The following shows the speed of the two strategies with clock cycles. Using the right solution saves time, and won't destroy a second 16 bit register pair.

  4   ld c,a            4   add a,l
  7   ld b,0            4   ld l,a
  11  add hl,bc         4   adc a,h
                        4   sub l
                        4   ld h,a

However, the solution on the right does take an extra byte of code.

| improve this answer | |
  • 5
    I don't agree with the statement "fastest=best". Memory is usually an expensive resource on such machines. Hence "uses one more byte" is an important downside. OTOH, the "saves one register" argument is a nice one. Up to the OP to make his pick – Serge Wautier Jan 19 '12 at 17:03
  • 2
    Good point. I should have said "is not necessarily the best answer". – James Feb 26 '14 at 6:49
  • 2
    Registers can be a very precious resource though, so not using another 2 extra registers is a big win too. – Pepijn Aug 7 '16 at 13:38
-4

From http://nemesis.lonestar.org/computers/tandy/software/apps/m4/qd/opcodes.html

Add Byte with Carry-In Instructions
8080 Mnemonic Z80 Mnemonic  Machine Code Operation
ADC  M        ADC A,(HL)    8E           A <- A + (HL) + Carry
| improve this answer | |
  • This is adding the contents of an 8 bit memory location to the 8 bit accumulator A. – Paul R Feb 11 '10 at 21:48
  • (HL) means the contents of the byte address pointed to by HL, though... I don't think that's what the OP is trying to do. – bobince Feb 11 '10 at 21:49

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.