Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I was wondering, what is the maximum possible length of a CISC instruction on most of today's CISC architectures?

I haven't found the definitive answer yet, but it is suggested that it's 16 bytes long, in theory.

In the video @ around 15:00 mins, why does the speaker suggests "in theory" and why exactly 16 bytes?

share|improve this question
up vote 3 down vote accepted

In practice as well. For the x86-64 AMD has limited the allowed instruction length to 15 bytes. After that, the instruction decoder will give up and signal an error.

Otherwise, with multiple instruction prefixes and override bytes, we don't know exactly how long the instruction could get. No limit at all, if we allow redundant repetitions of some prefixes.

Agner Fog describes the problem:

Executing three, four or five instructions simultaneously is not unusual. The limit is not the execution units, which we have plenty of, but the instruction decoder. The length of an instruction can be anywhere from one to fifteen bytes. If we want to decode several instructions simultaneously, then we have a serious problem. We have to know the length of the first instruction before we know where the second instruction begins. So we can't decode the second instruction before we have decoded the first instruction. The decoding is a serial process by nature, and it takes a lot of hardware to be able to decode multiple instructions per clock cycle. In other words, the decoding of instructions can be a serious bottleneck, and it becomes worse the more complicated the instruction codes are.

See the rest of his blog post here.

share|improve this answer
    
Thank you. All is clear now. – iccthedral Jun 27 '12 at 7:39

Questions is, what’s the longest possible instruction in the x86 instruction set? Answer: you can form a valid x86 instruction with an infinite number of bytes! That’s right, you could fill up an entire 64K ROM image with a single valid instruction. To be more specific, there is no limit to the length of 8086 instructions. Cool! Unfortunately, modern day i386 variants throw a general protection fault when attempting to decode instructions longer than 15 bytes.

So what does an infinitely-long-but-valid 8086 instruction look like? Kinda boring, actually. You could only form an infinitely long instruction by using redundant prefixes in front on the opcodes. Instruction prefixes are bytes pre-pended to the beginning of an instruction that can modify the default address size, data size, or segment registers used by an instruction.

For example, you can take the innocuous looking instruction:

89 E5              mov %sp,%bp

And turn it into a really long instruction:

66 66 66 66 … 66 66 89 E5                mov %sp,%bp

Now that’s just evil.

http://onlinedisassembler.com/blog/?p=23


EDIT: another long instruction without repeating prefixes

In some cases it is possible to encode valid instructions that exceed the traditional 15-byte length limit. For example:

  ; 16-bit mode
  F2 F0 36 66 67 81 84 24 disp32 imm32 =  xaquire lock add [ss:esp*1+disp32],imm32
  F3 F0 36 66 67 81 84 24 disp32 imm32 = xrelease lock add [ss:esp*1+disp32],imm32

  ; 16-bit mode
  36 67 8F EA 78 12 84 24 disp32 imm32 = lwpins eax,[ss:esp*1+disp32],imm32
  36 67 8F EA 78 12 8C 24 disp32 imm32 = lwpval eax,[ss:esp*1+disp32],imm32
  36 67 8F EA 78 10 84 24 disp32 imm32 =  bextr eax,[ss:esp*1+disp32],imm32

  ; 64-bit mode
  64 67 8F EA F8 12 84 18 disp32 imm32 = lwpins rax,[fs:eax+ebx+disp32],imm32
  64 67 8F EA F8 12 8C 18 disp32 imm32 = lwpval rax,[fs:eax+ebx+disp32],imm32
  64 67 8F EA F8 10 84 18 disp32 imm32 =  bextr rax,[fs:eax+ebx+disp32],imm32

http://www.sandpile.org/x86/opc_enc.htm

share|improve this answer
    
Fantastic, I love the website and I'm satisfied with the answer, so +1 ;) – iccthedral Aug 15 '13 at 8:50
    
I've just add another case that without needing to repeat the redundant prefixes, the command is still longer than 15 bytes – Lưu Vĩnh Phúc Sep 19 '13 at 1:43

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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