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I was looking at some snippet and saw these lines (part of the .com file):

  DB 66; 
  CALL D59C:C2C0; 
  INT 69
  MOV SI, C8C6

What does INT 69 do?

I didn't find anything online, and I didn't find anything here as well:

The weird thing is that there is no moving any value to AH or AL before the INT 69.

EMU8086. 8086 microprocessor emulator. Integrated disassembler.

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2  
It is OS defined. We can't answer this without knowing what operating system it is for. –  ughoavgfhw Nov 15 '11 at 23:25
    
it is on windows XP. –  0x90 Nov 15 '11 at 23:31
    
Unless you're doing something deeply exotic, running 16 bit code on Windows XP actually runs it inside a DOS emulator. So you want to go look up DOS references --- see Bob Kaufman's answer of Ralf Brown's Interrupt List, which is the reference for this stuff. (Although note that Windows XP itself uses int 0x2e for its own purposes.) –  David Given Nov 15 '11 at 23:36
    
INT 69 is 45h. That wasn't a standard interrupt on the PC or MS-DOS. What does this program do? Does it install its own handler for INT 69? –  Jim Mischel Nov 15 '11 at 23:57
    
It's French, who knows... –  Hans Passant Nov 16 '11 at 0:02

3 Answers 3

up vote 9 down vote accepted

Assuming that everything is in hex here, if this is 16-bit code then we have:

66                         DB 66
9A C0 C2 9C D5             CALL D59C:C2C0
CD 69                      INT 69
BE C6 C8                   MOV SI, C8C6

But 0x66 is the operand size override prefix (presumably just not disassembled properly here), which (in 16-bit code) causes the following instruction to take a 32-bit operand instead of a 16-bit one. So this code is actually:

66 9A C0 C2 9C D5 CD 69    CALL 69CD:D59CC2C0
BE C6 C8                   MOV SI, C8C6

A far call to a fairly random-looking 16:32 bit absolute address from 16-bit code doesn't look very plausible to me.

So I would guess that this is actually data, rather than code...

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Assuming that the given code is meant to execute in 16-bit mode and encodes consecutive instructions, I have a different interpretation of it.

DB 66 is the operand size prefix. In 16-bit mode it tells the CPU to interpret instruction operands as 32-bit instead of 16-bit. So, the CALL instruction will be interpreted as CALL 16-bit selector:32-bit offset instead of CALL 16-bit selector:16-bit offset. The "missing" 2 bytes of the address are the INT 69 "instruction".

The effective code is then this:

CALL 69CD:D59CC2C0
MOV SI, C8C6

But that doesn't make much sense to me because a call with such an address (offset > 0FFFFh) will cause an exception. What kind of code is that?

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A search for x86 interrupts yielded this list, presumably written by one Ralf Brown. If it's what I believe it is, this is the definitive list of interrupts from a generation ago. Brings back memories.

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