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I know I succeed in writing my code to that address using int 13h because I can see it at that memory location. What I can't do is jump there.

I put 0x1000 (three zeros there) into es and 0x0000 into bx and I know that [es:bx] means the address calculated by (es * 0x10) + bx which does equal 0x10000 (four zeros there). But eip, the instruction pointer, never does go there.

I've tried jmp [es:bx], jmp 0x1000:0x0000, and a bunch of other permutations that NASM doesn't even accept.

My boot loader as it currently is (which still isn't working) is here. I booted it up in Qemu and did a memsave on the first 50 bytes at 0x10000, opened it up with tweak, and saw my "kernel" code there (simple . But EIP still refuses to be 0x10000, or reach it and then hang where I want it, is what I mean). Full images of the situation here

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Edit my bad you provided the code. –  chadpeppers Jun 22 '12 at 22:21
2  
Setting EIP in a 16-bit program is going to be difficult, that's a 32-bit register. The value of IP will be 0 after the jump. –  Hans Passant Jun 23 '12 at 0:35
    
@Pete - jmp [es:bx] would be an indirect jump to the address stored at [es:bx]. However, jmp seg:offset or jmp far seg:offset should work. And, like Hans says, at 0x1000:0 you would have CS=0x1000 and IP=0. –  Bo Persson Jun 23 '12 at 3:29

2 Answers 2

up vote 1 down vote accepted

A far jump can't use use a memory location just for the segment. Here are several ways you can do it:

1) simple hardcoded address for both segment and offset.

jmp 0x1000:0

2) indirect jump using a full address:

entry dw 0x0000 ; offset
      dw 0x1000 ; segment

jmp far dword ptr [entry] ; far jump (syntax might differ)

3) a far return

push SYSADDR ; segment
push 0       ; offset
retf         ; far return

A common trick used in DOS time was patching the intruction:

  mov ax, SYSADDR
  mov word ptr [myjump+1], ax
myjump:
  jmp 0x0000:0x0000

or using a part of it as a variable:

myjump:
  db 0xEA           ; far jmp opcode 
  dw 0x0000         ; offset part
  SYSADDR dw 0x1000 ; segment part

Disclaimer: all of the aboves come from memory and I might have gotten some parts wrong (e.g. the order of segment/offset was very confusing).

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You should be able to do exactly what you're trying. Here's an example that does the same thing, presumably for the same reason:

; http://www.free2code.net/tutorials/view/writing_your_own_operating_system-12/page1.html
...
mov bx,0x1000  ;Es and Bx put together are where to load the program too 
               ; (see jmp x1000:0x00)
mov es,bx
mov bx,0x00
int 13h        ;Int 13 is all functions for disks
...
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