2

I'm trying to understand the difference between these two commands in AT&T assembly language.

movl    %edx, %eax
movl    (%ebx), %eax

I understand that the first command takes the value in %edx and puts that value in %eax. My understanding is that the second one is ...something... to do with pointers. But wouldn't %ebx be the address and whatever value it contains be the value at that address?

I've looked a lot of different tutorials, wiki articles, powerpoints, and stack overflow posts, but I can't find anyone that's clearly explained it. The best I've seen is at http://www.scs.stanford.edu/nyu/04fa/notes/l2.pdf.

They give the example

movl    %edx, %eax    //edx = eax
movl    (%ebx), %eax  //edx = *((int32_t*) ebx)

Which confirms I was right about the first, but the second they are typecasting ebx as a pointer or..? It's part of an assignment for class which I accidentally came across the answer while searching for existing questions. The assignment is almost identical to C, Assembly : understanding the switch condition, edx eax ecx and Pointers in Assembly, but honestly I didn't read those because I don't want to learn what the answers are from the posts, I want to learn how to do it and check my work against them.

Thanks if you can help!!

7
  • In the second case ebx is treated as an address. in C it would be int32_t *ebx; *ebx = eax – Gábor Buella Mar 23 '14 at 19:03
  • 1
    Two things to remember: There are no "types" in assembler the same way there is in C. The second thing is that a pointer is something whose value is an address to the pointed to value. And if you don't really understand what the syntax (%ebx) really means, you need to learn assembly better first. – Some programmer dude Mar 23 '14 at 19:04
  • @BuellaGábor would that really be *ebx = eax? Isn't eax the value being set? – Elly Post Mar 23 '14 at 19:09
  • @JoachimPileborg - I concur I really need to learn assembly better. That's what this class I'm taking is, and that's why I'm posting here for additional help :) – Elly Post Mar 23 '14 at 19:10
  • @ElliottPost I don't use assembly generally, so I don't remember which syntax has what order and so on. Anyways, the point is, (%ebx) means addressing the memory, so if %ebx == 76 then (%ebx) means get/set the value at address 76 in RAM – Gábor Buella Mar 23 '14 at 19:13
3

http://en.wikipedia.org/wiki/X86_assembly_language#Syntax

The ATT syntax uses source before destination, so

movl %edx, %eax

is equivalent to

eax = edx

The more complicated example

movl (%ebx), %eax

is equivalent to

eax = *((int32 *) ebx;

The reason for the int32 is that the instruction has the letter l at the end (that's a lower case L). Different letters specify different types, but l specifies a signed 32-bit number. The parentheses around (%ebx) indicate that an effective address is being specified. An effective address has only one mandatory element (the BASE address), and 3 optional elements. In your example, only the mandatory base address is supplied. When given an instruction with an effective address, the address is computed as follows

address = base + index * scale + displacement

In the C version of the statement, casting ebx to an (int32 *) converts the value in ebx to a pointer that points to an int32 at the effective address, and then dereferencing that pointer reads the 32-bit number at that address.

2
  • 1
    A generic question to check my understanding: if ebx = 0x00FF, then movl (%ebx), %eax, finds the value at memory location 0x00FF and puts that into %eax? Thus, the effective address, in this example, is 0x00FF? – Elly Post Mar 23 '14 at 19:36
  • 1
    Yup, that's right. The byte at 0x00ff goes into the lowest 8-bits of %eax. The byte at 0x0100 goes into the second lowest 8-bits of %eax, and so on for four bytes. – user3386109 Mar 23 '14 at 19:39

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.