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I am trying to understand how the assembly language works for a micro-computer architecture class, and I keep facing different syntaxes in examples:

sub $48, %esp
mov %eax, 32(%esp)

What do these codes mean? The is the 32 operand an addition to the esp register?

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5 Answers 5

up vote 8 down vote accepted

Thats not Intel syntax, its AT&T syntax, also called GAS syntax.

the $ prefix is for immidiates (constants), and the % prefix is for registers (they are required*).

*Unless the noprefix option is specified, see here & here.

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Thanks a lot, I did not know where to look for this –  jsiodtb Feb 8 '12 at 15:54
    
the % prefix is not required if using noprefix directive stackoverflow.com/questions/549347/… –  Lưu Vĩnh Phúc Jun 19 at 1:51
    
@LưuVĩnhPhúc: Interesting, I've see that directive before, probably cause its extremely poorly documented :( sourceware.org/binutils/docs/as/i386_002dVariations.html –  Necrolis Jun 19 at 6:55
    
that's funny but I've never seen percent mark % being used. –  Alexander Supertramp Oct 27 at 2:54

Yes, "32(%esp)" indicates an offset of 32 from %esp.

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As @Necrolis said, that's written in AT&T syntax. It means:

subtract 48 from the register esp (the stack pointer).
store the contents of eax to the four bytes starting at (esp + 32).
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This is AT&T syntax for x86. In AT&T % generally denotes a register while $ is reserved for immediates. If you omit th $ the assembler would interpret the 48 as an address.

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It's the same to

sub esp, 48
mov [esp+32], eax

in Intel syntax

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Hi - I'm not sure this actually answers the question... what are the $ and % ? –  Taryn East Jun 19 at 1:43
    
@TarynEast they are prefixes for immidiates and registers like Necrolis has said –  Lưu Vĩnh Phúc Jun 19 at 1:45
    
Your post showed up in the "low quality" review queue... for not having enough explanation in it. My recommendation was based on that... Feel free to edit it to say what you have said above ;) –  Taryn East Jun 19 at 1:53

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