What do the dollar ($) and percentage (%) signs represent in x86 assembly?

Question

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? What is the 32 operand an addition to the esp register?

Answer 1

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

the $ prefix is for immediates (constants), and the % prefix is for registers (they are required¹).

For more about AT&T syntax, see also the [att] tag wiki.

---

¹ Unless the noprefix option is specified, see here & here. But usually noprefix is only used with .intel_syntax noprefix, to get MASM-like syntax.

Answer 2

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

Answer 3

Compared to Intel syntax, AT&T syntax has many differences

• $ signifies a constant (integer literal). Without it the number is an absolute address
• % denotes a register
• The source/destination order is reversed
• () is used for memory reference, like [] in Intel syntax

So the above snippet is equivalent to

sub esp, 48         ; esp -= 48
mov [esp+32], eax   ; store eax to the value at the address `esp + 32`

Answer 4

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).

Answer 5

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.