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Is there something like a modulo-operator in x86 Assembler?

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Which assembly language? Different processors use different languages... –  Jon Skeet Nov 5 '11 at 17:09
Sry, forgot to mention: x86 architecture –  enne87 Nov 5 '11 at 17:12

2 Answers 2

up vote 25 down vote accepted

The DIV instruction (and it's counterpart IDIV for signed numbers) gives both the quotient and remainder (modulo). DIV r16 divides a 32-bit number in DX:AX by a 16-bit operand and stores the quotient in AX and the remainder in DX.


mov dx, 0     
mov ax, 1234
mov bx, 10
div bx       ; Divides 1234 by 10. DX = 4 and AX = 123

In 32-bit assembly you can do div ebx to divide a 64-bit operand in EDX:EAX by EBX. See Intels Architectures Software Developer’s Manuals for more information.

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Thanks much user. That's what I wanted to know. –  enne87 Nov 5 '11 at 20:10
Simple and incredibly awesome answer! –  Ogelami Dec 24 '13 at 0:09
But GCC does not use div because it is slow:… –  Ciro Santilli 六四事件 法轮功 纳米比亚 威视 Jun 1 at 11:03

A more simple way would be the AND operator (for powers of 2).

For example, lets take the random value in Reg. EAX , modulo 64.

The simplest way would be : AND EAX, 63 (=111111 in binary)

The other digits are not of interest to us. (Try it out !)

Logical operations and Bit-Shifting is always faster and better than using MUL / DIV

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Important to note that this only works for powers of 2. –  interjay Dec 21 '14 at 12:38
True, I forgot to mention that ! –  Andreiasw Dec 21 '14 at 13:23

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