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

62

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.

Example:

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.

22

If you compute modulo a power of two, using bitwise AND is simpler and generally faster than performing division. If b is a power of two, a % b == a & (b - 1).

For example, let's take a value in register EAX, modulo 64.
The simplest way would be AND EAX, 63, because 63 is 111111 in binary.

The masked, higher digits are not of interest to us. Try it out!

Analogically, instead of using MUL or DIV with powers of two, bit-shifting is the way to go. Beware signed integers, though!

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