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I've read a few tutorials and examples, but I cannot wrap my head around how the MUL instruction works. I've used ADD and SUB without problems. So apparently this instruction multiplies its operand by the value in a register. What register (eax, ebp, esp, etc.) is multiplied by the first operand? And what register is the result stored in, so I can move it to the stack? Sorry, I'm just learning x86 assembly.

When I try to compile this line...

mul     9

I get, "Error: suffix or operands invalid for 'mul'". Can anyone help me out? Thanks.

    global  main
    push    ebp
    movl    ebp, esp
    sub     esp, byte +8
    mov     eax, 7
    mul     9
    mov     [esp], eax
    call    _putchar
    xor     eax, eax
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5 Answers 5

the destination operand is an implied operand located in register AL, AX or EAX (depending on the size of the operand); the source operand is located in a general-purpose register or a memory location

The result is stored in register AX, register pair DX:AX, or register pair EDX:EAX (depending on the operand size), with the high-order bits of the product contained in register AH, DX, or EDX, respectively. If the high-order bits of the product are 0, the CF and OF flags are cleared; otherwise, the flags are set.

In your source it should be mul instead of mull

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I updated the OP. – Tanner Babcock Dec 25 '10 at 5:38

MUL can't use an immediate value as an argument. You have to load '9' into a register, say,

 movl    $7, %eax
 movl    $9, %ecx
 mull    %ecx

which would multiply eax by ecx and store the 64-bit product in edx:eax.

There's a good comprehensive reference of x86 assembly instructions on the Intel web site, see here

But that is probably far more information that you need now.

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I'll give you a link to my favorite easy-to-read, but complete, reference for x86:

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I'm not an expert but I think you're problem is that mul will not accept a direct operand in your case the decimal constant 9 so try puting 9 in let's say register bx like this:

mov bx,9

mul bx

To answer your question about mul in general it looks like this:

mul reg/memory

and does that:

dx:ax := ax*reg/mem

So with words it expects a single operand which should either be a register or a memory loaction (storing the value to be multiplied so essentialy a variable) and multiplies it by ax and then depending on how long the register/memory(so the operand you gave) was stores it in either ax or dx:ax or edx:eax

I hope I helped you there pal!

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How to read on the Intel manual to see that it is not possible

First download the Intel manual. Current download page is: but just Google "intel x86 manual" as that is bound to change.

What we want is the Combined Volume 2 Instruction Set Reference A-Z which contains all instructions.

In that manual, find the documentation for DIV. We see that DIV has the following forms under the Instruction column:

  • DIV r/m8
  • DIV r/m16
  • DIV r/m32
  • DIV r/m64

r/mX means that it can take a register or memory location of size X.

Therefore, there is no form that takes immX, which is an immediate value, or literal.

So it is not possible to encode that instruction to the processor, and now we know that the only way to go is pass through registers or memory.

Registers are faster, so we use them of course if possible.

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