CSC231 SumProc4.asm

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;;; sumproc4.asm
;;; D. Thiebaut CSC231
;;; fourth of a series of programs illustrating how to pass and receive
;;; information to and from a function in assembly.
;;;
;;; This and all associated programs simply add the contents of
;;; two variables a and b and store the resulting sum in a variable
;;; called result (all are double words)
;;;
;;; this version passes a and b by value through the stack, and 
;;; result by reference, so that the function can directly modify
;;; the variable result.



SYS_EXIT	equ	1
SYS_WRITE	equ	4
STDOUT		equ	1

	;; -------------------------
	;; data segment
	;; -------------------------

	section	.data
a	dd	0x1234		; operand #1
b	dd	0x5555		; operand #2
result	dd	0		; where sum will be stored by function

	;; -------------------------
	;; code area
	;; -------------------------

	section	.text
	global	_start

_start:
	lea	eax,[result]
	push	eax		; push address of result in stack
	push	dword [a]	; push copy of variable a
	push	dword [b]	; push copy of variable b
	call	sum		; call function which will modify
				; variable result directly 

	;; exit()

	mov	eax,SYS_EXIT
	mov	ebx,0
	int	0x80		; final system call

;;; -------------------------------------------------------
;;; sum function
;;; gets 2 dwords from stack and uses address of result to
;;; store sum in it.
;;; registers modified:	 eax ebx
;;;
;;; 
;;; stack looks like this after first 2 instructions:
;;;
;;;         +----------+
;;;         | &result  | <-- ebp+16 (address of result)
;;;         +----------+
;;;         |copy of a | <-- ebp+12
;;;         +----------+
;;;         |copy of b | <-- ebp+8
;;;         +----------+	
;;;         |retrn addr| <-- ebp+4  (plus 4 because double words!)
;;;         +----------+	
;;;         |"old" ebp | <-- ebp <-- esp
;;;         +----------+
;;;         |          | 
		
;;; -------------------------------------------------------
sum:	push	ebp
	mov	ebp,esp

	mov	eax,dword [ebp+8] ; get copy of b
	add	eax,dword [ebp+12] ; add copy of a to it

	mov	ebx,dword [ebp+16] ; get address of result in ebx
	mov	dword [ebx],eax	; store sum at that address
		
	pop	ebp
	ret	12		; we can now get rid of 3 dwords in stack