发布时间 : 星期二 文章微机原理及接口技术课后习题及参考答案更新完毕开始阅读081f7efaaeaad1f346933fe5
(2)my2_b db 64H
(3)my3_w dw 100 dup(?) (4)my4_c equ 100
(5)my5_c equ
4.9答:(1) mov byte ptr [bx],256;改正――mov word ptr [bx],256
(2) mov bx,offset opw[si];改正――mov bx,offset opw (3) add opbl,opb2;改正――add al,opb2 (4) mov opbl,al+l;改正――mov opbl,al (5) sub al,opw;改正――sub al,opb1
(6) mov [di],1234h;改正――mov word ptr [di],1234h 4.10答: .MODEL SMALL .DATA X DW 1234H Y DW 4321H MAX DW ? .CODE
START: MOV AX,@DATA MOV DS,AX MOV AX,X CMP AX,Y JNZ NEQU
MOV MAX,0FFFFH JMP STOP NEQU: JC NEXT MOV MAX,X JMP STOP
NEXT: MOV MAX,Y STOP: MOV AX,4C00H INT 21H END START
4.11答:.MODEL SMALL .DATA
DAT DW 9234H SIGN DW ? .CODE
START: MOV AX,@DATA MOV DS,AX
MOV AX,DAT
CMP AX,0 JZ STOP
TEST AX,8000H JNZ FU MOV SIGN,0 JMP STOP
FU: MOV SIGN,0FFH STOP: MOV AX,4COOH INT 21H END START 4.12答: DISPLAY MACRO
MOV AH,2 INT 21H ENDM
.MODEL SMALL .DATA X DW 1230H Y DW 1234H Z DW 1234H
.CODE
START: MOV AX,@DATA
MOV DS,AX MOV AX,X MOV BX,Y CMP AX,Z JNZ N1 CMP AX,BX JNZ N2 MOV DL,'Y' DISPLAY
STOP: MOV AX,4C00H
INT 21H
N1: CMP AX,BX
JNZ N3 N2: MOV DL,'X'
DISPLAY JMP STOP N3: CMP BX,Z
JNZ N4 JMP N2 N4: MOV DL,'N'
DISPLAY JMP STOP END START 4.13答: .MODEL SMALL .DATA
DAT DB 12H,23H,0F3H,6AH,20H,0FEH,10H,C8H,25H,34H SUM DW ?
.CODE
START: MOV AX,@DATA
MOV DS,AX MOV CX,10 MOV DX,0 LEA BX,DAT AGAIN: MOV AL,[BX] CBW
MOV DX,AX INC BX LOOP AGAIN MOV SUM,DX MOV AX,4C00H INT 21H END START 4.14答:
.MODEL SMALL .CODE
START: MOV AX,2000H
MOV DS,AX MOV SI,0 MOV DX,0 MOV CX,0FFFFH AGAIN: MOV AL,[SI] CMP AL,20H JNZ NEXT INC DX
NEXT: INC SI LOOP AGAIN MOV AX,4C00H INT 21H END START
4.15. 答:procname PROC [attributes field][USES register list][,parameter field] ┇
Procname ENDP
push和pop的使用是为了保护子程序的调用的现场,比如寄存器的值。本例中要保护的寄存器是ax和dx。
jiafa PROC;用CX,BX传参数――数据的个数和数据的起始地址,结果放在字内存单元SUM和SUM+1
push ax push dx xor ax,ax xor dx,dx
again: add ax, [bx]
adc dx,0 inc bx
inc bx loop again mov sum,ax mov [sum+1],dx pop dx pop ax ret
jiafa ENDP
4.16答: