0

There are many finite state machine asked questions but all are not related to my problem.

I need 5 methods

S0     S1   S2   S3   and read the input

We start in

S0

We want to print the state → 0 and the output 0→

Read input First is in ebx and the second will be in eax

  . If (ebx ==0&&eax==0)
  Call S0
  .elseif (ebx==1)&&(eax==1)
 Call S1
  .else
 Call S2
.endif

Do the complete program

here is my code: The problem here is input is not working. If i input 00,01,11 -> it all give me same output which is not right. I want to enter 00 and call S0, enter 11 call S1. It is not doing that i don't why. Can anyone figure out.

TITLE finite state machine
INCLUDE Irvine32.inc
E = 13
.data
invalidMsg BYTE 'Ivalid input',0
a DWORD ?
b DWORD ?
count dword ?
prompt1 byte 'Enter 0 or 1: ',0
prompt2 byte 'Enter 0 or 1: ',0

num1 byte 'The output is now 1  ',0
num2 byte 'The ouput  is now 0',0

num3 byte 'The state is now 0 ',0
num4 byte 'The state is now 1 ',0
num5 byte 'The state is now 2 ',0
num6 byte 'The state is now 3 ',0
.code
main PROC
call clrscr
    mov edx,offset prompt1
    call writestring
    call readint
    mov a,ebx

    mov edx,offset prompt2
    call writestring
    call readint
    mov b,eax

    .if(ebx ==0 && eax == 0)
        call S0
    .elseif(ebx == 1 && eax == 1)
        call S1
    .elseif(ebx == 0 && eax == 1)
        call S2
    .else
        call S3
    .endif
    exit
main ENDP
S0 proc
    mov edx,offset num3
    call writestring
    call crlf
    mov edx,offset num2
    call writestring
    call readint
    ret
S0 endp
S1 proc
    mov edx,offset num4
    call writestring
    call crlf
    mov edx,offset num2
    call writestring
    ret
S1 endp
S2 proc
    mov edx,offset num5
    call writestring
    call crlf
    mov edx,offset num1
    call writestring
    call crlf

    ret
S2 endp
S3 proc
    mov edx,offset num6
    call writestring
    call crlf
    mov edx,offset num1
    call writestring
    ret
S3 endp
END main

0

I assume that a and b are your states? So you store the state there but you call functions in between, so I would assume that ebx is trashed before you check it.

call writestring
call readint
mov a,ebx

mov edx,offset prompt2
call writestring
call readint
mov b,eax

So here you would need to restore at least ebx to before you can do the check (eax already contains the value).

mov  a, ebx

Not sure if a is supposed to be in eax though, so you may have to exchange them as well.

 xchg eax, ebx

Also I'm a bit surprised that you call readint and move ebx to a and right after you call readint again, but this time move eax to b. I would think that readint returns the value in eax, right (you didn't provide the code)? So what value would be in ebx on the first call? It probably should be also

mov b, eax

update

mov edx,offset prompt1
call writestring
call readint
mov a,eax

mov edx,offset prompt2
call writestring
call readint
mov b,eax

mov eax, a
mov ebx, b
  • I try them all it goes straight to .else part where it prints only S3 and all others are ignored. If i change the code around, it only reads one register. I don't know how to read two inputs from user into two different register. – lhag Dec 7 '13 at 15:47
  • What did you try? I already told you whats wrong, so it shouldn't be to hard to fix it. – Devolus Dec 7 '13 at 15:50
  • I did it exact the same way but whatever input i use it jumps all the way down to .else which is call S3. It ignore the inputs before it. – lhag Dec 7 '13 at 16:15
  • Then your problem must be in the code that you don't show. readint I assume. Try to create a short example with reading a single value and see if you get the expected result. If this works, it shouldn't be to hard to extend it to the second value. – Devolus Dec 7 '13 at 16:19
  • I can work with only one register but not two. readint is not my procedure it is MASM defined DIRECTIVE similar to call writetstring call readint -> reads input from user. I think readint only reads eax not ebx. – lhag Dec 7 '13 at 16:34
-2
TITLE Finite State Machine              (Finite.asm)

; This program implements a finite state machine that
; accepts an integer with an optional leading sign.

INCLUDE Irvine32.inc

ENTER_KEY = 13
.data
InvalidInputMsg BYTE "Invalid input",13,10,0

.code
main PROC
    call Clrscr

StateA:
    call    Getnext             ; read next char into AL
    cmp al,'+'          ; leading + sign?
    je  StateB              ; go to State B
    cmp al,'-'          ; leading - sign?
    je  StateB              ; go to State B
    call    IsDigit             ; ZF = 1 if AL contains a digit
    jz  StateC          ; go to State C
    call    DisplayErrorMsg     ; invalid input found
    jmp Quit

StateB:
    call    Getnext             ; read next char into AL
    call    IsDigit             ; ZF = 1 if AL contains a digit
    jz  StateC
    call    DisplayErrorMsg     ; invalid input found
    jmp Quit

StateC:
    call    Getnext             ; read next char into AL
    call    IsDigit             ; ZF = 1 if AL contains a digit
    jz  StateC
    cmp al,ENTER_KEY        ; Enter key pressed?
    je  Quit                ; yes: quit
    call    DisplayErrorMsg     ; no: invalid input found
    jmp Quit

Quit:
  call WaitMsg 
    call    Crlf
    exit
main ENDP

;-----------------------------------------------
Getnext PROC
;
; Reads a character from standard input.
; Receives: nothing
; Returns: AL contains the character
;-----------------------------------------------
     call ReadChar          ; input from keyboard    call WriteChar     ; echo on screen
     ret
Getnext ENDP

;-----------------------------------------------
DisplayErrorMsg PROC
;
; Displays an error message indicating that
; the input stream contains illegal input.
; Receives: nothing. 
; Returns: nothing
;-----------------------------------------------
     push  edx
     mov      edx,OFFSET InvalidInputMsg
     call  WriteString
     pop      edx
     ret
DisplayErrorMsg ENDP
END main

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