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Assembly Language 8086:

I Want add value1 to value2 by using 32bit register and give value under 64bit(equals to 16 digits).. it is Possible to use the space of 2 reg (32+32 = 64bit)?... i Think so it can b done by using PTR OPERATOR but i dont know how to use PTR Instruction..

I have make the program for addition it takes two values in console and gives us result.. it can only take value under 32 bits(8 digits) if we give higher value then it will give error of integer overflow in console

I am using KIP.R.IRVINE Link Libraries in Assembly Language

how we will give 64bit value by using 32bit reg? or how we will enable 32bit reg to take 64bit value?

here is the code for 32-bit addition

INCLUDE Irvine32.inc

.data

Addition BYTE "A: Add two Integer Numbers", 0

inputValue1st BYTE "Input the 1st integer = ",0
inputValue2nd BYTE "Input the 2nd integer = ",0

 outputSumMsg BYTE "The sum of the two integers is = ",0

 num1 DD ?
 num2 DD ?
 sum  DD ?

 .code

 main PROC

;----Displays addition Text-----

mov edx, OFFSET Addition
call WriteString
call Crlf
;-------------------------------

; calling procedures here

call InputValues
call addValue
call outputValue

call Crlf

jmp exitLabel


main ENDP


; the PROCEDURES which i have made is here


InputValues PROC
;----------- For 1st Value--------


call Crlf
mov edx,OFFSET inputValue1st ; input text1
call WriteString

; here it is taking 1st value
call ReadInt    ; read integer
mov num1, eax   ; store the value




;-----------For 2nd Value----------



mov edx,OFFSET inputValue2nd ; input text2
call WriteString


; here it is taking 2nd value
call ReadInt    ; read integer
mov num2, eax   ; store the value

ret
InputValues ENDP




;---------Adding Sum----------------

addValue PROC
; compute the sum

mov eax, num2  ; moves num2 to eax
add eax, num1  ; adds num2 to num1
mov sum, eax   ; the val is stored in eax

ret
addValue ENDP

;--------For Sum Output Result----------

outputValue PROC

; output result

mov edx, OFFSET outputSumMsg ; Output text
call WriteString


mov eax, sum
call WriteInt ; prints the value in eax


ret
outputValue ENDP


exitLabel:
exit


END main
share|improve this question
    
PTR is not an instruction and obviously 64 bits don't fit in 32 bits. The sum of two 32-bit numbers is only 33 bits though, and the extra bit is in the carry flag. –  harold Apr 20 '13 at 18:01
    
i can use 2 reg of 32bit and give 64bit value but i dont have idea how to use it... –  Mustafa Halai Apr 20 '13 at 20:02

1 Answer 1

You can simply use CF (carry flag) to determine if there was some overflow when adding two integers. Addition carry of two n-bit wide integers can never be greater than one bit, but note that you can do this only when talking about unsigned addition. Signed addition with 64-bit result needs two 64-bit integers.

Here is example of unsigned 32-bit addition resulting to one-bit carry.

mov eax, (1<<31)|1 ;set Most-Significant Bit (MSB) to 1, what will surely cause overflow
mov ebx, (1<<31)|1
add eax, ebx
jc .go             ;we need another bytes for our carry

signed version:

;let eax and ebx be the numbers we want to add
cdq   ;expand 4-byte integer to 8-byte integer <-- this won't affect real value of EAX
xchg eax, ebx  ;cdq has fixed operands, change eax with ebx
xchg edx, ecx  ;... and edx with ecx
cdq   ;do the same for number that was in EBX

add eax, ebx
adc edx, ecx   ;that 'c' on the end is important, it will add 
               ;the carry flag to the result so possible overflow will be handled
;Result is now in EDX:EAX
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