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Can anyone tell me the purely assembly code for displaying the value in a register in decimal format? Please don't suggest using the printf hack and then compile with gcc.

Description:

Well, I did some research and some experimentation with NASM and figured I could use the printf function from the c library to print an integer. I did so by compiling the object file with the GCC compiler and everything works fair enough.

However, what I want to achieve is to print the value stored in any register in the decimal form.

I did some research and figured the interrupt vector 021h for DOS command line can display strings and characters whilst either 2 or 9 is in the ah register and the data is in the dx.

Conclusion:

None of the examples I found showed how to display the content value of a register in decimal form without using the C library's printf. Does anyone know how to do this in assembly?

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What kind of number is it? Floating point? –  slashingweapon Oct 31 '12 at 19:26
    
Operating system? –  Jens Björnhager Oct 31 '12 at 19:30
    
For simplicity sake, lets assume its an unsigned integer. Say I've got 00000101h in dh how do i get to display 5? Say I've got 00000111h in dh how do i get to display 7? –  Kaustav Majumder Oct 31 '12 at 19:30
    
Im using NASM on Windows 7 (x86) and I'm using the default "com" output format! –  Kaustav Majumder Oct 31 '12 at 19:31
    
It seems to me that "any register" in your message is slightly incorrect. Probably you mean any general register? Eg. ip/eip can not be addressed directly in 16-bit / 32-bit x86 assembly (however, rip can be addressed directly in 64-bit x86-64 assembly). More important matter is that you don't say if you want to print the number as signed or unsigned. And also please note that printing 8-bit number (such as dh) is different than printing 16-bit (such as dx) or 32-bit (such as edx) number. In assembly, these kind of differences really matter. –  nrz Oct 31 '12 at 19:44

3 Answers 3

You need to write a binary to decimal conversion routine, and then use the decimal digits to produce "digit characters" to print.

You have to assume that something, somewhere, will print a character on your output device of choice. Call this subroutine "print_character"; assumes it takes a character code in EAX and preserves all the registers.. (If you don't have such a subroutine, you have an additional problem that should be the basis of a different question).

If you have the binary code for a digit (e.g., a value from 0-9) in a register (say, EAX), you can convert that value to a character for the digit by adding the ASCII code for the "zero" character to the register. This is as simple as:

       add     eax, 0x30    ; convert digit in EAX to corresponding character digit

You can then call print_character to print the digit character code.

To output an arbitrary value, you need to pick off digits and print them.

Picking off digits fundamentally requires working with powers of ten. It is easiest to work with one power of ten, e.g., 10 itself. Imagine we have a divide-by-10 routine that took a value in EAX, and produced a quotient in EDX and a remainder in EAX. I leave it as an exercise for you to figure out how to implement such a routine.

Then a simple routine with the right idea is to produce one digit for all digits the value might have. A 32 bit register stores values to 4 billion, so you might get 10 digits printed. So:

         mov    eax, valuetoprint
         mov    ecx, 10        ;  digit count to produce
loop:    call   dividebyten
         add    eax, 0x30
         call   printcharacter
         mov    eax, edx
         dec    ecx
         jne    loop

This works... but prints the digits in reverse order. Oops! Well, we can take advantage of the pushdown stack to store digits produced, and then pop them off in reverse order:

         mov    eax, valuetoprint
         mov    ecx, 10        ;  digit count to generate
loop1:   call   dividebyten
         add    eax, 0x30
         push   eax
         mov    eax, edx
         dec    ecx
         jne    loop1
         mov    ecx, 10        ;  digit count to print
loop2:   pop    eax
         call   printcharacter
         dec    ecx
         jne    loop2

Left as an exercise to the reader: suppress leading zeros. Also, since we are writing digit characters to memory, instead of writing them to the stack we could write them to a buffer, and then print the buffer content. Also left as an exercise to the reader.

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I suppose you wanna print the value to stdout? If this is the case
you have to use a system call to do so. System calls are OS dependent.

e.g. Linux: Linux System Call Table

The hello world program in this Tutorial may give you some insights.

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Thanks for the suggestion! Im working on Windows 7 (x86) at the moment! Have to crack an ALP exam and will have to assemble codes in Win environment in lab! Will have a look at tutorials though! Much appreciated! :) –  Kaustav Majumder Oct 31 '12 at 20:45

Check out this post, for a full example program that I wrote that does exactly this. System Write Integer

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