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I'm using the Flat Assembler on Windows 7 64 bit. I'm trying to compile a simple program, but it's compiling as a 16 bit program. Some programs seems to compile fine, but after searching for a while for a hello world example, the program doesn't run.

org 0x100

        mov  dx, msg      ; the address of or message in dx
        mov  ah, 9        ; ah=9 - "print string" sub-function
        int  0x21         ; call dos services

        mov  ah, 0x4c     ; "terminate program" sub-function
        int  0x21         ; call dos services
        msg  db 'Hello, World!', 0x0d, 0x0a, '$'

What should I do to prevent it from compiling as a 16 bit program?

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3  
You will have to stop writing 16-bit assembly code first. Then use the use32 directive. –  Hans Passant Oct 15 '13 at 17:58
    
The FASM assembler probably has a command line flag for 32 bit formats. And might it help if you were using 32 bit registers and 32 bit code? Just throwing it out there... –  username_unavailable Oct 15 '13 at 17:58
1  
@tommycake50 - FASM has no command line flags at all. It compiles exactly what is in the source code and the same source always gives the same binary. –  johnfound Oct 15 '13 at 18:00

2 Answers 2

The quoted source is DOS program (in .com file format) and as a such is properly compiled by FASM as DOS .com executable file.

In order to get 32bit program, well you have to write it first... I can't teach you to write 32bit programs - it is too long for answer format. But you can read the FASM programming manual (you got one in the downloaded FASM package) and check the examples provided.

Also helpful is to read the FASM message board there is a big amount of examples and helpful people.

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You are making DOS COM file. It's apriory 16-bit 'cause DOS is real-mode OS. To get 32-bit executable you need to use PE - portable executable format - Windows executable format. You can find info about it in the Internet; FASM implementation of it - Win programming or PE format

But you can't simple take your program and make it 32-bit, 'cause you are using "int 0x21" - it's system call for DOS

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