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int main()
{
    __asm__("movl $0x1,%%eax;
            movl $0x0,%%ebx;
            int $0x80;
            ":::"eax","ebx");
}

I try to simulate the behavior of exit() in Linux. But in modern Linux I find it's very difficult to do that since some exit handlers will be called after exit(). So I write an old version of exit(). Maybe 10 years ago you can find it in some codes. I compile it with gcc.

gcc -o exit exit.c

And it gives me these messages.

exit.c: In function ‘main’:
exit.c:3:13: warning: missing terminating " character [enabled by default]
exit.c:3:5: error: missing terminating " character
exit.c:4:13: error: expected string literal before ‘movl’
exit.c:6:27: warning: missing terminating " character [enabled by default]
exit.c:6:13: error: missing terminating " character

I have carefully examined my code and I don't think my code is wrong. So what is that?

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2 Answers 2

up vote 3 down vote accepted

You cannot have embedded newlines inside quoted strings

// bad
"two
lines"

Rewrite as

// good
"two\n"
"lines"

The preprocessor will join the strings seamlessly, to

"two\nlines"
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Thanks very much. Maybe some of my reading materials make some mistakes. –  JACK M Apr 18 '12 at 8:42

From what I remember of inline assembly, you probably need to terminate each line with \n\t after the semicolon or something like that.

Clarification:
It is not enough to terminate each line in inline assembly with ;. Inline assembly is fed directly to the assembler by gcc as a string. If you do not terminate each line with \n, the assembler will get strings like movl $0x1,%%eax;movl $0x0,%%ebx; which it will not be able to parse. You probably do not need to use \n\t any longer since gcc can handle assembly files where commands are not preceded by \t.

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Yes, you are right. But ; \n \n\t are all OK. –  JACK M Apr 18 '12 at 8:37

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