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I type this code in c: __asm__("mov $10, %rsi"); printf("%x"), It print a.
I debug it in gdb, found that the result store int register esi.
QUESTION: why the result is esi?

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Good question! EDIT: ybungalobill already stole that answer! –  octatoan Apr 23 '13 at 8:31
    
How did you determine that the result (presumably you mean the return value of printf, which should be 2) is stored in esi ? –  nos Apr 23 '13 at 9:18
    
__asm__("mov $10, %rsi"); edit the esi/rsi value, I have try some other value. –  sumous Apr 23 '13 at 9:21

2 Answers 2

printf("%x") tries to get a second argument, but it isn't there, so it just reads the memory where it should have been, finds whatever garbage is there, and prints it.

In short: it is undefined-behavior.

EDIT: the reason you see the same value as in the esi register, is that this value was computed as part of some earlier (but recent) computation in your program and stored at the same location printf tries to read from. The fact that the two locations coincide is purely accidental, within the realm of undefined-behavior.

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What it does find, it treats as an unsigned int and prints the hex code (in lower-case) for that (which is what %x does). –  Thilo Apr 23 '13 at 8:32
    
@ybungalobill How does it know where the address should have been? Or in other words it reads from where? –  user1944441 Apr 23 '13 at 8:34
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@Armin: It's "implementation defined". Look at the source code of your library/compiler, or consult your compiler or ABI documentation. –  Kerrek SB Apr 23 '13 at 8:35
    
@Armin: the arguments are pushed sequentially to the stack, so the "next one" is the one following the previous. The exact details are ABI/architecture dependent. –  ybungalobill Apr 23 '13 at 8:36
    
@ybungalobill I add a line __asm__("mov $10, %rsi"); printf("%x"); , got a. –  sumous Apr 23 '13 at 8:49

When calling printf("%x"), it happens, that the arguments which it needs are pushed to the stack (in reverse order) and eventually, the function is called using assembly command call. When providing your format string "%x", printf() expects at least ONE argument following, so it will read the value next on the stack, which could be anything...
So this behavior is actually undefined and often the cause for exploits, because you can corrupt the stack.

Maybe a little excourse on this topic.

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Isn't the return address pushed to the stack as well once the arguments are pushed in reverse order? –  Rüppell's Vulture Apr 23 '13 at 8:40
    
@SheerFish: typically (including x86 and amd64 architectures) it is the call instruction that does that. –  ybungalobill Apr 23 '13 at 8:42
    
I am not a 100% sure now, but I think so... It must be somewhere so ESP/RSP knows where to go next. But this is implementation and OS dependent... –  bash.d Apr 23 '13 at 8:43
    
@bash.d: my platform is gcc+gentoo –  sumous Apr 23 '13 at 9:04

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