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Update: See Eric Postpischil's answer, I think he is right.

I found it on this page when I study inline assembly code.

static inline char * strcpy(char * dest,const char *src)
{
    int d0, d1, d2;
    __asm__ __volatile__(  "1:\n\t"
                           "lodsb\n\t"
                           "stosb\n\t"
                           "testb %%al,%%al\n\t"
                           "jne 1b"
                           : "=&S" (d0), "=&D" (d1), "=&a" (d2)
                           : "0" (src),"1" (dest) 
                           : "memory");
    return dest;
}

I am confused that why three temp variables is needed? I try to implement without using them.

static inline char * strcpy(char * dest,const char *src)
{
    __asm__ __volatile__(  "1:\n\t"
                           "lodsb\n\t"
                           "stosb\n\t"
                           "testb %%al,%%al\n\t"
                           "jne 1b"
                           /* : "=&S" (d0), "=&D" (d1), "=&a" (d2) */
                           :
                           : "S" (src),"D" (dest) 
                           : "memory", "esi", "edi", "al");
    return dest;
}

But I got errors when compile it with gcc.

inline.c: In function ‘strcpy’:
inline.c:6:9: error: can't find a register in class ‘SIREG’ while reloading ‘asm’
inline.c:6:9: error: ‘asm’ operand has impossible constraints
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2 Answers 2

up vote 2 down vote accepted

The original code is trying to deal with the fact that the lodsb and stosb instructions modify registers %ESI, %EDI, and %AL. To do this, it has defined d0, d1, and d2 so that it can declare them as outputs from the assembly code. It does not actually want these values as outputs, so it does not use them after the assembly. However, because they are outputs, the compiler knows that they are modified by the assembly code, so the compiler knows not to keep any values in those registers that it wants to remain unchanged through the assembly code.

It should be possible to do this in another way, and your code better expresses the semantics: It says inputs are provided in %ESI and %EDI and that memory, %ESI, %EDI, and %AL are altered. The original code asserts that %ESI, %EDI, and %AL are outputs, which is not the true intent; they are unwanted byproducts, not desired outputs.

However, your version of GCC is different from mine (Apple/clang-418.0.60); mine accepts the code you wrote without error. I suspect your GCC is confused by the fact that %ESI is specified both as an input register (by "S" after the second colon) and as something that is clobbered (by "esi" after the third colon). Perhaps this was a shortcoming in GCC that was later fixed, and the original code was working around that shortcoming.

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You are right. When I remove the cobbler list, it works fine. :-) –  louxiu Jan 26 '13 at 5:51
    
I suspect removing %ESI and %EDI from the clobber list might allow the code to compile but leave GCC thinking they are used for input but do not change. This does not matter in this isolated strcpy that does not use src and dest again, but suppose it is inlined in code that does. Then GCC might use %ESI or %EDI after he assembly, expecting them to be unchanged. –  Eric Postpischil Jan 26 '13 at 11:04
    
There is inline mov_blk(the 4th "Some Useful Recipes" in that page I cite.), it is similar with that strpy(just in the upper side of mov_blk in that page). I got the same error. Some articles say the ecx, esi, edi are not required in the cobberlist in newer version of GCC. –  louxiu Jan 26 '13 at 11:43

Things are really simple. Lets recall, that S constraint stands for esi, a for al and D for edi register. When you inform compiler, that those guys will be clobbered, you must explicitly point where to spill them (d0 is temporary storage for esi, d1 for edi, d2 for al).

Next in the process of register allocation, compiler decides if he actually need to spill and looks for available register. For example my compiler (gcc 4.7.2) does it as follows:

movq  %rdi, %rdx
1:
lodsb
stosb
testb %al,%al
jne 1b
movq  %rdx, %rax
ret

You may see, that d1 was allocated to rdx, d0 and d2 was eliminated as excessive.

If you don't supply compiler with that information, it can not guess, so outputs error.

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I don't quite understand. You mean the clobbered registers need to be saved? But on my computer, edi, esi have been saved using push. –  louxiu Jan 25 '13 at 11:29
    
Is it enough to put those registers to clobberlist to inform gcc to save them? What's the exact function of the clobberlist? –  louxiu Jan 25 '13 at 11:36
    
Clobber list informs your compiler that something will be clobbered (i.e. unpredictably changed). When doing register allocation, compiler must calculate spill and fill for your clobbered content. There may be spill on stack and fill from it, why not. But to do so for explicitly clobbered register, GCC must associate it with some object with known lifetime and storage class, for example -- local variable like in your case. –  Konstantin Vladimirov Jan 25 '13 at 11:48
    
Thanks, Konstantin Vladimirov. I think I see. :-) –  louxiu Jan 25 '13 at 11:53
    
Exception is clobbering memory -- this case behaves simply as optimization barrier, making compiler avoid to allocating something that resides in memory to (temporary) registers around this barrier. –  Konstantin Vladimirov Jan 25 '13 at 11:53

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