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ATT syntax.

I'm trying to understand what the following piece of assembly code does:

movl  8(%ebp), %edx
movl  $0, %eax
testl %edx, %edx
je    .L7
.L10:
xorl  %edx, %eax
shrl  %edx
jne   .L10
.L7:
andl  $1, %eax

It's supposed to be the body of a function with one parameter: unsigned x. I know that this is a do-while loop but how can I completely convert it to C code?

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1  
is this a homework assignment? –  dwelch Jan 30 '13 at 3:43
    
What have you tried so far that isn't working? This isn't a code translation service; you need to make some effort to figure things out yourself, and then ask specific questions here if you run into problems. –  Ken White Jan 30 '13 at 3:46
    
This is practice problem I can't figure out. I'll ask more specific questions from here on out. –  amorimluc Jan 30 '13 at 3:51
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3 Answers

up vote 3 down vote accepted
unsigned int function(unsigned int x)
{
  unsigned int a = 0;

  while (x != 0)
  {
    a = a ^ x;
    x = x >> 1;
  }

  a = a & 1;

  return a;
}
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1  
what about the update of a ? –  lbonn Jan 30 '13 at 4:20
1  
Where does the xor come into play? What does it do? –  amorimluc Jan 30 '13 at 4:20
    
It basically do nothing. x xor 0 = x. I don't think this code makes any sense. –  user1920281 Jan 30 '13 at 4:24
    
@user1920281 you could replace your function with return 0; which will behave the same. The eax register is modified by the xor and carried to the next iteration, this code actually does something. –  lbonn Jan 30 '13 at 4:31
    
@lbonn if the asm means edx = edx ^ eax how can it carry over to eax? I don't know much about asm just want to learn. –  user1920281 Jan 30 '13 at 4:38
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It is important to remember that eax is the return register in x86 (even though this snippet does not contain the ret instruction). Here, the function returns true if the first bit of eax is 1.

This algorithm xor all bits of the input and return the resulting bit.

It can be summarized in a short high-level sentence: it returns 1 if the numbers of 1 bits of the input is odd and 0 if it's even (you need to think a little about it to see it, I can explain more thoroughly if you need more details).

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Easy:

void or unsigned some_function(unsigned x)
{
  unsigned edx = x;
  unsigned eax = 0;
  if (edx == 0)
    goto L7;
L10:
  eax ^= edx;
  if ((edx >>= 1) != 0)
    goto L10;
L7:
  eax &= 1;
  // ...
}
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shrl %edx is not incomplete. If there is no shift count, it is implied to be 1, so the C code would be edx >>= 1. –  ughoavgfhw Jan 30 '13 at 4:12
    
@ughoavgfhw You're probably right. Updated. –  Alexey Frunze Jan 30 '13 at 4:19
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