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So I have the following assembly language code which I need to convert into C. I am confused on a few lines of the code.

I understand that this is a for loop. I have added my comments on each line.

I think the for loop goes like this

for (int i = 1; i > 0; i << what?) {
    //Calculate result
}

What is the test condition? And how do I change it?

Looking at the assembly code, what does the variable 'n' do?

This is Intel x86 so the format is movl = source, dest

  movl 8(%ebp), %esi     //Get x
  movl 12(%ebp), %ebx    //Get n
  movl $-1, %edi         //This should be result
  movl $1, %edx          //The i of the loop
.L2:
  movl %edx, %eax
  andl %esi, %eax
  xorl %eax, %edi        //result = result ^ (i & x)
  movl %ebx, %ecx        //Why do we do this? As we never use $%ebx or %ecx again
  sall %cl, %edx         //Where did %cl come from?
  testl %edx, %edx       //Tests if i != what? - condition of the for loop
  jne .L2                //Loop again
  movl %edi, %eax        //Otherwise return result.
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1  
testl %edx, %edx checks if edx is 0. and then jne - jump if not zero. –  Armen Tsirunyan Oct 24 '10 at 12:20
    
Which lines are you confused? In C, a for loop is for(;;) {} –  Alexander Rafferty Oct 24 '10 at 12:33
    
Why are you converting legacy asm into C? –  Alexander Rafferty Oct 24 '10 at 12:34
    
@Abyx Why translate to intel syntax? –  alternative Oct 24 '10 at 13:00
1  
@Abyx But its not unreadable, everything is essentially the same except the ordering... –  alternative Oct 24 '10 at 14:35
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1 Answer 1

up vote 12 down vote accepted

sall %cl, %edx shifts %edx left by %cl bits. (%cl, for reference, is the low byte of %ecx.) The subsequent testl tests whether that shift zeroed out %edx.

The jne is called that because it's often used in the context of comparisons, which in ASM are often just subtractions. The flags would be set based on the difference; ZF would be set if the items are equal (since x - x == 0). It's also called jnz in Intel syntax; i'm not sure whether GNU allows that too.

All together, the three instructions translate to i <<= n; if (i != 0) goto L2;. That plus the label seem to make a for loop.

for (i = 1; i != 0; i <<= n) { result ^= i & x; }

Or, more correctly (but achieving the same goal), a do...while loop.

i = 1;
do { result ^= i & x; i <<= n; } while (i != 0);
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Thank you! That was very helpful. –  Catie Oct 24 '10 at 13:31
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