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What is the result of this instruction in powerpc assembler?

. = 0x100

I think this involves program counter but disassembling an executable that uses this instruction something strange in output occurs. This is the simple code:

int main()
{
   __asm__(". = 0x100");
   return 0;
}

and this is the disassembled code:

$ gcc -o prog main.c 
$ objdump -d prog

[...]
100003dc <main>:
100003dc:       94 21 ff f0     stwu    r1,-16(r1)
100003e0:       93 e1 00 0c     stw     r31,12(r1)
100003e4:       7c 3f 0b 78     mr      r31,r1
    ...
100004dc:       38 00 00 00     li      r0,0
100004e0:       7c 03 03 78     mr      r3,r0
100004e4:       81 61 00 00     lwz     r11,0(r1)
100004e8:       83 eb ff fc     lwz     r31,-4(r11)
100004ec:       7d 61 5b 78     mr      r1,r11
100004f0:       4e 80 00 20     blr
[...]

With that instruction there are appeared three dots. What is the meaning of them? How does the GAS traduce this?

Thank you all!

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1 Answer 1

. sets the current location counter as you rightly guessed. In your example you have set the location counter to main()+0x100, i.e. 0x100003dc+0x100 = 0x100004dc. There will be no valid instructions after the instruction at 0x100003e4 up to address 0x100004dc however (you would normally be branching here).

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Thanks Paul but I thought that program counter was moved of a absoulte address and i would guess to find a instruction like a branch...How is encoded that instruction? –  MirkoBanchi Sep 13 '11 at 11:58
    
@Mirko: it's not an instruction, it's an assembler directive - it just changes the relative address at which subsequent instructions will be assembled. –  Paul R Sep 13 '11 at 12:19
1  
The Special Dot Symbol –  user786653 Sep 13 '11 at 17:30

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