4

I tried googling this and I couldn't find anything informative enough for my understanding.

int i;
char msg1[] = "odd";
char msg2[] = "even";
char *ptr;
__asm__("                   \
    movl i, %eax\n\
        andl $1, %eax\n\
        jz  zero\n\
        movl $msg1, %eax\n\
        jmp done\n\
zero:\n\
        movl $msg2, %eax\n\
done:\n\
        movl %eax, ptr\n\
  ");

Why does some need $ and the other (such as i) not have a $ sign?

2

$1 is constant one

 `andl $1, %eax` this means do  AND of 1 and EAX register.

$ is prefixed infront of contants and immediate valued. msg1 and msg1 are addresses of the two arrays. So they are too prefixed with $.

i is a c variable. Which is accessed using a memory access (Indirect reference).

Check this reference.

  • msg1 is also a C variable. Why does it have a dollar sign? – Gabe Mar 20 '11 at 5:50
  • msg1 is a label and $msg1 gives the address of that memory location. – Zimbabao Mar 20 '11 at 5:55
1

Constantsneed to be prefixed with a "$".

movl $msg1, %eax\n\

The dollar sign meant a constant, and the same is true for $msg1. The constant here is the address of msg1.

  • You are talking about intel syntax. Above is AT&T syntax. – Zimbabao Mar 20 '11 at 6:03
0

$ here is same as & in C/C++ meaning address-of

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