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I just tried out a simple C program using an if statement and analyzed its assembly. However, its behavior differs a lot when -O2 flag is used for compilation.

The C code for the same is :-

#include<stdio.h>

int main(int argc, char **argv) {
    int a;

    if(a<0) {
        printf("A is less than 0\n");
    }
}

And the corresponding assembly is:-

main:
    push    %ebp
    mov %ebp, %esp
    sub %esp, 8
    and %esp, -16
    sub %esp, 16
    test    %eax, %eax
    js  .L4
    leave
    ret
    .p2align 4,,15
.L4:
    sub %esp, 12
    push    OFFSET FLAT:.LC0
    call    puts
    add %esp, 16
    leave
    ret
    .size   main, .-main
    .section    .note.GNU-stack,"",@progbits
    .ident  "GCC: (GNU) 3.4.6"

I read that the test instruction basically just performs the logical AND of the two operands. I also read that the js instruction performs a jump when there is a change in sign in the previous instruction. So, testing eax with eax would give 0 or 1 and the jump would depend on this.

I fail to understand how it is being used here for branching. Could someone explain how this works?

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1  
A good compiler should optimize the whole program to nothing since it has undefined behavior (use of an uninitialized variable). Or, if a were initialized, it should optimize out the conditional based on the value of a. –  R.. Jan 11 '11 at 16:58

6 Answers 6

up vote 11 down vote accepted

JS doesn't jump when there is a change in sign, it jumps if the sign flag is 1.

The sign bit is on if the result of the last operation was negative(negative numbers in 2's compliment have the most significant bit in 1).

So if the AND operation was between two negative integers(-1 & -1) the last bit will be 1(sign flag), so the jump is taken. In case the numbers were positive the last bit would be 0, the jump won't be taken.

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Well I don't know what you expect, but your program has undefined behavior since a is not initialized. So the assembler output could be literally anything.

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3  
Does the whole program get undefined just because a's value is undefined? I assumed it would use whatever was on the stack at invocation. –  nmichaels Jan 11 '11 at 15:05
1  
The program's output could be the printf or it could be nothing, but why would the compiler's output be anything? –  Nathan Fellman Jan 11 '11 at 15:06
1  
In theory the output could be anything, but no real world compiler will output nonsense. –  Axel Gneiting Jan 11 '11 at 15:06
2  
@nmichaels: the program’s behaviour is undefined, yes. That of the whole program. For example, the optimizer could very well conclude that a is never written to, hence its value is undefined, hence any subsequent usage of a can be elided. That would be a completely valid optimization. –  Konrad Rudolph Jan 11 '11 at 15:07
2  
@nmichaels: the standard doesn't require that there is anything on the stack at invocation. The storage for this uninitialized a is permitted to be backed not by RAM, but by a yawning void of chaos, touching which calls an Elder Horror into the world. Or, more realistically, on some architectures the memory could contain a trap representation which causes the hardware to throw a fault when it's loaded into an int register. To permit both of these (and especially the second), behavior of the program is undefined. x86 doesn't need quite this much freedom, but it's there in the standard. –  Steve Jessop Jan 11 '11 at 15:28

The Intel manuals are good for this. This is what it documents for the TEST instruction:

alt text

SF is the sign flag, the one that's tested by the JS opcode. It is set to the most significant bit of eax here, the sign bit. The jump is thus taken when eax contains a negative number.

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If eax is negative, the flags will indicate that after the test instruction and the jump will be taken. That pushes the PC to .L4 which does the printing. Otherwise, we leave.

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test eax, eax will set zero flag if eax = 0

js instruction will check the sign flag basically (a<0)

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test sets all of the arithmetic flags, not just the zero flag. –  Nathan Fellman Jan 11 '11 at 15:05

Looks like when you specify -O2, the compiler is putting your "int a" into a register for speed optimization.

Since you never initialize 'int a', the assembly does not show anything written to eax and it instead has the value that was last assigned to it.

The other answers explain how test is working as a branching mechanism.

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