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I have a real world program that is similar to this one, which I'll call test.cpp:

#include <stdlib.h>

extern void f(size_t i);

int sample(size_t x)
{
     size_t a = x;
     size_t i;  

     for (i = a-2; i>=0; i--) {
           f(i);   
     }
}

And my problem is that i is an infinite loop.

If I run the following command:

g++ -S -o test.s test.cpp

I get the following assembly sequence:

        .file   "test.cpp"
        .text
        .globl  _Z6samplem
        .type   _Z6samplem, @function
_Z6samplem:
.LFB0:
        .cfi_startproc
        pushq   %rbp
        .cfi_def_cfa_offset 16
        .cfi_offset 6, -16
        movq    %rsp, %rbp
        .cfi_def_cfa_register 6
        subq    $32, %rsp
        movq    %rdi, -24(%rbp)
        movq    -24(%rbp), %rax
        movq    %rax, -8(%rbp)
        movq    -8(%rbp), %rax
        subq    $2, %rax
        movq    %rax, -16(%rbp)
.L2:
        movq    -16(%rbp), %rax
        movq    %rax, %rdi
        call    _Z1fm
        subq    $1, -16(%rbp)
        jmp     .L2
        .cfi_endproc
.LFE0:
        .size   _Z6samplem, .-_Z6samplem
        .ident  "GCC: (Ubuntu/Linaro 4.6.3-1ubuntu5) 4.6.3"
        .section        .note.GNU-stack,"",@progbits

I'm no expert in assembly language, but I would expect to see code for the comparison i >= 0 and a conditional jump out of the loop. What's going on here??

GNU C++ 4.6.3 on Ubuntu Linux

share|improve this question
    
Could you clarify "gets to be negative"? Note that a "size_t" can never be negative, so you will run into an inifite loop as i>=0 is always true. –  niko Jun 29 '12 at 16:13
    
indeed, it's an infinite loop because i wraps to all ones and then on to 0 and so on... the question whas why is there no test in assembly, and the answer is it's being optimised out even though no optimisation has been requested from the compiler. –  deStrangis Jun 29 '12 at 16:33

1 Answer 1

up vote 11 down vote accepted

size_t is unsigned, so the condition i>=0 is always true. It is impossible for i to be negative.

share|improve this answer
    
Fantastic! so the comparison is being optimised away! Thanks. –  deStrangis Jun 29 '12 at 16:13
    
Does that imply that the above loop is an infinite loop because of wrap-around of the integer type? –  Jonas Wielicki Jun 29 '12 at 16:13
2  
@JonasWielicki: Yes. Unless f throws or otherwise causes control not to return to sample, the loop will iterate until the thread is terminated. –  James McNellis Jun 29 '12 at 16:14
    
The practical alternative is i != std::numeric_limits<size_t>::max() which will break the loop on underflow. Or go signed for i if possible. –  Tilman Vogel Jun 29 '12 at 16:15
    
+1 Yes! The compiler suppressed the fact sample never exited! When I changed i to int, the compiler then complained that sample didn't return an int. Great catch! –  HeatfanJohn Jun 29 '12 at 16:32

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