77

I have come across the below C++ program (source):

#include <iostream>
int main()
{
    for (int i = 0; i < 300; i++)
        std::cout << i << " " << i * 12345678 << std::endl;
}

It looks like a simple program and gives the correct output on my local machine i.e. something like:

0 0
1 12345678
2 24691356
...
297 -628300930
298 -615955252
299 -603609574

But, on online IDEs like codechef, it gives the following output:

0 0
1 12345678
2 24691356
...
4167 -95167326
4168 -82821648
4169 -7047597

Why doesn't the for loop terminate at 300? Also this program always terminates on 4169. Why 4169 and not some other value?

  • 45
    Probably because signed integer overflow has undefined behaviour. – eerorika Feb 11 '18 at 12:13
  • 17
    I know signed overflow is UB but this is a spectacular fail ... – Galik Feb 11 '18 at 12:14
  • 45
    A good lesson in not assuming UB is constrained – M.M Feb 11 '18 at 12:34
  • 11
    I'm curious as to why you think that first output is "the correct output". – Lightness Races in Orbit Feb 11 '18 at 18:12
  • 5
    @LightnessRacesinOrbit - well, that reminder is valuable! – davidbak Feb 12 '18 at 1:33
102

I'm going to assume that the online compilers use GCC or compatible compiler. Of course, any other compiler is also allowed to do the same optimization, but GCC documentation explains well what it does:

-faggressive-loop-optimizations

This option tells the loop optimizer to use language constraints to derive bounds for the number of iterations of a loop. This assumes that loop code does not invoke undefined behavior by for example causing signed integer overflows or out-of-bound array accesses. The bounds for the number of iterations of a loop are used to guide loop unrolling and peeling and loop exit test optimizations. This option is enabled by default.

This option merely allows making assumptions based on cases where UB is proven. To take advantage of those assumptions, other optimizations may need to be enabled, such as constant folding.


Signed integer overflow has undefined behaviour. The optimizer was able to prove that any value of i greater than 173 would cause UB, and because it can assume that there is no UB, it can also assume that i is never greater than 173. It can then further prove that i < 300 is always true, and so the loop condition can be optimized away.

Why 4169 and not some other value?

Those sites probably limit the number of output lines (or characters or bytes) they show and happen to share the same limit.

  • 2
    If the compiler can prove that there will be UB for any value of i greater than 173, so why doesn't it emit a warning instead of doing a pointless optimisation? – Jabberwocky Feb 11 '18 at 12:52
  • 6
    @MichaelWalz It does emit one. – HolyBlackCat Feb 11 '18 at 12:56
  • 2
    @MichaelWalz: Removing redundant boolean tests is not a pointless optimization; it is a very useful one. What would be (mostly) pointless is adding extra code to disable/undo the optimization in the presence of broken source code. – Hurkyl Feb 11 '18 at 14:20
  • 23
    @MichaelWalz: The compiler can't reliably detect UB as you suggest (though it can sometimes warn on a probable occurrence, as it actually does here). Instead, it can proceed with best intentions on the assumption that there will not be UB. Those are two perhaps subtly but in fact substantially different things. It's not like the compiler went "aha! UB! now I can turn on such and such an optimisation" — the optimisation was always there. It's doing stuff like this all the time. But, as long as your program is correctly written, you do not witness any changes to its would-be semantics. – Lightness Races in Orbit Feb 12 '18 at 0:23
  • 19
    As an analogy, the manufacturer of your house's front door may have decided that it'd be more robust if it had a piece of metal tactically placed somewhere in the middle of it. You're never going to notice, unless you're punching holes in your door and thus using doors wrong. – Lightness Races in Orbit Feb 12 '18 at 0:27
34

"Undefined behaviour is undefined." (c)

A compiler used on codechef seems to use following logic:

  1. Undefined behaviour can't happen.
  2. i * 12345678 overflows and results in UB if i > 173 (assuming 32 bit ints).
  3. Thus, i can never exceed 173.
  4. Thus i < 300 is superfluous and can be replaced with true.

The loop itself appears to be infinite. Apparently, codechef just stops the program after a specific amount of time or truncates the output.

  • 10
    @ArpanMangal I just counted the characters in output, and it seems to be 2^16. Apparently that's a coincidence that both truncate output to 2^16 characters. – HolyBlackCat Feb 11 '18 at 12:39
  • 3
    @ArpanMangal: nasal demons like 4169, and are currently partying at ideone and codechef. UB is undefined, it can be anything, including nasal demons. In all seriousness, trying to analyze UB is a waste of time, use that time to figure out how to keep it from happening. – jmoreno Feb 11 '18 at 15:09
  • 6
    @jmoreno it's not a waste of time if you are interested in compiler design – immibis Feb 11 '18 at 22:50
  • 2
    @jmoreno Though, this time it was possible to analyze it. Understanding how exactly UB breaks stuff might be useful to conclude in which cases UB is acceptable, if any. – HolyBlackCat Feb 11 '18 at 23:01
  • 4
    @jmoreno Anything the universe does is correct (by definition), so what is the point in studying astronomy? – immibis Feb 11 '18 at 23:43
8

You are invoking undefined behavior probably on 174th iteration inside your for loop as the max int value probably is 2147483647 yet 174 * 123456789 expression evaluates to 2148147972 which is undefined behavior as there is no signed integer overflow. So you are observing effects of UB, particularly with the GCC compiler with optimization flags set in your case. It is likely the compiler would have warned you about this by issuing the following warning:

warning: iteration 174 invokes undefined behavior [-Waggressive-loop-optimizations]

Remove the (-O2) optimization flags to observe different results.

  • 3
    It is worth noting that undefined behavior can have retroactive effects -- because UB would happen on iteration 174, the standard doesn't even require that the first 173 iterations of the loop should proceed as expected! – Hurkyl Feb 11 '18 at 14:10
  • @Hurkyl Indeed. It's somewhat paradoxical that UB causes the entire program, including the previous statements to exhibit UB. – Ron Feb 11 '18 at 14:13
  • 11
    @Ron: It's not paradoxical. Either the program has well-defined semantics, or it doesn't. Period. Remember, C++ code is not a sequence of instructions to be carried out; it is a description of a program. – Lightness Races in Orbit Feb 11 '18 at 18:15
  • @LightnessRacesinOrbit: It is possible for a program to have semantics which are partially unspecified but not totally undefined. The C Standard attempts to apply that concept to what it calls "Bounded UB", though the language it uses is a bit vague. Allowing compilers broad but not unlimited freedom in handling things like integer overflow wouldn't interfere with many otherwise-useful optimizations, but would make the language much more suitable for processing data received from untrustworthy sources. – supercat Apr 30 '18 at 22:44
  • @supercat: Indeed, unspecified behaviour is not the same as undefined behaviour. We are discussing the latter – Lightness Races in Orbit Apr 30 '18 at 22:51
6

The compiler can assume that undefined behavior will not occur, and because signed overflow is UB, it can assume that never i * 12345678 > INT_MAX, thus also i <= INT_MAX / 12345678 < 300 and therefore remove the check i < 300.

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