Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In another question, the topic of std::numeric_limits<int>::is_modulo came up. But the more I think about it, the more it seems like something is wrong with the spec or with GCC or both.

Let me start with some code:

#include <limits>
#include <iostream>

bool test(int x)
{
    return x+1 > x;
}

int main(int argc, char *argv[])
{
    int big = std::numeric_limits<int>::max();

    std::cout << std::numeric_limits<int>::is_modulo << " ";
    std::cout << big+1 << " ";
    std::cout << test(big) << "\n";
}

When I compile this with g++ -O3 -std=c++11 (x86_64 GCC 4.7.2), it produces the following output:

1 -2147483648 1

That is, is_modulo is true, one plus INT_MAX is negative, and one plus INT_MAX is greater than INT_MAX.

If you are the sort of person with any realistic chance of answering this question, you already know what happened here. The C++ specification says that integer overflow is Undefined Behavior; the compiler is allowed to assume you do not do that; therefore the argument to x+1 cannot be INT_MAX; therefore the compiler may (and will) compile the test function to return true unconditionally. So far, so good.

However, the C++11 spec also says (18.3.2.4 paragraphs 60-61):

static constexpr is_modulo;

True if the type is modulo.222 A type is modulo if, for any operation involving +, -, or * on values of that type whose result would fall outside the range [min(),max()], the value returned differs from the true value by an integer multiple of max() - min() + 1.

On most machines, this is false for floating types, true for unsigned integers, and true for signed integers.

Note that section 5 paragraph (4) still reads, "If during the evaluation of an expression, the result is not mathematically defined or not in the range of representable values for its type, the behavior is undefined." There is no mention of is_modulo == true creating an exception.

So it looks to me like the standard is logically contradictory, because integer overflow cannot simultaneously be defined and undefined. Or at the very least, GCC is non-conforming, because it has is_modulo as true even though signed arithmetic most certainly does not wrap around.

Is the standard buggy? Is GCC non-conforming? Am I missing something?

share|improve this question
    
While I feel uncomfortable about it being simultaneously defined and undefined, gcc seems consistent to me: max()+1 == min(). –  BoBTFish Nov 7 '12 at 15:48
3  
@BoBTFish And how is that consistent then? max()+1 == min() and min() > max()? –  R. Martinho Fernandes Nov 7 '12 at 15:50
1  
I think the defined/undefined question is a red herring. The language doesn't require overflow to give defined behavior, but if the implementation wants to define the behavior, it's free to do so, and when it does so in a particular way, tells you that. –  Jerry Coffin Nov 7 '12 at 16:16
1  
@JerryCoffin: OK, but when GCC says is_modulo is true, doesn't that imply the behavior is defined, thus prohibiting the optimization in this case? –  Nemo Nov 7 '12 at 16:20
    
@Nemo: I guess now I'll have to read your earlier question to figure out what optimization you're talking about... –  Jerry Coffin Nov 7 '12 at 16:27
show 3 more comments

1 Answer

up vote 11 down vote accepted

If is_modulo is true for a signed type (e.g. int) that is unchanged by the usual arithmetic conversions, then for any arithmetic operation other than division by zero there is a single correct result in the (mathematical) integers that modulo maps to a single value in the range of the type, and so the implementation is constrained to behave as if the actual result is the true result modulo the range of the type. So if an implementation wants to retain overflow arithmetic as being undefined it must set is_modulo to false.

This was discussed ad nauseam on the gcc mailing list and then under PR 22200 with the eventual conclusion that the value of is_modulo should be false for signed types; the change was made to libstdc++ in April of this year.

Note that in C++03 the language was significantly different:

18.2.1.2 numeric_limits members [lib.numeric.limits.members]

56 - [...] A type is modulo if it is possible to add two positive numbers and have a result that wraps around to a third number that is less.

Given that with undefined behaviour anything is possible, it is arguable that the previous behaviour of libstdc++ (having is_modulo as true) was correct and consistent with the behaviour of g++; the earlier discussions on the linked PR should be read with this in mind.

share|improve this answer
    
Yeah, I should have mentioned the C++03 spec as well. Thank you for this; PR 22200 is exactly the sort of thing I was looking for. (Also good to know it is fixed. I did first test on the latest GCC I could find, which is 4.7.2 on Ubuntu.) –  Nemo Nov 7 '12 at 17:43
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.