50

The C++ FAQ lite "[29.17] Why doesn't my floating-point comparison work?" recommends this equality test:

#include <cmath>  /* for std::abs(double) */

inline bool isEqual(double x, double y)
{
  const double epsilon = /* some small number such as 1e-5 */;
  return std::abs(x - y) <= epsilon * std::abs(x);
  // see Knuth section 4.2.2 pages 217-218
}
  1. Is it correct, that this implies that the only numbers which are equal to zero are +0 and -0?
  2. Should one use this function also when testing for zero or rather a test like |x| < epsilon?

Update

As pointed out by Daniel Daranas the function should probably better be called isNearlyEqual (which is the case I care about).

Someone pointed out this link, which I want to share more prominently.

  • 4
    I've a sentence in my head which says, never test a double to equal. Only greater or smaller. – user743414 Nov 7 '13 at 13:49
  • 7
    @user743414 in some scenarios, it is totally fine to test a double to equal. E.g. if(counter > 10.0) { counter = 0.0; //dostuff } and elsewhere in code: if(counter == 0.0){//oh I know that counter is reseted} else{//do other stuff}... – relaxxx Nov 7 '13 at 14:14
  • What do you actually want to do? As for question 1, then yes, the only values that compare equal to +0.0 (or indeed -0.0) are +0.0 and -0.0. But I don't see that the code in the question implies that. – David Heffernan Nov 7 '13 at 15:42
  • 1
    @relaxxx: counters are integers. – n.m. Nov 7 '13 at 17:04
  • 2
39

You are correct with your observation.

If x == 0.0, then abs(x) * epsilon is zero and you're testing whether abs(y) <= 0.0.

If y == 0.0 then you're testing abs(x) <= abs(x) * epsilon which means either epsilon >= 1 (it isn't) or x == 0.0.

So either is_equal(val, 0.0) or is_equal(0.0, val) would be pointless, and you could just say val == 0.0. If you want to only accept exactly +0.0 and -0.0.

The FAQ's recommendation in this case is of limited utility. There is no "one size fits all" floating-point comparison. You have to think about the semantics of your variables, the acceptable range of values, and the magnitude of error introduced by your computations. Even the FAQ mentions a caveat, saying this function is not usually a problem "when the magnitudes of x and y are significantly larger than epsilon, but your mileage may vary".

  • 9
    +1 There is indeed no "one size fits all" advice here. – David Heffernan Nov 7 '13 at 16:59
17

No.

Equality is equality.

The function you wrote will not test two doubles for equality, as its name promises. It will only test if two doubles are "close enough" to each other.

If you really want to test two doubles for equality, use this one:

inline bool isEqual(double x, double y)
{
   return x == y;
}

Coding standards usually recommend against comparing two doubles for exact equality. But that is a different subject. If you actually want to compare two doubles for exact equality, x == y is the code you want.

10.00000000000000001 is not equal to 10.0, no matter what they tell you.

An example of using exact equality is when a particular value of a double is used as a synonym of some special state, such as "pending calulation" or "no data available". This is possible only if the actual numeric values after that pending calculation are only a subset of the possible values of a double. The most typical particular case is when that value is nonnegative, and you use -1.0 as an (exact) representation of a "pending calculation" or "no data available". You could represent that with a constant:

const double NO_DATA = -1.0;

double myData = getSomeDataWhichIsAlwaysNonNegative(someParameters);

if (myData != NO_DATA)
{
    ...
}
  • 12
    Your isEqual function will surprise you one day :) Probably when you realize how precise floating points are. – BЈовић Nov 7 '13 at 16:34
  • 8
    @BЈовић No. It will not surprise me. I will seldom use it, but when I do, I will mean to check that one double is equal to another one. 10.00000000000000001 is not equal to 10.0. – Daniel Daranas Nov 7 '13 at 16:52
  • 4
    I guess ultimately the problem is people using floating precision when what they actually want is fixed. Daniel's argument (10.00000000000000001 is not 10.0) is fair, except that people don't expect it to be a factor when they are comparing "5.0 + 5.0" vs "15.0 - 5.0". – kfsone Nov 7 '13 at 20:07
  • 2
    The trouble with Daniel's argument is that 10.00000000000000001 is also not 10.00000000000000001 as soon as I store it as a float. floats are not exact, they are approximations. – DaveB Mar 13 '15 at 14:14
  • 4
    @user3698909 This does not contradict my argument. My argument is that equal values are exactly that, equal values . If you're interested in knowing whether two floating point values are equal, test them for equality. If you're not interested in that, then don't test them for equality - test whether they are close enough. – Daniel Daranas Mar 13 '15 at 14:39
6

You can use std::nextafter with a fixed factor of the epsilon of a value like the following:

bool isNearlyEqual(double a, double b)
{
  int factor = /* a fixed factor of epsilon */;

  double min_a = a - (a - std::nextafter(a, std::numeric_limits<double>::lowest())) * factor;
  double max_a = a + (std::nextafter(a, std::numeric_limits<double>::max()) - a) * factor;

  return min_a <= b && max_a >= b;
}
5

If you are only interested in +0.0 and -0.0, you can use fpclassify from <cmath>. For instance:

if( FP_ZERO == fpclassify(x) ) do_something;

4

2 + 2 = 5(*)

(for some floating-precision values of 2)

This problem frequently arises when we think of"floating point" as a way to increase precision. Then we run afoul of the "floating" part, which means there is no guarantee of which numbers can be represented.

So while we might easily be able to represent "1.0, -1.0, 0.1, -0.1" as we get to larger numbers we start to see approximations - or we should, except we often hide them by truncating the numbers for display.

As a result, we might think the computer is storing "0.003" but it may instead be storing "0.0033333333334".

What happens if you perform "0.0003 - 0.0002"? We expect .0001, but the actual values being stored might be more like "0.00033" - "0.00029" which yields "0.000004", or the closest representable value, which might be 0, or it might be "0.000006".

With current floating point math operations, it is not guaranteed that (a / b) * b == a.

#include <stdio.h>

// defeat inline optimizations of 'a / b * b' to 'a'
extern double bodge(int base, int divisor) {
    return static_cast<double>(base) / static_cast<double>(divisor);
}

int main() {
    int errors = 0;
    for (int b = 1; b < 100; ++b) {
        for (int d = 1; d < 100; ++d) {
            // b / d * d ... should == b
            double res = bodge(b, d) * static_cast<double>(d);
            // but it doesn't always
            if (res != static_cast<double>(b))
                ++errors;
        }
    }
    printf("errors: %d\n", errors);
}

ideone reports 599 instances where (b * d) / d != b using just the 10,000 combinations of 1 <= b <= 100 and 1 <= d <= 100 .

The solution described in the FAQ is essentially to apply a granularity constraint - to test if (a == b +/- epsilon).

An alternative approach is to avoid the problem entirely by using fixed point precision or by using your desired granularity as the base unit for your storage. E.g. if you want times stored with nanosecond precision, use nanoseconds as your unit of storage.

C++11 introduced std::ratio as the basis for fixed-point conversions between different time units.

1

Like @Exceptyon pointed out, this function is 'relative' to the values you're comparing. The Epsilon * abs(x) measure will scale based on the value of x, so that you'll get a comparison result as accurately as epsilon, irrespective of the range of values in x or y.

If you're comparing zero(y) to another really small value(x), say 1e-8, abs(x-y) = 1e-8 will still be much larger than epsilon *abs(x) = 1e-13. So unless you're dealing with extremely small number that can't be represented in a double type, this function should do the job and will match zero only against +0 and -0.

The function seems perfectly valid for zero comparison. If you're planning to use it, I suggest you use it everywhere there're floats involved, and not have special cases for things like zero, just so that there's uniformity in the code.

ps: This is a neat function. Thanks for pointing to it.

1

Simple comparison of FP numbers has it's own specific and it's key is the understanding of FP format (see https://en.wikipedia.org/wiki/IEEE_floating_point)

When FP numbers calculated in a different ways, one through sin(), other though exp(), strict equality won't be working, even though mathematically numbers could be equal. The same way won't be working equality with the constant. Actually, in many situations FP numbers must not be compared using strict equality (==)

In such cases should be used DBL_EPSIPON constant, which is minimal value do not change representation of 1.0 being added to the number more than 1.0. For floating point numbers that more than 2.0 DBL_EPSIPON does not exists at all. Meanwhile, DBL_EPSILON has exponent -16, which means that all numbers, let's say, with exponent -34, would be absolutely equal in compare to DBL_EPSILON.

Also, see example, why 10.0 == 10.0000000000000001

Comparing dwo floating point numbers depend on these number nature, we should calculate DBL_EPSILON for them that would be meaningful for the comparison. Simply, we should multiply DBL_EPSILON to one of these numbers. Which of them? Maximum of course

bool close_enough(double a, double b){
    if (fabs(a - b) <= DBL_EPSILON * std::fmax(fabs(a), fabs(b)))
    {
        return true;
    }
    return false;
}

All other ways would give you bugs with inequality which could be very hard to catch

  • it's not added because mantissa is used by integer part. 10.00000000000000001 just cannot be represented by double. – Green Tree Jun 26 '18 at 17:45
0

notice, that code is:

std::abs((x - y)/x) <= epsilon

you are requiring that the "relative error" on the var is <= epsilon, not that the absolute difference is

  • 4
    This is only equivalent if x is not 0. – Daniel Daranas Nov 7 '13 at 15:42

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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