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Is there any way in C# to wrap a given value x between x_min and x_max. The value should not be clamped as in Math.Min/Max but wrapped like a float modulus.

A way to implement this would be:

x = x - (x_max - x_min) * floor( x / (x_max - x_min));

However, I am wondering if there is an algorithm or C# method that implements the same functionality without divisions and without the likely float-limited-precision issues that may arise when the value lies far away from the desired range.

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What do you mean between two number, you could just use an if statement –  msarchet Jan 19 '13 at 15:22
    
What is the purpose of doint that? –  AgentFire Jan 19 '13 at 15:23
1  
What's the purpose of this formula? If you want to keep x between two values, wouldn't this do the job? Math.Min(Math.Max(x_min, x), x_max) I doubt that involves floating point division. –  JLRishe Jan 19 '13 at 15:23
    
The above formula implements wrapping and not clamping. Math.Min/Max would simply cut off values which I do not want. Think of wrapping angles between 0 and 2pi but the above is more general. –  pad_ares Jan 19 '13 at 15:33
1  
I haven't voted it down, but tt doesn't fit well with StackOverflow in its current state because you have yet to really explain your problem or what you are trying to do. I added a "non-clamping" division-less answer below, but now I realize you seem to be concerned with precision and not performance. Could you please explain what your formula is actually doing beyond that it's "wrapping", because I think everyone here, including myself, has yet to really understand what it is you're trying to achieve. –  JLRishe Jan 19 '13 at 16:16

6 Answers 6

up vote 1 down vote accepted
x = x<x_min?  x_min:
    x>x_max?  x_max:x;

Its a little convoluted, and you can definitely break it into a pair of if statements.. But I don't see the need for division to begin with.

Edit:

I seem to have missunderstood, le

x = x<x_min?  x_max - (x_min - x):
    x>x_max?  x_min + (x - x_max):x;

This would work if your value of x does not vary too much.. which might work depending on the use case. Else for a more robust version I expect you need divide or repeated (recursive?) subtraction atleast.

This should be a more robust version which keeps performing the above calculation until x is stable.

int x = ?, oldx = x+1; // random init value.

while(x != oldx){
    oldx = x;
    x = x<x_min?  x_max - (x_min - x):
        x>x_max?  x_min + (x - x_max):x;
}
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4  
That seems more like a clamp, rather than 'wrapping'. –  JasonD Jan 19 '13 at 15:23
    
@JasonD ah yes, didnt see his last statement –  Karthik T Jan 19 '13 at 15:25
    
Thanks but I do not want to clamp but wrap (also, I improved my question). –  pad_ares Jan 19 '13 at 15:50
1  
@pad_ares See my edit for an answer. –  Karthik T Jan 19 '13 at 15:56

Modulo works fine on floating point, so how about:

x = ((x-x_min) % (x_max - x_min) ) + x_min;

It's still effectively a divide though, and you need to tweak it for values less < min...

You are worrying about accuracy when the number is far away from the range. However this is not related to the modulo operation, however it is performed, but is a property of floating point. If you take a number between 0 and 1, and you add a large constant to it, say to bring it into the range 100 to 101, it will lose some precision.

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You can wrap it using two modulo operations. I don't think there is a more efficient way of doing this without assuming something about x.

x = (((x - x_min) % (x_max - x_min)) + (x_max - x_min)) % (x_max - x_min) + x_min;

The additional sum and modulo in the formula are to handle those cases where x is actually less than x_min and the modulo might come up negative. Or you could do this with an if, and a single modular division:

if (x < x_min)
    x = x_max - (x_min - x) % (x_max - x_min);
else
    x = x_min + (x - x_min) % (x_max - x_min);

Unless x is not far from x_min and x_max, and is reachable with very few sums or subtractions (think also error propagation), I think the modulo is your only available method.

Without division

Keeping in mind that error propagation might become relevant, we can do this with a cycle:

d = x_max - x_min;
if (abs(d) < MINIMUM_PRECISION) {
    return x_min; // Actually a divide by zero error :-)
}
while (x < x_min) {
    x += (x_max - x_min);
}
while (x > x_max) {
    x -= (x_max - x_min);
}

Note on probabilities

The use of modular arithmetic has some statistical implications (floating point arithmetic also would have different ones).

For example say we wrap a random value between 0 and 5 included (e.g. a six-sided dice result) into a [0,1] range (i.e. a coin flip). Then

0 -> 0      1 -> 1
2 -> 0      3 -> 1
4 -> 0      5 -> 1

if the input has flat spectrum, i.e., every number (0-5) has 1/6 probability, the output will also be flat, and each item will have 3/6 = 50% probability.

But if we had a five-sided dice (0-4), or if we had a random number between 0 and 32767 and wanted to reduce it in the (0, 99) range to get a percentage, the output would not be flat, and some number would be slightly (or not so slightly) more likely than others. In the five-sided dice to coin-flip case, heads vs. tails would be 60%-40%. In the 32767-to-percent case, percentages below 67 would be CEIL(32767/100)/FLOOR(32767/100) = 0.3% more likely to come up than the others.

So, if one wanted a flat output, one would have to ensure that (max-min) was a divisor of the input range. In the case of 32767 and 100, the input range would have to be truncated at the nearest hundred (minus one), 32699, so that (0-32699) contained 32700 outcomes. Whenever the input was >= 32700, the input function would have to be called again to obtain a new value:

function reduced() {
#ifdef RECURSIVE
    int x = get_random();
    if (x > MAX_ALLOWED) {
        return reduced(); // Retry
    }
#else
    for (;;) {
        int x = get_random();
        int d = x_max - x_min;
        if (x > MAX_ALLOWED) {
            continue; // Retry
        }
        return x_min + (
                 (
                   (x - x_min) % d
                 ) + d
               ) % d;
    }
#endif

When (INPUTRANGE%OUTPUTRANGE)/(INPUTRANGE) is significant, the overhead might be considerable (e.g. reducing 0-197 to 0-99 requires making roughly twice as many calls).

If the input range is less than the output range (e.g. we have a coin flipper and we want to make a dice tosser), multiply (do not add) using Horner's algorithm as many times as required to get an input range which is larger. Coin flip has a range of 2, CEIL(LN(OUTPUTRANGE)/LN(INPUTRANGE)) is 3, so we need three multiplications:

for (;;) {
    x = ( flip() * 2 + flip() ) * 2 + flip();
    if (x < 6) {
        break;
    }
}

or to get a number between 122 and 221 (range=100) out of a dice tosser:

for (;;) {
    // ROUNDS = 1 + FLOOR(LN(OUTPUTRANGE)/LN(INPUTRANGE)) and can be hardwired
    // INPUTRANGE is 6
    // x = 0; for (i = 0; i < ROUNDS; i++) { x = 6*x + dice();  }
    x = dice() + 6 * ( 
            dice() + 6 * ( 
                dice() /* + 6*... */
            )
        );
    if (x < 200) {
        break;
    }
}
// x is now 0..199, x/2 is 0..99
y = 122 + x/2;
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How about using an extension method on IComparable.

public static class LimitExtension
{
    public static T Limit<T>(this T value, T min, T max)
         where T : IComparable
    {
        if (value.CompareTo(min) < 0) return min;
        if (value.CompareTo(max) > 0) return max;

        return value;
    }
}

And a unit test:

public class LimitTest
{
    [Fact]
    public void Test()
    {
        int number = 3;

        Assert.Equal(3, number.Limit(0, 4));
        Assert.Equal(4, number.Limit(4, 6));
        Assert.Equal(1, number.Limit(0, 1));

    }
}
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1  
Thanks for your answer but I do not want to clamp but wrap (see improved question). –  pad_ares Jan 19 '13 at 15:50

Are min and max fixed values? If so, you could figure out their range and the inverse of that in advance:

const decimal x_min = 5.6m;
const decimal x_max = 8.9m;
const decimal x_range = x_max - x_min;
const decimal x_range_inv = 1 / x_range;

public static decimal WrapValue(decimal x)
{
    return x - x_range * floor(x * x_range_inv);
}

The multiplication should perform somewhat better than division.

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Thank, thats a great idea! –  pad_ares Jan 19 '13 at 16:16
1  
I'd test that extensively, both performance-wise and precision-wise; you have two multiplications and a conversion in there. If the range is small, and x is very near the beginning of the range, I think you might experience problems. Actually, it would be good to have a couple of test cases. –  lserni Jan 20 '13 at 21:41

use Wouter de Kort's answer but change

if (value.CompareTo(max) > 0) return max;

to

if (value.CompareTo(max) > 0) return min;
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1  
That will not work. If the range is 0-5 for instance, then 7 should give 1, 8 should give 2 etc. This code would produce 0 for any number greater than 5 in that scenario. –  odyss-jii Jan 19 '13 at 16:03

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