11

I'm trying to make a function that takes a number and normalizes it from 0 - 1 between its min and max bounds. For example:

If I want to normalize a value of 10 between 5 to 15, I call this:

val = 10; normalize(val, 5, 15); Returns 0.5

normalizing a value 0 between -10 and 5

val = 0; normalize(val, -10, 5); Returns 0.666

This is the function I came up with:

function normalize(val, min, max){
  // Shift to positive to avoid issues when crossing the 0 line
  if(min < 0){
    max += 0 - min;
    val += 0 - min;
    min = 0;
  }
  // Shift values from 0 - max
  val = val - min;
  max = max - min;
  return Math.max(0, Math.min(1, val / max));
}

My question is: Is this the most efficient method to normalize a 1-dimensional value? I'm going to be calling this function a few thousand times per frame at 60fps, so I'd like to have it as optimized as possible to reduce the burden of calculation. I've looked for normalization formulas, but all I find are 2- or 3-dimensional solutions.

  • 1
    I don't see the reason why you are treating negative mins separately, – redneb Sep 29 '16 at 17:53
  • is min and max always the same for the array? – Nina Scholz Sep 29 '16 at 17:56
  • @redneb Wow, you're right! I was preemptively doing so without really testing it. It works without shifting to > 0 – Marquizzo Sep 29 '16 at 17:57
  • @NinaScholz min and max would change depending on where I'm calling it. Sometimes it'll be -100, 0 sometimes -3, 781, etc. – Marquizzo Sep 29 '16 at 17:58
  • 1
    @MarcoDelValle So just remove the special handling of negative min and you are good to go. – redneb Sep 29 '16 at 17:59
35

Why not just:

function(val, max, min) { return (val - min) / (max - min); }
  • 1
    Excellent, thank you! This seems to be the simplest way. I was overcomplicating things with the if statement. However, I still want to clamp the values between 0 and 1, so I'm thinking of doing return Math.max(0, Math.min(1, val-min / max-min)) – Marquizzo Sep 29 '16 at 18:01
  • @MarcoDelValle As long as val is actually between min and max the result will always be between 0 and 1. – Keiwan Sep 29 '16 at 18:07
  • @Keiwan I know. The thing is that val won't always be between min and max, so I need a way to keep it from returning negative numbers or anything above 1 – Marquizzo Sep 29 '16 at 18:09
  • 1
    @MarcoDelValle: Don't forget to put parentheses around (max-min). – Mike Dunlavey Sep 29 '16 at 18:40
10

Using Nathan Bertons's answer with a preconfigured function for some values with the same min and max values, you could use this.

function normalize(min, max) {
    var delta = max - min;
    return function (val) {
        return (val - min) / delta;
    };
}

console.log([5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15].map(normalize(5, 15)));

4

Using Nathan Bertons's answer, you must validate if max-min is equal to zero, otherwise the return will be NaN:

function (val, max, min) { 
    if(max - min === 0) return 1; // or 0, it's up to you
    return (val - min) / (max - min); 
}

and you can use a generalization to restrict the range of values in the dataset between any arbitrary points a and b using:

function (val, max, min) {
    if(max - min === 0) return a; // or b, it's up to you
    return a + (((val - min) * (b-a)) / (max - min));
}
  • 1
    max - min will equal to zero if they have same value, there's no way you would give max = 5 and min = 5. – StefansArya Dec 6 '18 at 14:38
2

I prefer using this formula when I want to normalize a value between two ranges with known min, max values. You can add checks to constrain the input, although this will correctly calculate the difference from the new range if an out-of-range value is given as input.

/**
 * Normalizes a value from one range (current) to another (new).
 *
 * @param  { Number } val    //the current value (part of the current range).
 * @param  { Number } minVal //the min value of the current value range.
 * @param  { Number } maxVal //the max value of the current value range.
 * @param  { Number } newMin //the min value of the new value range.
 * @param  { Number } newMax //the max value of the new value range.
 *
 * @returns { Number } the normalized value.
 */
const normalizeBetweenTwoRanges = (val, minVal, maxVal, newMin, newMax) => {
  return newMin + (val - minVal) * (newMax - newMin) / (maxVal - minVal);
};

const e = document.getElementById('result');
e.innerHTML = normalizeBetweenTwoRanges(10, 5, 15, 0, 1);
<span id="result"></span>

1

I Will complete answer of Nina Scholz, you can use underscore library to find minimum and maximum for array and you can use as follow, or create your own (simple methods with simple loop):

if you are using nodeJS you need to install underscore with command npm install underscore and use with command var _ = require('underscore/underscore'); or you can import the library on html and use on your web



    function min(arr) {
        if (!arr.length) return null;
        var minValue = arr[0];
        for (var item of arr) {
            if (item  maxValue) maxValue = item;
        }
        return maxValue;
    }

    var array = [1, 2, 3, 4, 5, 6, 7, 8, 9];

    function normalize(min, max) {
        var delta = max - min;
        return function (val) {
            return (val - min) / delta;
        };
    }

    function normalizeArray(array) {
        var minValue = min(array); //if you use underscore _.min(array)
        var maxValue = max(array);//if you use underscore _.max(array)
        return array.map(normalize(minValue, maxValue));
    }
    console.log(normalizeArray(array));


0

If you want a more dynamic approach, where you can specify the max range, then this can be the solution here, we in this example we are normalizing our data in a range of 0 to 100

    let a = [500, 2000, 3000, 10000];

    function normalize(data, arr_max, arr_min, newMax){
        return data.map(d => {
            return newMax * ((d - arr_min)/(arr_max - arr_min))
        })
    }


console.log(normalize(a, 10000, 500, 100))
  • I feel that this simply overcomplicates the accepted answer. I never asked for array mapping, nor multiplying by a newMax value. – Marquizzo Nov 5 at 1:46

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