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I have a large amount of numeric values y in javascript. I want to group them by rounding them down to the nearest multiple of x and convert the result to a string.

How do I get around the annoying floating point precision?

For example:

0.2 + 0.4 = 0.6000000000000001

Two things I have tried:

>>> y = 1.23456789 
>>> x = 0.2 
>>> parseInt(Math.round(Math.floor(y/x))) * x; 
1.2000000000000002

and:

>>> y = 1.23456789 
>>> x = 0.2 
>>> y - (y % x)
1.2000000000000002
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marked as duplicate by ChrisF Apr 2 '14 at 12:29

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
This is actually normal behavior for double you just don't see it in print statements in most languages. Have you tried rounding your numbers? –  Vatev Jul 27 '12 at 21:10
1  
You can't really "get around" it, as it's an intrinsic aspect of binary floating-point math systems. That's true for both your "x" and your "y" values, apparently; if "x" is 0.3 that can't be represented exactly. "Rounding" to arbitrary fractions is going to result in imprecision. –  Pointy Jul 27 '12 at 21:10
    
So what would be an alternative way of converting y to "1.2". –  Jeroen Jul 27 '12 at 21:13
    
@Jeroen I'm sure you've got it already, but just for the record, Math.floor(y). –  pilau Aug 5 '14 at 12:11

5 Answers 5

up vote 32 down vote accepted

From this post: Elegant workaround for JavaScript floating point number problem

You have a few options:

  • Use a special datatype for decimals, like BigDecimal
  • Format your result to some fixed number of significant digits, like this: (Math.floor(y/x) * x).toFixed(2)
  • Convert all your numbers to integers
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1  
"Convert all your numbers to integers", I've wondered about this. As we know, JavaScript has one number type Number, an IEEE 754 float. If that's the case, then why does converting a float to an integer work, (and it does)? Does JavaScript actually have an integer data type that simply isn't accessible via a reserved word? –  Karl Dec 23 '14 at 15:31

You could do something like this:

> +(Math.round(y/x)*x).toFixed(15);
1.2
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Doesn't work for all combinations y and x. –  Jeroen Jul 27 '12 at 21:25

Check out this link.... It helped me a lot

http://www.w3schools.com/jsref/jsref_toprecision.asp

the toPrecision(no_of_digits_required) function returns a string so don't forge to use the parseFloat() function to convert to decimal point of req precision

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Tackling this task, I'd first find the number of decimal places in x, then round y accordingly. I'd use:

y.toFixed(x.toString().split(".")[1].length);

It should convert x to a string, split it over the decimal point, find the length of the right part, and then y.toFixed(length) should round y based on that length.

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2  
This gets a bit problematic of x is an integer. –  Jeroen Jul 27 '12 at 21:26
> var x = 0.1
> var y = 0.2
> var cf = 10
> x * y
0.020000000000000004
> (x * cf) * (y * cf) / (cf * cf)
0.02

Quick Solve

    var _cf = (function() {
  function _shift(x) {
    var parts = x.toString().split('.');
    return (parts.length < 2) ? 1 : Math.pow(10, parts[1].length);
  }
  return function() { 
    return Array.prototype.reduce.call(arguments, function (prev, next) { return prev === undefined || next === undefined ? undefined : Math.max(prev, _shift (next)); }, -Infinity);
  };
})();

Math.a = function () {
  var f = _cf.apply(null, arguments); if(f === undefined) return undefined;
  function cb(x, y, i, o) { return x + f * y; }
  return Array.prototype.reduce.call(arguments, cb, 0) / f;
};

Math.s = function (l,r) { var f = _cf(l,r); return (l * f - r * f) / f; };

Math.m = function () {
  var f = _cf.apply(null, arguments);
  function cb(x, y, i, o) { return (x*f) * (y*f) / (f * f); }
  return Array.prototype.reduce.call(arguments, cb, 1);
};

Math.d = function (l,r) { var f = _cf(l,r); return (l * f) / (r * f); };

> Math.m(0.1, 0.2)
0.02

You can Check full explanation in Full Solution

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