Can someone give me an idea how can i round off a number to the nearest 0.5.
I have to scale elements in a web page according to screen resolution and for that i can only assign font size in pts to 1, 1.5 or 2 and onwards etc.

If i round off it rounds either to 1 decimal place or none. How can i accomplish this job?

up vote 114 down vote accepted

Write your own function that multiplies by 2, rounds, then divides by 2, e.g.

function roundHalf(num) {
    return Math.round(num*2)/2;
}

Here's a more generic solution that may be useful to you:

function round(value, step) {
    step || (step = 1.0);
    var inv = 1.0 / step;
    return Math.round(value * inv) / inv;
}

round(2.74, 0.1) = 2.7

round(2.74, 0.25) = 2.75

round(2.74, 0.5) = 2.5

round(2.74, 1.0) = 3.0

Math.round(-0.5) returns 0, but it should be -1 according to the math rules.

More info: Math.round() and Number.prototype.toFixed()

function round(number) {
    var value = (number * 2).toFixed() / 2;
    return value;
}
  • 1
    As for the math - it's correct interpretation – Yuri Kushch Nov 25 '14 at 16:27
  • @Yuri To expand on what you're saying, round rounds to the next integer greater than the given value, which in terms of negative numbers would be towards the positive integer spectrum. -2.5 would go to -2. Is that correct? – Danny Bullis Nov 23 '15 at 22:44
  • Yup just verified. Math.ceil(-1.75) == -1 and Math.floor(-1.75) == -2. So for anyone getting tripped up by this, just think of it as ceil returns a greater than number, floor returns a less than number. – Danny Bullis Nov 23 '15 at 22:46
var f = 2.6;
var v = Math.floor(f) + ( Math.round( (f - Math.floor(f)) ) ? 0.5 : 0.0 );
  • 2
    if f = 1.9, this will result in v = 1, which is incorrect. – bogatyrjov Apr 1 '14 at 8:09
    function roundToTheHalfDollar(inputValue){
      var percentile = Math.round((Math.round(inputValue*Math.pow(10,2))/Math.pow(10,2)-parseFloat(Math.trunc(inputValue)))*100)
      var outputValue = (0.5 * (percentile >= 25 ? 1 : 0)) + (0.5 * (percentile >= 75 ? 1 : 0))
      return Math.trunc(inputValue) + outputValue
    }

I wrote this before seeing Tunaki's better response ;)

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