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I have been using Math.Round(myNumber, MidpointRounding.ToEven) in c# to do my server-side rounding, however, the user needs to know 'live' what the result of the server-side operation will be which means (avoiding an ajax request) creating a javascript method to replicate the MidpointRounding.ToEven method used by c#.

MidpointRounding.ToEven is Gaussian/Bankers rounding, a very common rounding method for accounting systems described here.

Does anyone have any experience with this? I have found examples online but they do not round to a given number of decimal places...

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Good question. Was this script one of the examples you found? It looks like it might be suitable but I'm no expert on the subject :-) –  Andy E Jun 24 '10 at 10:26
    
Its close! But unforunately doesnt work with negative numbers - I'll do some changes to it and post here... Thanks :) –  Jimbo Jun 27 '10 at 11:12
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1 Answer

up vote 24 down vote accepted
function evenRound(num, decimalPlaces) {
    var d = decimalPlaces || 0;
    var m = Math.pow(10, d);
    var n = +(d ? num * m : num).toFixed(8); // Avoid rounding errors
    var i = Math.floor(n), f = n - i;
    var e = 1e-8; // Allow for rounding errors in f
    var r = (f > 0.5 - e && f < 0.5 + e) ?
                ((i % 2 == 0) ? i : i + 1) : Math.round(n);
    return d ? r / m : r;
}

console.log( evenRound(1.5) ); // 2
console.log( evenRound(2.5) ); // 2
console.log( evenRound(1.535, 2) ); // 1.54
console.log( evenRound(1.525, 2) ); // 1.52

Live demo: http://jsfiddle.net/NbvBp/

For what looks like a more rigorous treatment of this (I've never used it), you could try this BigNumber implementation.

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1  
Sweetly done! Works for negatives too. +2 :P –  Jimbo Jun 27 '10 at 11:20
4  
This answer is so money. –  ardave Jun 30 '12 at 0:23
    
I'd like to suggest two more additions. Firstly I would check for overflow/underflow on the Math.pow(10, d) expression (at least). On this error AND when decimalPlaces is positive, return num, else re-raise that exception. Secondly, to compensate for IEEE binary conversion errors, I would change f == 0.5 to something like f >= 0.499999999 && f <= 0.500000001 - depending on your choice of 'epsilon' (not sure if .toFixed(epsilon) is enough). Then you're golden! –  Marius Oct 4 '13 at 15:32
    
@Marius: Good points. My knowledge of JS numbers was sketchy when I wrote this and not much better now, so I'll read up and then update this. –  Tim Down Oct 4 '13 at 15:40
    
@TimDown I found the article entitled "What Every Computer Scientist Should Know About Floating-Point Arithmetic" to be invaluable. –  Marius Oct 10 '13 at 15:38
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