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The following will ensure that any large numbers will only be precise to the hundredths place (related to this answer):

public function round( sc:Number ):Number
{
    sc = sc * 100;
    sc = Math.floor( sc );
    sc = sc / 100;

    return sc;
}

What is the optimal way to round my numbers to the precision of .05? Is there something clever to be done with bit-shifting to get this result? For example, I would like:

3.4566 = 3.45

3.04232 = 3.05

3.09 = 3.1

3.32 = 3.3

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up vote 6 down vote accepted

You could multiply by 20, round, then divide by 20.

Edit: You will want to use Math.round() instead of Math.floor(), otherwise your test case 3.09 will turn into 3.05.

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You could just change the *100 to *20 and /100 /20. But why stop there, when you can naturally generalize?

double floor(double in, double precision) {
    return Math.floor(in/precision)*precision
}
//floor(1.07, 0.05) = 1.05
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This should be Math.round(), not Math.floor(). – Svante Apr 28 '09 at 21:02
    
His example used floor, so I used floor. Also notice I called the function floor to make it clear. – Strilanc Apr 28 '09 at 22:45
    
To get consistent results for negative numbers you should also add 0.5 to the "in / precision" result passed to Math.floor() – Alnitak Apr 29 '09 at 13:24
    
That would make it a rounding function, not a floor function. Floor rounds towards negative infinity. What you're thinking of is called truncation. – Strilanc Apr 29 '09 at 14:33

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