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I'm getting numbers like

2.36363636363636
4.567563
1.234566465448465
10.5857447736

How would I get Ruby to round these numbers up (or down) to the nearest 0.05?

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6  
You realize those aren't integers, right? –  glenn jackman Aug 28 '09 at 13:58
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6 Answers 6

up vote 4 down vote accepted

Check this link out, I think it's what you need. Ruby rounding

class Float
  def round_to(x)
    (self * 10**x).round.to_f / 10**x
  end

  def ceil_to(x)
    (self * 10**x).ceil.to_f / 10**x
  end

  def floor_to(x)
    (self * 10**x).floor.to_f / 10**x
  end
end
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Thanks for the link! the methods work perfectly. –  dotty Aug 28 '09 at 10:54
5  
Nice link. Answer would be better with a summary, though, so it can stand on it's own, especially since the linked code doesn't do exactly what the OP asks, i.e., round to the nearest 0.05, but rounds to a particular decimal place. –  tvanfosson Aug 28 '09 at 11:00
1  
And worse, b/c the post actually reimplements the built-in ruby function round(number-of-decimal-places), it's a bad idea. –  Rob Apr 5 '12 at 14:32
3  
downvote for only supplying a link, lame... and a link that doesn't even answer the question. –  tester123 May 24 '12 at 14:09
1  
link is down... –  Rodrigo Zurek Mar 23 '13 at 21:04
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[2.36363636363636, 4.567563, 1.23456646544846, 10.5857447736].map do |x|
  (x*20).round / 20.0
end
#=> [2.35, 4.55, 1.25, 10.6]
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Darn, you beat be me by a couple of seconds! +1 from me, although I had a slight different version in mind. –  Swanand Aug 28 '09 at 10:58
    
This doesn't round UP to the nearest 0.05 as requested by OP, 2.36.... should be 2.40, not 2.35. –  Christopher Maujean Apr 8 '12 at 23:40
1  
@ChristopherMaujean True, but (despite the title) that's not what the OP asked for. The body of the question says "round these numbers up (or down) to the nearest 0.05". Anyway if you want to round up, use ceil instead of round. –  sepp2k Apr 9 '12 at 12:34
    
I've edited the title to reflect the question, if I'm allowed, I'll remove my downvote. –  Christopher Maujean Apr 11 '12 at 23:31
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In general the algorithm for “rounding to the nearest x” is:

round(x / precision)) * precision

Sometimes is better to multiply by 1 / precision because it is an integer (and thus it works a bit faster):

round(x * (1 / precision)) / (1 / precision)

In your case that would be:

round(x * (1 / 0.05)) / (1 / 0.05)

which would evaluate to:

round(x * 20) / 20;

I don’t know any Python, though, so the syntax might not be correct but I’m sure you can figure it out.

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1  
In order to get decimals divide by 20.0 -> round(x * 20) / 20.0; –  baijiu Nov 30 '09 at 10:43
2  
For ruby: (7.125 * 20).round / 20.0 => 7.15 –  Pratik Khadloya Mar 23 '12 at 19:14
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less precise, but this method is what most people are googling this page for

(5.65235534).round(2)
#=> 5.65
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1  
5.6355.round(2) != 5.65, but TS wants 5.65 –  Dmitry Lihachev Apr 11 '13 at 5:14
    
This solution only rounds the number to two decimal places, it does not return a rounded value to the nearest 0.05 as requested. –  Scott S. May 2 '13 at 2:01
    
in some ways you're right, I should delete this answer. But on another level this is a very popular question that gets linked to in searches where people find this answer helpful, so I'm going to keep it visible –  boulder_ruby Jul 5 at 14:45
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Here's a general function that rounds by any given step value:

place in lib:

lib/rounding.rb
class Numeric
  # round a given number to the nearest step
  def round_by(increment)
    (self /increment).round * increment
  end
end

and the spec:

require 'rounding'
describe 'nearest increment by 0.5' do
  {0=>0.0,0.5=>0.5,0.60=>0.5,0.75=>1.0, 1.0=>1.0, 1.25=>1.5, 1.5=>1.5}.each_pair do |val, rounded_val|
    it "#{val}.round_by(0.5) ==#{rounded_val}" do val.round_by(0.5).should == rounded_val end
  end
end

and usage:

require 'rounding'
2.36363636363636.round_by(0.05)

hth.

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It’s possible to round numbers with String class’s % method.

For example

"%.2f" % 5.555555555

would give "5.56" as result (a string).

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