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Suppose I have the number 1.29999. I want to just have 1.2 without the trailing 9s. Note, I don't want it to round to 1.3. How do I do this? I know there's the number helper, but I can't seem to get this working outside of a view. Any ideas?

For instance, number_with_precision 111.2345, :precision => 2 does not work if I just put it in a normal model function.

Thanks!

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3 Answers

up vote 4 down vote accepted

Another approach is to multiply by 100, truncate, then divide by 100.0:

$ irb --simple-prompt
>> (1.29999999*100).truncate/100.0
=> 1.29

Making it a method:

>> def truncate_to_two (x)
>>   (x * 100).truncate/100.0
>> end
=> nil
>> truncate_to_two 6342.899
=> 6342.89
>> truncate_to_two -322.11892
=> -322.11
>> truncate_to_two 244.9342
=> 244.93
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This is better than my to_s approach. –  Jonathan Julian Nov 9 '11 at 6:11
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It's rudimentary, but you can do use string manipulation instead of math to do it. Example:

x = 1.29999
truncated = x.to_s.match(/(\d+\.\d{2})/)[0]  # assumes the format "n.nn" with 2 or more digits of precision; the regex can be expanded to handle more cases
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+1 I like this because it is easy to extend to negative numbers by making the regex be /(-?\d+\.\d{2})/)[0] –  Ray Toal Nov 9 '11 at 5:20
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You can always include ActionView::Helpers::NumberHelper in your model to get access to the helpers.

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