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If I have a string such as string = "08/01/2012"

How can I return "2012-08-01" in Ruby in one line?

e.g. take the set of digits after the last "/", insert them at the beginning, then replace the "/"s with "-"s

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4 Answers 4

up vote 2 down vote accepted

Since you are dealing with dates, I'd go through the Date library (you have to require 'date' for some of the features) because it's the most flexible and stable approach:

Date.strptime(string, '%m/%d/%Y').strftime('%Y-%m-%d')
#=> "2012-08-01"

As you can see both strptime ("string parse time") and strftime ("string format time") take format strings that exactly describe what they are doing.

If you don't want to go through Date, you can use gsub like this:

string.gsub(%r{(\d+)/(\d+)/(\d+)}, '\3-\1-\2')
#=> "2012-08-01"
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m, d, y = string.split("/")
"#{y}-#{m}-#{d}"

or

string.split("/").rotate(-1).join("-")
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Can it be done in one line? –  aperture Aug 11 '12 at 11:06
    
@aperture: Yes, it can be done in one line. Just remove the line breaks: m, d, y = string.split("/"); "#{y}-#{m}-#{d}". Not sure why you'd want to do that, though. –  Jörg W Mittag Aug 11 '12 at 13:22
    
@JörgWMittag I think the OP wanted to do it in a chain. –  sawa Aug 11 '12 at 13:43
    
@JörgWMittag: I needed to match two different date formats within a view using data attributes. I don't know of any other way to use ruby inside a view to return a string without it being a single line. –  aperture Aug 11 '12 at 13:45

Michael Kohl answer is correct

just another answer

Date.parse(string).strftime('%Y-%d-%m')
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month, day, year = string.split('/').map(&:to_i)
rearranged = sprintf "%04d-%02d-%02d", year, month, day

It does a little extra work (in that it does to_i on each element), but it could come in handy later.

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