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I have various strings that represent time left coming in from a data feed. The formats look like this:

  • 13:35
  • 01:36
  • 00:34

I want to use regex to change the formats to:

  • 13:35 --> 13:35 (ok as-is)
  • 01:36 --> 1:36 (removing leading 0)
  • 00:34 --> 0:34 (remove first leading 0)

Currently, I'm doing this:

time_left.gsub(/\A0+/, '')

Accomplishes first two target formats, but not the third, which results in:

:34 (should be 0:34)

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Don't bother removing leading zeros. You'll want to convert the values to integers, or parse them, which will make the leading zeros a non-issue. –  the Tin Man Feb 22 '13 at 4:04

5 Answers 5

up vote 1 down vote accepted

Your regex /\A0+/ removes all leading 0s, but it sounds like you just want to remove the first one. You just want /\A0/.

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ahh, simple enough...thanks –  keruilin Feb 22 '13 at 3:35

Regex are not the best choice for this. I'd go after this like, ... uh, this:

puts %w[
  13:35
  01:36
  00:34
].map { |s|
  "%0d:%0d" % s.split(':').map(&:to_i)
}

Which outputs:

13:35
1:36
0:34
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Just take out the + that means 1 or more. So it will take two zeros if it has two zeros.

time_left.gsub(/\A0/, '')
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If each of the times are in a separate string and you are applying the regex individually to them, then, you should not use gsub:

time_left.sub(/\A0/, "")

If is rather the case that all the times are in a single string, then you cannot use \A.

time_left.gsub(/(?!<\d)0/, "")

The second one will also remove zeros after the colon.

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How about using a negative look-ahead:

/\A0+(?!:)/

( Tested in Perl )

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