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I am close but can't seem to get this to work. I'd like to achieve converting this string "1960-12-031 22:00:010" to this string "1960-12-31 22:00:10" by finding the places where two numbers are preceded by a 0 and then stripping the 0.

I've got the regex working:

txt <- "1960-12-031 22:00:010"
gsub("(0+[0-9]{2})", "\\1", txt, perl=TRUE)

I just can't seem to figure out what to do with the "\\1" to strip out the first character.

Any assistance would be appreciated -

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I don't think there should be a + after the first zero. –  W.K.S May 20 '12 at 19:17

1 Answer 1

up vote 2 down vote accepted
txt <- "1960-12-031 22:00:010"
gsub("0+([0-9]{2})", "\\1", txt, perl=TRUE)

Note that this will replace 031, 0031, 00031, etc. with 31. If you want to remove only the first zero, use "0{1}([0-9]{2})".

Update: As per the recommendation in the comment you can use "[\\D]0+([0-9]{2})" to avoid matching zeros within numbers such as 2012.

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That worked like a charm. I really appreciate you taking the time for a newbie regex question. –  user1566 May 20 '12 at 19:27
1  
It will also replace (the year) 2012 with 212, so you could consider using and catching - or : in your pattern: gsub("([:-])0([0-9]{2})", "\\1\\2", txt, perl=TRUE) –  flodel May 20 '12 at 19:30
    
@flodel Good point. Updated. –  Pencho Ilchev May 20 '12 at 19:38

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