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I have a vector filled with strings of the following format: <year1><year2><id1><id2>

the first entries of the vector looks like this:

199719982001
199719982002
199719982003
199719982003

For the first entry we have: year1 = 1997, year2 = 1998, id1 = 2, id2 = 001.

I want to write a regular expression that pulls out year1, id1, and the digits of id2 that are not zero. So for the first entry the regex should output: 199721.

I have tried doing this with the stringr package, and created the following regex:

"^\\d{4}|\\d{1}(?<=\\d{3}$)"

to pull out year1 and id1, however when using the lookbehind i get a "invalid regular expression" error. This is a bit puzzling to me, can R not handle lookaheads and lookbehinds?

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look at the help page regex. Lookbehind is supported for perl=TRUE. So regexp("^\\d{4}|\\d{1}(?<=\\d{3}$)",s) does not throw an error, but does not select what you want. –  mpiktas Jan 12 '12 at 12:02
    
Thanks for the tip! I knew that the regex would not capture all, I was just experimenting a bit - and got stomped when I kept getting an "invalid regular expression" message. –  Thomas Jensen Jan 12 '12 at 14:46
    
With strapply in gsubfn this regular expression works and does not require lookahead or lookbehind: L <- c("199719982001", "199719982002", "199719982003", "199719982003"); library(gsubfn); strapply(L, "^(....)....(.)0*(.*)", c, simplify = TRUE) –  G. Grothendieck Jan 12 '12 at 15:34

3 Answers 3

up vote 7 down vote accepted

Since this is fixed format, why not use substr? year1 is extracted using substr(s,1,4), id1 is extracted using substr(s,9,9) and the id2 as as.numeric(substr(s,10,13)). In the last case I used as.numeric to get rid of the zeroes.

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1  
Thanks mpiktas, should have thought of that. I am however still curious as to why the lookbehind does not work... –  Thomas Jensen Jan 12 '12 at 12:04
    
See my other answer :) –  mpiktas Jan 12 '12 at 12:07

You will need to use gregexpr from the base package. This works:

> s <- "199719982001"
> gregexpr("^\\d{4}|\\d{1}(?<=\\d{3}$)",s,perl=TRUE)
[[1]]
[1]  1 12
attr(,"match.length")
[1] 4 1
attr(,"useBytes")
[1] TRUE

Note the perl=TRUE setting. For more details look into ?regex.

Judging from the output your regular expression does not catch id1 though.

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You can use sub.

sub("^(.{4}).{4}(.{1}).*([1-9]{1,3})$","\\1\\2\\3",s)
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Thanks for the suggestion! –  Thomas Jensen Jan 15 '12 at 20:44

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