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I have string like this:

years<-c("20 years old", "1 years old")

I would like to grep only the numeric number from this vector. How do I go about doing this? I am new to regex in R.

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So in the end you want a numeric vector like c(20, 1)? –  Andrew Jan 27 '13 at 1:48
    
yes, I would like grep the numbers –  user1471980 Jan 27 '13 at 1:49

4 Answers 4

up vote 6 down vote accepted

How about

# pattern is by finding a set of numbers in the start and capturing them
as.numeric(gsub("([0-9]+).*$", "\\1", years))

or

# pattern is to just remove _years_old
as.numeric(gsub(" years old", "", years))

or

# split by space, get the element in first index
as.numeric(sapply(strsplit(years, " "), "[[", 1))
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1  
Why is the .* necessary? If you want them at the start, why not use ^[[:digit:]]+? –  sebastian-c Jan 27 '13 at 2:13
1  
.* is necessary as you need to match the entire string. Without that, nothing is removed. Also, note that sub can be used here instead of gsub. –  Matthew Lundberg Jan 27 '13 at 2:20

Here's an alternative to Arun's first solution, with a simpler Perl-like regular expression:

as.numeric(gsub("[^\\d]+", "", years, perl=TRUE))
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1  
Why replace with \\1? –  Matthew Lundberg Jan 27 '13 at 2:21
    
Good point :) That was left over from some other regex I was working on… –  Andrew Jan 27 '13 at 2:42

I think that substitution is an indirect way of getting to the solution. If you want to retrieve all the numbers, I recommend gregexpr:

matches <- regmatches(years, gregexpr("[[:digit:]]+", years))
as.numeric(unlist(matches))

If you have multiple matches in a string, this will get all of them. If you're only interested in the first match, use regexpr instead of gregexpr and you can skip the unlist.

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I didn't expect it, but this solution is slower than any of the others, by an order of magnitude. –  Matthew Lundberg Jan 27 '13 at 5:15
    
@MatthewLundberg the gregexpr, regexpr or both? –  sebastian-c Jan 27 '13 at 16:16
1  
gregexpr. I hadn't tried regexpr until just now. HUGE difference. Using regexpr puts it between Andrew's and Arun's solutions (second fastest) on a 1e6 set. Perhaps also interesting, using sub in Andrew's solution does not improve the speed. –  Matthew Lundberg Jan 27 '13 at 16:42

You could get rid of all the letters too:

as.numeric(gsub("[[:alpha:]]", "", years))

Likely this is less generalizable though.

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2  
Oddly, Andrew's solution beats this by a factor of 5 on my machine. –  Matthew Lundberg Jan 27 '13 at 5:16
    
Wouldn't have guessed that. –  Tyler Rinker Jan 27 '13 at 5:40

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