46

In R, is there a better/simpler way than the following of finding the location of the last dot in a string?

x <- "hello.world.123.456"
g <- gregexpr(".", x, fixed=TRUE)
loc <- g[[1]]
loc[length(loc)]  # returns 16

This finds all the dots in the string and then returns the last one, but it seems rather clumsy. I tried using regular expressions, but didn't get very far.

72

Does this work for you?

x <- "hello.world.123.456"
g <- regexpr("\\.[^\\.]*$", x)
g
  • \. matches a dot
  • [^\.] matches everything but a dot
  • * specifies that the previous expression (everything but a dot) may occur between 0 and unlimited times
  • $ marks the end of the string.

Taking everything together: find a dot that is followed by anything but a dot until the string ends. R requires \ to be escaped, hence \\ in the expression above. See regex101.com to experiment with regex.

  • 1
    a '.' matches every possible character, to match a literal '.' you need to escape it with a '\' and unfortunatly, you need to escape this '\' with another '\'. So finally your expression looks like '\\.' – CousinCocaine Apr 16 '14 at 9:28
29

How about a minor syntax improvement?

This will work for your literal example where the input vector is of length 1. Use escapes to get a literal "." search, and reverse the result to get the last index as the "first":

 rev(gregexpr("\\.", x)[[1]])[1]

A more proper vectorized version (in case x is longer than 1):

 sapply(gregexpr("\\.", x), function(x) rev(x)[1])

and another tidier option to use tail instead:

sapply(gregexpr("\\.", x), tail, 1)
  • 9 more to go,but all i wanted to say is: slick. – Matt Bannert Mar 7 '11 at 8:39
6

Someone posted the following answer which I really liked, but I notice that they've deleted it:

regexpr("\\.[^\\.]*$", x)

I like it because it directly produces the desired location, without having to search through the results. The regexp is also fairly clean, which is a bit of an exception where regexps are concerned :)

  • 1
    yeah, that was me. I thought the previous solution worked so I deleted it. Maybe I shouldn't have :) – Vincent Mar 7 '11 at 2:11

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