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I have a strange request with regex in R. I have vector of character strings where some have multiple trailing periods. I want to replace these periods with spaces. The example and desired outcome should make clear what I'm after (maybe I need to attack it with what I give to replace argument rather than the pattern argument of gsub):

Example and attempts:

x <- c("good", "little.bad", "really.ugly......")
gsub("\\.$", " ", x)
  #produces this
  #[1] "good"              "little.bad"        "really.ugly..... "
gsub("\\.+$", " ", x)
  #produces this
  #[1] "good"         "little.bad"   "really.ugly "

Desired outcome

[1] "good"              "little.bad"        "really.ugly      "

So the original vector (x) had the last string with 6 periods at the end so I'd like 6 spaces without touching the period between really and ugly. I know the $ looks at the end but can't get past this.

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3 Answers

up vote 13 down vote accepted

Try this:

gsub("\\.(?=\\.*$)", " ", mystring, perl=TRUE)

Explanation:

\.   # Match a dot
(?=  # only if followed by
 \.* # zero or more dots
 $   # until the end of the string
)    # End of lookahead assertion.
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I'm getting invalid regular expression '\.(?=\.*$)', reason 'Invalid regexp' –  David Robinson Aug 31 '12 at 21:36
    
@DavidRobinson: Inside a string, you need to double the backslashes. –  Tim Pietzcker Aug 31 '12 at 21:37
2  
+1 I edited your answer to show how it translates to R. –  Andrie Aug 31 '12 at 21:38
    
@Andrie: Thanks; I moved your edit up into the original answer. Not much sense leaving the incomplete code standing there. –  Tim Pietzcker Aug 31 '12 at 21:39
1  
@GavinSimpson: No recursion is involved here. First the \. matches any dot. Then the lookahead expression (?=...) "looks ahead" in the string to see if the regex contained inside it could be matched here. But it doesn't actually advance the regex engine inside the string. So in this case a dot is only matched if nothing but dots follows until the end of the string. And then the next dot is matched and replaced, and then the next... –  Tim Pietzcker Aug 31 '12 at 21:47
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While I waited for a regex solution that makes sense I decided to come up with a nonsensical way to solve this:

messy.sol <- function(x) {
paste(unlist(list(gsub("\\.+$", "", x), 
    rep(" ", nchar(x) -  nchar(gsub("\\.+$", "", x))))),collapse="")
}

sapply(x, messy.sol, USE.NAMES = FALSE)

I'd say Tim's is a bit prettier :)

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+1 as long as it works ;) –  Paul Hiemstra Aug 31 '12 at 21:44
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Tim's solution is clearly better but I figured I'd try my hand at an alternate way. Using liberal use of regmatches helps us out here

x <- c("good", "little.bad", "really.ugly......")
# Get an object with 'match data' to feed into regmatches
# Here we match on any number of periods at the end of a string
out <- regexpr("\\.*$", x)

# On the right hand side we extract the pieces of the strings
# that match our pattern with regmatches and then replace
# all the periods with spaces.  Then we use assignment
# to store that into the spots in our strings that match the
# regular expression.
regmatches(x, out) <- gsub("\\.", " ", regmatches(x, out))
x
#[1] "good"              "little.bad"        "really.ugly      "

So not quite as clean as a single regular expression. But I've never really gotten around to learning those 'lookahead's in perl regular expressions.

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not as clean as Tim's but still a good solution (particularly in comparison to my own). +1 –  Tyler Rinker Sep 1 '12 at 0:17
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