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The below code works so long as before and after strings have no characters that are special to a regex:

before <- 'Name of your Manager (note "self" if you are the Manager)' #parentheses cause problem in regex
after  <- 'CURRENT FOCUS'

pattern <- paste0(c('(?<=', before, ').*?(?=', after, ')'), collapse='')
ex <- regmatches(x, gregexpr(pattern, x, perl=TRUE))

Does R have a function to escape strings to be used in regexes?

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3 Answers 3

up vote 2 down vote accepted

Use \Q...\E to surround the verbatim subpatterns:

# test data
before <- "A."
after <- ".Z"
x <- c("A.xyz.Z", "ABxyzYZ")

pattern <- sprintf('(?<=\\Q%s\\E).*?(?=\\Q%s\\E)', before, after)

which gives:

> gregexpr(pattern, x, perl = TRUE) > 0
[1]  TRUE FALSE
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even better! I wasn't aware of \Q...\E. I can see it coming in handy in many places. –  dnagirl Apr 26 '13 at 12:06

In Perl, there is http://perldoc.perl.org/functions/quotemeta.html for doing exactly that. If the doc is correct when it says

Returns the value of EXPR with all the ASCII non-"word" characters backslashed. (That is, all ASCII characters not matching /[A-Za-z_0-9]/ will be preceded by a backslash in the returned string, regardless of any locale settings.)

then you can achieve the same by doing:

quotemeta <- function(x) gsub("([^A-Za-z_0-9])", "\\\\\\1", x)

And your pattern should be:

pattern <- paste0(c('(?<=', quotemeta(before), ').*?(?=', quotemeta(after), ')'),
                  collapse='')

Quick sanity check:

a <- "he'l(lo)"
grepl(a, a)
# [1] FALSE
grepl(quotemeta(a), a)
# [1] TRUE
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perfect! I suppose it isn't a core function because R isn't usually meant for text processing. –  dnagirl Apr 25 '13 at 18:58

dnagirl, such a function exists and is glob2rx

a <- "he'l(lo)"
tt <- glob2rx(a)
# [1] "^he'l\\(lo)$"

before <- 'Name of your Manager (note "self" if you are the Manager)'
tt <- glob2rx(before)
# [1] "^Name of your Manager \\(note \"self\" if you are the Manager)$"

You can just remove the "^" and "$" from the strings by doing:

substr(tt, 2, nchar(tt)-1)
# [1] "he'l\\(lo)"
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I saw glob2rx before I posted my answer. I don't think it is the function for the task, try things like glob2rx(".*") for example. –  flodel Apr 25 '13 at 22:42
    
@flodel, I'm aware of its limitations. Most of the time it worked for me. The only reason I posted here is because of this Ricardo's post where it seems that his question is an exact duplicate of this one.. and I was asked to post my comment here as an answer. –  Arun Apr 25 '13 at 22:45

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