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Suppose there is a vector of sequences of the form "foo" or "foo|baz|bar" (one single word or multiple words separated by special character like "|"), and we are also given a word and we want to find to which items of the vector it has a whole word match.

For example the word "foo" has a whole match in "foo|baz|bar", but not a whole match in either "foobaz|bar" or "bazfoo".

First I tried to use "\\b" that indicates either the start or the end edges of a whole word and it works successfully:

grep("\\bfoo\\b", "foo")         # match
grep("\\bfoo\\b", "foobaz|bar")  # mismatch    
grep("\\bfoo\\b", "bazfoo")      # mismatch

Then I tried to add "|" as the other possible separator of both ends, and group it with "\\b" using [ and ]:

grep("[|\\b]foo[|\\b]", "foo|baz|bar")  # mismatch!
grep("[|\\b]foo[|\\b]", "foo")          # mismatch!

Later I found \\b is not indicator of start or end of the character string, but start or end of a whole word (so many characters like space and ,|-^. but not numbers and underline _ separate whole words). So "[|\\b]foo[|\\b]" matches to all of these strings: "foo", "foo|bar|baz", "foo-bar", "baz foo|bar" but not to "foo_bar" or "foo2".

But my question still remains: Why "[|\\b]foo[|\\b]" pattern fails to match with "foo"?

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So hard to me to select the correct answer as most of them are really perfect! –  Ali Oct 14 '12 at 19:11

4 Answers 4

up vote 2 down vote accepted

\b matches at the following positions

  1. Before the first character in the string, if the first character is a word character.
  2. After the last character in the string, if the last character is a word character.
  3. Between two characters in the string, where one is a word character and the other is not a word character. (Word characters are a-zA-Z1-9_)

Since | stands for alternation operator in regex, you will have to escape it.

So the regex \bfoo\b would match foo in foo|bar because | is a non word character. There is no need to use the character set [\b\|]

Edit: As flodel pointed out below \b inside the character set represents the backspace character. So it would match the | inside [\b\|] and not word boundary.

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You could use strplit:

> "foo" %in% unlist(strsplit("foo|baz|bar", split = "|", fixed = TRUE))
[1] TRUE

Which you can vectorize:

> z <- c("foo|baz|bar", "foobaz|bar", "bazfoo")
> x <- c("foo", "foot")
> sapply(strsplit(z, split = "|", fixed = TRUE), function(x,y)y %in% x, x)
      [,1]  [,2]  [,3]
[1,]  TRUE FALSE FALSE
[2,] FALSE FALSE FALSE
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Thanks, but I am more specially interested to know why grep("[|\\b]foo[|\\b]", "foo") mismatches? –  Ali Oct 14 '12 at 18:39
    
Because you need to escape |. For the same reason, I chose to use fixed = TRUE inside strsplit. –  flodel Oct 14 '12 at 18:42
    
If I am looking only for the "|" as the separator, "\\b" is not a good choice, so your answer seems better for this case –  Ali Oct 14 '12 at 18:50
    
It is also programmatically friendly: as you can see, no ugly pasting required to create a regex pattern. –  flodel Oct 14 '12 at 19:09
    
Thanks flodel. Your answer is perfect. I wish it was possible to select 3 answers correct for this question - I even tried! –  Ali Oct 14 '12 at 19:12

Since | has special meaning in a regular expression, you need to escape it, i.e. use \\|:

ptn <- "\\bfoo[\\|\\b]"

grep(ptn, "foo|baz|bar") 
[1] 1

grep(ptn, "foo")          
integer(0)
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Thanks for your great comment. I found even "\\bfoo\\b" works for my aim. Do you think refinement of your answer is needed? –  Ali Oct 14 '12 at 18:49
    
@AliSharifi If you want to refine my answer, please go ahead. I believe I have answered your question as posted. –  Andrie Oct 14 '12 at 19:03
    
Here is something interesting: grep("afooa", "afooa") gives a match. So does grep("[a]foo[a]", "afooa"). So does grep("\\bfoo\\b", "foo"), but not grep("[\\b]foo[\\b]", "foo"). Any idea? –  flodel Oct 14 '12 at 19:14
    
I found the answer to my question here: regular-expressions.info/reference.html. Inside a character class, \b is a backspace character.. So this is not a good approach. –  flodel Oct 14 '12 at 19:20

This would also work:

gregexpr("foo|", "foo|baz|bar", fixed = TRUE)[[c(1, 1)]] > 0
gregexpr("foo|", "foobaz|bar", fixed = TRUE)[[c(1, 1)]] > 0    
gregexpr("foo|", "bazfoo", fixed = TRUE)[[c(1, 1)]] > 0 

This approach is different in that you can utilize spacing options that you supply gregexpr to find words consisting of two words:

gregexpr("foo|", "baz foo|", fixed = TRUE)[[c(1, 1)]] > 0 
gregexpr("  foo|", "baz foo|", fixed = TRUE)[[c(1, 1)]] > 0 
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