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I have a list of strings and a regex pattern. I would like to filter the the items from the list that don't match the regex. I am using the following code which doesn't seem to work:

val matching = token.filter(x => regex.pattern.matcher(x).matches)

where token is the list of strings and regex is the pattern I want to match

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closed as not constructive by Gene T, Neolisk, ithcy, anon, iagreen Feb 10 '13 at 1:28

As it currently stands, this question is not a good fit for our Q&A format. We expect answers to be supported by facts, references, or expertise, but this question will likely solicit debate, arguments, polling, or extended discussion. If you feel that this question can be improved and possibly reopened, visit the help center for guidance. If this question can be reworded to fit the rules in the help center, please edit the question.

    
I think this question is perfectly fine for SO and I'm surprised it was closed without comment. All it needs is an example string/regex to be a perfect, compact question. –  Ken Williams Feb 20 at 6:21

4 Answers 4

Your code should work. Are you sure your regex is correct?

val regex = "a.c".r
val tokens = List("abc", "axc", "abd", "azc")
tokens filter (x => regex.pattern.matcher(x).matches)
//result: List[String] = List(abc, axc, azc)

Edit:

Given your regex, make sure that the following examples match your expectation:

val regex = """\b[b-df-hj-np-tv-z]*[aeiou]+[b-df-hj-np-tv-z]*\b""".r

regex.pattern.matcher("good").matches
//res3: Boolean = true

regex.pattern.matcher("no good deed").matches
//res4: Boolean = false

The matches method will attempt to match the whole string.

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yes my regex is simple, """\b[b-df-hj-np-tv-z]*[aeiou]+[b-df-hj-np-tv-z]*\b""".r –  princess of persia Feb 8 '13 at 6:32
    
Are you aware that the regex will try to match the whole string? –  user500592 Feb 8 '13 at 6:44
    
@user500592, what's a good way to not match against the whole string? regex.unanchored.pattern.matcher(string).matches doesn't seem to do the trick. It seems necessary to stick .* on the head & tail of the regex, which is pretty ugly. –  Ken Williams Feb 20 at 6:29

Another option for completeness:

val words = List("alpha", "bravo", "charlie", "alphie")
words.filter(_.matches("a.*"))

res0: List[java.lang.String] = List(alpha, alphie)
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This reparses the regular expression for each element in the list. –  Jean-Philippe Pellet Feb 8 '13 at 9:51

Have you tried it like:

val list = List("abc","efg","")
val p = java.util.regex.Pattern.compile(".*")

val matching = list filter { p.matcher(_).matches }
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Something that I've had trouble with when using Scala's Regex engine is that .matches will attempt to match the entire string, as opposed to doing a match on every possible substring.

In many regex engines, the following code would evaluate to a match:

"alphie".match(/a/)

In Scala, using .matches here would fail; it will attempt to match "a" against the entire string "alphie". However, if the Regex was /a*/, it would work, since the * character will match zero or many characters.

If adding repeating Regex symbols isn't an option, the findAllIn method might be useful:

val words = List("alpha", "bravo", "charlie", "alphie")

val regex = "a.".r                                

//returns a tuple with the list item that matched, plus the text that fit the regex
for {
    word <- words
    matches <- regex.findAllIn(word)
} yield (word,matches)

Note: findAllIn may match a particular string multiple times, if there are multiple matches in the string.

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Yes. Match means match! Not search or find. –  Randall Schulz Feb 8 '13 at 15:49
    
I think @nimda is aware of that, but it's surprising that a conceptually simple concept like regex.matchesSomewhere(_) doesn't exist in the current API. @nimda, one option is to use the .unanchored method. –  Ken Williams Feb 20 at 6:20

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