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Is it possible to split string into lexems somehow like

"" match {
    case name :: "@" :: domain :: "." :: zone => doSmth(name, domain, zone)

In other words, on the same manner as lists...

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I'm not sure if you can do it, but I can explain why your example doesn't work. Essentially what you have is a matcher for a list of Strings because the :: case class, aka "cons" operator, builds a list out of elements. What you need is a case class which accepts two lists and concatenates them, much like the ::: operator (but unfortunately there is not a ::: case class as with cons). – joescii Jan 16 '14 at 20:48

2 Answers 2

up vote 19 down vote accepted

Yes, you can do this with Scala's Regex functionality.

I found an email regex on this site, feel free to use another one if this doesn't suit you:


The first thing we have to do is add parentheses around groups:


With this we have three groups: the part before the @, between @ and ., and finally the TLD.

Now we can create a Scala regex from it and then use Scala's pattern matching unapply to get the groups from the Regex bound to variables:

val Email = """([-0-9a-zA-Z.+_]+)@([-0-9a-zA-Z.+_]+)\.([a-zA-Z]{2,4})""".r
Email: scala.util.matching.Regex = ([-0-9a-zA-Z.+_]+)@([-0-9a-zA-Z.+_]+)\.([a-zA-Z]    {2,4})

"" match {
    case Email(name, domain, zone) =>

// user
// domain
// com
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+1 This is easily one of the nicest ways I've seen a language handle regexes. Far nicer than the alternative in a lot of languages, forcing you to manually access a groups object and find the right match by index or name. Good answer. – KChaloux Jan 16 '14 at 20:39

In general regex is horribly inefficient, so wouldn't advise.

You CAN do it using Scala pattern matching by calling .toList on your string to turn it into List[Char]. Then your parts name, domain and zone will also be List[Char], to turn them back into Strings use .mkString. Though I'm not sure how efficient this is.

I have benchmarked using basic string operations (like substring, indexOf, etc) for various use cases vs regex and regex is usually an order or two slower. And of course regex is hideously unreadible.

UPDATE: The best thing to do is to use Parsers, either the native Scala ones, or Parboiled2

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Whaaat? Are you rebuilding the regex each time? The point of regexes is that they create 'machines' that can be matched against strings very efficiently. Also, using regexes for very small checks doesn't make sense, but for more complex matches, I would expect great efficiency savings, especially as the number if inputs passed through grows. – Kenogu Labz Feb 19 at 10:10
@KenoguLabz no the regex construction is outside the benchmark. When I last went to the Scala eXchange conference, I saw a talk that claimed using parsers (or native Scala StringOps) is generally 100 to 1000 times faster. Obviously if a regex is built badly the speed difference can be even greater (lookup backtracking My own benchmarks are generally performed on real data consisting of billions of records. – samthebest Feb 19 at 14:35

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