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Given a string like abab/docId/example-doc1-2019-01-01, I want to use Regex to extract these values:

firstPart = example
fullString = example-doc1-2019-01-01

I have this:

import scala.util.matching.Regex

case class Read(theString: String) {

  val stringFormat: Regex = """.*\/docId\/([A-Za-z0-9]+)-([A-Za-z0-9-]+)$""".r

  val stringFormat(firstPart, fullString) = theString

}

But this separates it like this:

firstPart = example
fullString = doc1-2019-01-01

Is there a way to retain the fullString and do a regex on that to get the part before the first hyphen? I know I can do this using the String split method but is there a way do it using regex?

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You may use

val stringFormat: Regex = ".*/docId/(([A-Za-z0-9])+-[A-Za-z0-9-]+)$".r
                                    ||_ Group 2 _|               |
                                    |                            |
                                    |_________________ Group 1 __|

See the regex demo.

Note how capturing parentheses are re-arranged. Also, you need to swap the variables in the regex match call, see demo below (fullString should come before firstPart).

See Scala demo:

val theString = "abab/docId/example-doc1-2019-01-01"
val stringFormat = ".*/docId/(([A-Za-z0-9]+)-[A-Za-z0-9-]+)".r
val stringFormat(fullString, firstPart) = theString
println(s"firstPart: '$firstPart'\nfullString: '$fullString'")

Output:

firstPart: 'example'
fullString: 'example-doc1-2019-01-01'

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