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How to find the longest common prefix of two strings in Scala?

I probably can code an "imperative" solution (with an index i running over the strings while s(i) == t(i)) but I am looking for a "functional-style" solution (without updating the index variable explicitly, for instance).

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6 Answers 6

up vote 16 down vote accepted
scala> "helloworld".zip("hellohell").takeWhile(Function.tupled(_ == _)).map(_._1).mkString
res130: String = hello
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Using .unzip._1 instead of .map(_._1) arguably makes what's going on a little clearer. –  Travis Brown Nov 12 '11 at 13:06
    
I find map clearer. –  missingfaktor Nov 12 '11 at 13:06
    
It's a bit of a waste to zip the entire strings, when the common prefix may be just a few chars –  Adrian Nov 13 '11 at 8:28
4  
If you change "helloworld".zip("hellohell") to ("helloworld", "hellohell").zipped, I think that takes care of the inefficiency. –  dyross Nov 13 '11 at 18:37
    
@DavidY.Ross: +1. Or "helloworld".view zip "hellohell". –  missingfaktor Nov 14 '11 at 8:06

Another recursive version.

def pref(s: String, t: String, out: String = ""): String = {
  if (s == "" || t == "" || s(0) != t(0)) out
  else pref(s.substring(1), t.substring(1), out + s(0))
}

It's over 10 times quicker than sjj's and over twice as fast as missingfaktor's. Java's substring is fast because String is immutable.

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Recursive version:

def findCommonPrefix(s1 : String, s2 : String) : String = {
    def findCommonPrefixR(l1: List[Char], l2 : List[Char]) : List[Char] = {
        l1 match {
        case Nil => Nil
        case x::xs => if (l2 != Nil && l2.head == x) x :: findCommonPrefixR(xs, l2.tail) else Nil
        }
    }
    findCommonPrefixR(s1.toList, s2.toList).mkString
}
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Luigi mentions this his is over 10 times quicker than mine. It actually depends. With strings that don't have many match characters, his is quicker. However, for strings that are likely to have more characters that match, mine is actually > 2x the speed of his. –  sjj Nov 13 '11 at 13:58
    
Luigi, try timing this: pref("this is a a string that is somewhat, moderately, sort of long in length", "this is a a string that is somewhat, moderately, sort of long in length") –  sjj Nov 13 '11 at 14:05
    
I admit I only did a very quick and un-thorough benchmark with a single test string. The performance of yours improves a lot when run an a 64-bit JVM. As missingfaktor's imperative version shows, both are still very inefficient in terms of machine operations. –  Luigi Plinge Nov 13 '11 at 16:27

The imperative version can be simplified to

def longestCommonPrefix(s1:String, s2:String):String = {
  val maxSize = scala.math.min(s1.length, s2.length)
  var i:Int = 0;
  while ( i < maxSize && s1(i)== s2(i)) i += 1;
  s1.take(i);
}
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If speed is the deal, go imperative.

scala> def longestCommonPrefix(a: String, b: String): String = {
     |   var same = true
     |   val sb = new StringBuilder
     |   var i = 0
     |   while(same && i < math.min(a.length, b.length)) {
     |     if(a.charAt(i) != b.charAt(i)) {
     |       same = false
     |     } else {
     |       sb += a.charAt(i)
     |       i += 1
     |     }
     |   }
     |   sb.result
     | }
longestCommonPrefix: (a: String, b: String)String

scala> longestCommonPrefix("", "")
res50: String = ""

scala> longestCommonPrefix("helloworld", "hellohell")
res51: String = hello

EDIT:

As per Luigi's suggestion:

scala> def longestCommonPrefix(a: String, b: String): String = {
     |   var same = true
     |   var i = 0
     |   while(same && i < math.min(a.length, b.length)) {
     |     if(a.charAt(i) != b.charAt(i)) {
     |       same = false
     |     } else {
     |       i += 1
     |     }
     |   }
     |   a.substring(0, i)
     | }
longestCommonPrefix: (a: String, b: String)String

scala> longestCommonPrefix("helloworld", "hellohell")
res68: String = hello
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1  
Instead of using a StringBuilder just count the index, then return a.substring(0, i). This is much faster because you don't have to build a new String at all. –  Luigi Plinge Nov 13 '11 at 16:42
    
Excellent suggestion. Thanks! –  missingfaktor Nov 13 '11 at 16:47

To get the common prefix of any number of strings:

def commonPrefix (strs: Seq[String]): String = {
  var i = 0;
  strs(0).takeWhile { ch => strs.forall(_(i) == ch) && {i += 1; true}} mkString
} 
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