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I want to perform several ordered and successive replaceAll(...,...) on a string in a functional way in scala.

What's the most elegant solution ? Scalaz welcome ! ;)

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4 Answers 4

up vote 9 down vote accepted

First, let's get a function out of the replaceAll method:

scala> val replace = (from: String, to: String) => (_:String).replaceAll(from, to)
replace: (String, String) => String => java.lang.String = <function2>

Now you can use Functor instance for function, defined in scalaz. That way you can compose functions, using map (or to make it look better, using unicode aliases).

It will look like this:

scala> replace("from", "to") ∘ replace("to", "from") ∘ replace("some", "none")
res0: String => java.lang.String = <function1>

If you prefer haskell-way compose (right to left), use contramap:

scala> replace("some", "none") ∙ replace("to", "from") ∙ replace ("from", "to")
res2: String => java.lang.String = <function1>

You can also have some fun with Category instance:

scala> replace("from", "to") ⋙ replace("to", "from") ⋙ replace("some", "none")
res5: String => java.lang.String = <function1>

scala> replace("some", "none") ⋘ replace("to", "from") ⋘ replace ("from", "to")
res7: String => java.lang.String = <function1>

And applying it:

scala> "somestringfromto" |> res0
res3: java.lang.String = nonestringfromfrom

scala> res2("somestringfromto")
res4: java.lang.String = nonestringfromfrom

scala> "somestringfromto" |> res5
res6: java.lang.String = nonestringfromfrom

scala> res7("somestringfromto")
res8: java.lang.String = nonestringfromfrom
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1  
Bull's eye ! Great and complete answer using Scalaz. –  M'λ' Jul 6 '12 at 9:18
11  
@M'λ', if you don't want to pull in Scalaz dependency, you can use andThen instead of and compose instead of , which are both part of standard library. –  missingfaktor Jul 6 '12 at 19:32
1  
It blows my mind that people find ∘ and ∙ readable. Much prefer andThen and compose, I can understand the code without having to look up those symbols (not to mention how difficult it is to look symbols up through google) –  Mike McFarland Apr 1 '13 at 19:40
    
@MikeMcFarland those are "official" function composition symbols en.wikipedia.org/wiki/Function_composition . They are readable because they are recognizable: I don't need to look them up, I already know what they are doing. –  folone Apr 2 '13 at 7:12
    
@folone It really does help to know where they come from, thanks. I prefer to get used to symbolic representations, and these concepts seem sensible to have symbols for. However, its more then a little awkward to use unicode. –  Mike McFarland Apr 2 '13 at 14:48

If its just a few invocations then just chain them. Otherwise I guess I'd try this:

Seq("a" -> "b", "b" -> "a").foldLeft("abab"){case (z, (s,r)) => z.replaceAll(s, r)}

Or if you like shorter code with confusing wildcards and extra closures:

Seq("a" -> "b", "b" -> "a").foldLeft("abab"){_.replaceAll _ tupled(_)}
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With Scalaz, one could also do case (str, tup) => tup fold str.replaceAll. –  Debilski Jul 5 '12 at 18:36
    
Ok, that's a 'standard' and concise scala solution that suits me well without scalaz at hand.But I'm sorry, i will accept the scalaz solution by folone as the best because I was hoping for something like what he proposed ! –  M'λ' Jul 6 '12 at 9:17

Define a replace function with anonymous parameters and then you can chain successive replace functions together.

scala> val s = "hello world"
res0: java.lang.String = hello world

scala> def replace = s.replaceAll(_, _)
replace: (java.lang.String, java.lang.String) => java.lang.String

scala> replace("h", "H")  replace("w", "W")
res1: java.lang.String = Hello World
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2  
That is some confusing code. –  Travis Brown Jul 6 '12 at 12:59

Another Scalaz-based solution to this problem would be to use the Endo monoid. This monoid captures the identity function (as the monoid's identity element) and function composition (as the monoid's append operation). This solution would be particularly useful if you have an arbitrarily-sized (even possibly empty) list of functions to apply.

val replace = (from: String, to: String) => (_:String).replaceAll(from, to)

val f: Endo[String] = List(
  replace("some", "none"),
  replace("to", "from"),
  replace("from", "to")    
).foldMap(_.endo)

e.g. (using one of folone's examples)

scala> f.run("somestringfromto")
res0: String = nonestringfromfrom
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Seeing this today I was thinking of debasishg.blogspot.com/2013/03/… too :) –  sourcedelica Mar 12 '13 at 20:39
    
sourcedelica: That is similar to another answer I wrote a few weeks ago: stackoverflow.com/questions/14900305/… –  Ben James Mar 12 '13 at 22:15

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