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Here is a version I wrote using split:

fileName.split('.').init ++ Seq("js") mkString "."

This transforms e.g. foo.bar.coffee into foo.bar.js.

What I like:

  • it works
  • it doesn't rely on things like indexOf()
  • it feels functional ;)

What I don't like:

  • it's not as short as I would hope
  • it might confuse some readers

How can I write an even simpler / straightforward version?

UPDATE: Great answers below! In short:

  • seems like my original approach above was not bad although it doesn't cover some corner cases, but that's fixable with a longer expression if you need to cover those
  • another, slightly shorter approach uses regexps, which will be more or less readable depending on your regexp background
  • a slightly shorter syntax for the original approach (corner cases not covered) reads:

    fileName.split('.').init :+ "js" mkString "."

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2  
For the record, this is very straightforward to me. –  Rafe Kettler Jan 19 '11 at 1:29
1  
I agree with Rafe. I personally like it better than the regular expression versions. However, it does not work well with file names that have no extension. You can get rid of the ++ Seq("js") by replacing it with :+ "js", by the way. –  Madoc Jan 19 '11 at 2:29
    
Keep in mind that depending on what you want to do, files with double extensions are not treated "correctly", e.g. x.tar.gz becomes x.tar.js –  Raphael Jan 19 '11 at 6:44
    
@Madoc, cool, hadn't thought of using :+. –  ebruchez Jan 19 '11 at 7:00

5 Answers 5

up vote 7 down vote accepted

I'm afraid you actually have to make it longer to do what is probably the most sensible robust thing:

scala> "oops".split('.').init ++ Seq("js") mkString "."  
res0: String = js

Kinda unexpected to lose the name of your file (at least if you're an end user)!

Let's try regex:

scala> "oops".replaceAll("\\.[^.]*$", ".js")
res1: java.lang.String = oops

Didn't lose the file name, but there's no extension either. Ack.

Let's fix it:

def extensor(orig: String, ext: String) = (orig.split('.') match {
  case xs @ Array(x) => xs
  case y => y.init
}) :+ "js" mkString "."

scala> extensor("oops","js")
res2: String = oops.js

scala> extensor("oops.txt","js")
res3: String = oops.js

scala> extensor("oops...um...","js")
res4: String = oops...js

Or with regex:

scala> "oops".replaceAll("\\.[^.]*$", "") + ".js" 
res5: java.lang.String = oops.js

scala> "oops.txt".replaceAll("\\.[^.]*$", "") + ".js"
res6: java.lang.String = oops.js

scala> "oops...um...".replaceAll("\\.[^.]*$", "") + ".js"
res7: java.lang.String = oops...um...js

(Note the different behavior on the corner case where the filename ends with periods.)

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What I find kind of a waste is that all substrings for period delimited sections of the filename are being created, and then later concatenated again. To avoid this, it would be good to use lastIndexOf, which the OP did not like. However, I think it would be a good idea. –  Madoc Jan 19 '11 at 2:55
    
@Madoc - Presumably you're doing these operations because you want to work with files. How long does a typical file operation take compared to a split + mkString? –  Rex Kerr Jan 19 '11 at 3:03
    
I would expect the VM to optimize this away, anyway. –  Raphael Jan 19 '11 at 6:41
    
@Raphael - You expect too much from the poor VM. But a few bulk memory copies and a little garbage collection doesn't take many cycles. –  Rex Kerr Jan 19 '11 at 8:02
    
True; for small strings as typical for file names, it might never leave the cache. –  Raphael Jan 19 '11 at 8:26

Will a simple regex replacement do the trick?

Like:

scala> "package.file.java".replaceAll("(\\.[^\\.]*$)", ".rb") 
scala> "package.file.rb"
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Haha, hello Eric. You got 12 seconds on me, but mine is 2 chars shorter. ;) –  Synesso Jan 19 '11 at 1:56
    
I knew I had to improve my regex fu,... –  Eric Jan 19 '11 at 2:54

You could always use the replaceAll method on java.lang.String

scala> "foo.bar.coffee".replaceAll("\\.[^.]*$", ".js")
res11: java.lang.String = foo.bar.js

It's shorter but less readable.

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What's wrong with lastIndexOf?

fileName.take(1 + fileName.lastIndexOf(".")) + "js"

Of course if you want to keep the fileName when it doesn't contain any dot, you need to do a little bit more

(if (fileName.contains('.')) fileName.take(fileName.lastIndexOf(".")) 
else fileName) + ".js"
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Nothing absolutely wrong with indexes. But in essence I was trying to see where other approaches lead you. It's a bit like the difference between using for (i = 0; i < foo.length; i++) and using for (f < foo): sometime indexes do not actually reflect closely what you are trying to do. –  ebruchez Jan 19 '11 at 18:34

So, I'll go for speed here. As it happens, substring is constant time because it simply does not copy the string. So,

((index: Int) => (
) + ".js")(fileName lastIndexOf '.')

This uses a closure, which will slow it down a bit. Faster:

def addJS(fileName: String) = {
    def addJSAt(index: Int) = (
        if (index >= 0) fileName substring (0, index) 
        else fileName
    ) + ".js"

    addJSAt(fileName lastIndexOf '.')
}
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Something is wrong when you are going for speed and I'm writing pattern matches and saying not to worry.... –  Rex Kerr Jan 19 '11 at 13:54
    
@Rex Hey, is not like you left me anything else to go for... :-) –  Daniel C. Sobral Jan 19 '11 at 14:04

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