89

Is there a good "scala-esque" (I guess I mean functional) way of recursively listing files in a directory? What about matching a particular pattern?

For example recursively all files matching "a*.foo" in c:\temp.

19 Answers 19

109

Scala code typically uses Java classes for dealing with I/O, including reading directories. So you have to do something like:

import java.io.File
def recursiveListFiles(f: File): Array[File] = {
  val these = f.listFiles
  these ++ these.filter(_.isDirectory).flatMap(recursiveListFiles)
}

You could collect all the files and then filter using a regex:

myBigFileArray.filter(f => """.*\.html$""".r.findFirstIn(f.getName).isDefined)

Or you could incorporate the regex into the recursive search:

import scala.util.matching.Regex
def recursiveListFiles(f: File, r: Regex): Array[File] = {
  val these = f.listFiles
  val good = these.filter(f => r.findFirstIn(f.getName).isDefined)
  good ++ these.filter(_.isDirectory).flatMap(recursiveListFiles(_,r))
}
  • 7
    WARNING: I ran this code and sometimes f.listFiles returns null (don't know why but on my mac it does) and the recursiveListFiles function crashes. I'm not experienced enough to build an elegant null check in scala, but returning an empty array if these ==null worked for me. – Jan Nov 28 '10 at 21:27
  • 2
    @Jan - listFiles returns null if f doesn't point to a directory or if there's an IO error (at least according to the Java spec). Adding a null check is probably wise for production use. – Rex Kerr Feb 22 '11 at 17:21
  • @Rex Perhaps better than the null check, would be to have sanity check that f is a directory at the start of the function. This would help with readability, in that the meaning of the check would be very clear. E.g: if (!f.isDirectory) return Array() – Peter Schwarz Jul 13 '11 at 17:53
  • 4
    @Peter Schwarz - You still need the null check, since it is possible for f.isDirectory to return true but f.listFiles to return null. For example, if you don't have permission to read the files, you'll get a null. Rather than having both checks, I'd just add the one null check. – Rex Kerr Jul 13 '11 at 19:58
  • 1
    In fact you only need the null check, as f.listFiles returns null when !f.isDirectory. – Duncan McGregor Dec 1 '11 at 11:53
45

I would prefer solution with Streams because you can iterate over infinite file system(Streams are lazy evaluated collections)

import scala.collection.JavaConversions._

def getFileTree(f: File): Stream[File] =
        f #:: (if (f.isDirectory) f.listFiles().toStream.flatMap(getFileTree) 
               else Stream.empty)

Example for searching

getFileTree(new File("c:\\main_dir")).filter(_.getName.endsWith(".scala")).foreach(println)
  • 4
    Alternative syntax: def getFileTree(f: File): Stream[File] = f #:: Option(f.listFiles()).toStream.flatten.flatMap(getFileTree) – VasiliNovikov Feb 14 '14 at 16:00
  • 3
    I agree with your intent, but this your solution is pointless. listFiles() already returns a fully-evaluated array, which your then "lazily" evaluate on toStream. You need a stream form scratch, look for java.nio.file.DirectoryStream. – Daniel Langdon Oct 3 '14 at 16:03
  • 7
    @Daniel it's not absolutely strict, it recurses directories lazily. – Guillaume Massé Oct 18 '14 at 15:22
  • 2
    I shall try that right now on my infinite file system :-) – Brian Agnew Jun 5 '15 at 9:58
20
for (file <- new File("c:\\").listFiles) { processFile(file) }

http://langref.org/scala+java/files

  • 16
    This only does one level; it doesn't recurse into the directories in c:\. – James Moore Nov 24 '12 at 23:28
19

As of Java 1.7 you all should be using java.nio. It offers close-to-native performance (java.io is very slow) and has some useful helpers

But Java 1.8 introduces exactly what you are looking for:

import java.nio.file.{FileSystems, Files}
import scala.collection.JavaConverters._
val dir = FileSystems.getDefault.getPath("/some/path/here") 

Files.walk(dir).iterator().asScala.filter(Files.isRegularFile(_)).foreach(println)

You also asked for file matching. Try java.nio.file.Files.find and also java.nio.file.Files.newDirectoryStream

See documentation here: http://docs.oracle.com/javase/tutorial/essential/io/walk.html

  • i get: Error:(38, 32) value asScala is not a member of java.util.Iterator[java.nio.file.Path] Files.walk(dir).iterator().asScala.filter(Files.isRegularFile(_)).foreach(println) – stuart Sep 29 '17 at 3:05
  • Downvoted because this does not compile. – DanGordon Oct 31 '17 at 21:49
  • I'm sorry. I took for granted you knew that "asScala" requires you to import scala.collection.JavaConverters._. You shouldn't be coding if you do not know how to google.... – monzonj Dec 1 '17 at 16:18
11

Scala is a multi-paradigm language. A good "scala-esque" way of iterating a directory would be to reuse an existing code!

I'd consider using commons-io a perfectly scala-esque way of iterating a directory. You can use some implicit conversions to make it easier. Like

import org.apache.commons.io.filefilter.IOFileFilter
implicit def newIOFileFilter (filter: File=>Boolean) = new IOFileFilter {
  def accept (file: File) = filter (file)
  def accept (dir: File, name: String) = filter (new java.io.File (dir, name))
}
11

I like yura's stream solution, but it (and the others) recurses into hidden directories. We can also simplify by making use of the fact that listFiles returns null for a non-directory.

def tree(root: File, skipHidden: Boolean = false): Stream[File] = 
  if (!root.exists || (skipHidden && root.isHidden)) Stream.empty 
  else root #:: (
    root.listFiles match {
      case null => Stream.empty
      case files => files.toStream.flatMap(tree(_, skipHidden))
  })

Now we can list files

tree(new File(".")).filter(f => f.isFile && f.getName.endsWith(".html")).foreach(println)

or realise the whole stream for later processing

tree(new File("dir"), true).toArray
6

Apache Commons Io's FileUtils fits on one line, and is quite readable:

import scala.collection.JavaConversions._ // important for 'foreach'
import org.apache.commons.io.FileUtils

FileUtils.listFiles(new File("c:\temp"), Array("foo"), true).foreach{ f =>

}
  • I had to add type information: FileUtils.listFiles(new File("c:\temp"), Array("foo"), true).toArray(Array[File]()).foreach{ f => } – Jason Wheeler Nov 11 '13 at 20:59
  • It's not very useful on a case-sensitive file system as the supplied extensions must match case exactly. There doesn't appear to be a way to specify the ExtensionFileComparator. – Brent Faust Aug 21 '15 at 5:12
  • a workaround: provide Array("foo", "FOO", "png", "PNG" ) – Renaud Aug 21 '15 at 9:34
5

No-one has mentioned yet https://github.com/pathikrit/better-files

val dir = "src"/"test"
val matches: Iterator[File] = dir.glob("**/*.{java,scala}")
// above code is equivalent to:
dir.listRecursively.filter(f => f.extension == 
                      Some(".java") || f.extension == Some(".scala")) 
3

Take a look at scala.tools.nsc.io

There are some very useful utilities there including deep listing functionality on the Directory class.

If I remember correctly this was highlighted (possibly contributed) by retronym and were seen as a stopgap before io gets a fresh and more complete implementation in the standard library.

3

And here's a mixture of the stream solution from @DuncanMcGregor with the filter from @Rick-777:

  def tree( root: File, descendCheck: File => Boolean = { _ => true } ): Stream[File] = {
    require(root != null)
    def directoryEntries(f: File) = for {
      direntries <- Option(f.list).toStream
      d <- direntries
    } yield new File(f, d)
    val shouldDescend = root.isDirectory && descendCheck(root)
    ( root.exists, shouldDescend ) match {
      case ( false, _) => Stream.Empty
      case ( true, true ) => root #:: ( directoryEntries(root) flatMap { tree( _, descendCheck ) } )
      case ( true, false) => Stream( root )
    }   
  }

  def treeIgnoringHiddenFilesAndDirectories( root: File ) = tree( root, { !_.isHidden } ) filter { !_.isHidden }

This gives you a Stream[File] instead of a (potentially huge and very slow) List[File] while letting you decide which sorts of directories to recurse into with the descendCheck() function.

3

How about

   def allFiles(path:File):List[File]=
   {    
       val parts=path.listFiles.toList.partition(_.isDirectory)
       parts._2 ::: parts._1.flatMap(allFiles)         
   }
3

Scala has library 'scala.reflect.io' which considered experimental but does the work

import scala.reflect.io.Path
Path(path) walkFilter { p => 
  p.isDirectory || """a*.foo""".r.findFirstIn(p.name).isDefined
}
3

I personally like the elegancy and simplicity of @Rex Kerr's proposed solution. But here is what a tail recursive version might look like:

def listFiles(file: File): List[File] = {
  @tailrec
  def listFiles(files: List[File], result: List[File]): List[File] = files match {
    case Nil => result
    case head :: tail if head.isDirectory =>
      listFiles(Option(head.listFiles).map(_.toList ::: tail).getOrElse(tail), result)
    case head :: tail if head.isFile =>
      listFiles(tail, head :: result)
  }
  listFiles(List(file), Nil)
}
  • what about overflow ? – norisknofun Mar 31 '16 at 15:35
1

Here's a similar solution to Rex Kerr's, but incorporating a file filter:

import java.io.File
def findFiles(fileFilter: (File) => Boolean = (f) => true)(f: File): List[File] = {
  val ss = f.list()
  val list = if (ss == null) {
    Nil
  } else {
    ss.toList.sorted
  }
  val visible = list.filter(_.charAt(0) != '.')
  val these = visible.map(new File(f, _))
  these.filter(fileFilter) ++ these.filter(_.isDirectory).flatMap(findFiles(fileFilter))
}

The method returns a List[File], which is slightly more convenient than Array[File]. It also ignores all directories that are hidden (ie. beginning with '.').

It's partially applied using a file filter of your choosing, for example:

val srcDir = new File( ... )
val htmlFiles = findFiles( _.getName endsWith ".html" )( srcDir )
1

The simplest Scala-only solution (if you don't mind requiring the Scala compiler library):

val path = scala.reflect.io.Path(dir)
scala.tools.nsc.io.Path.onlyFiles(path.walk).foreach(println)

Otherwise, @Renaud's solution is short and sweet (if you don't mind pulling in Apache Commons FileUtils):

import scala.collection.JavaConversions._  // enables foreach
import org.apache.commons.io.FileUtils
FileUtils.listFiles(dir, null, true).foreach(println)

Where dir is a java.io.File:

new File("path/to/dir")
1

It seems nobody mentions the scala-io library from scala-incubrator...

import scalax.file.Path

Path.fromString("c:\temp") ** "a*.foo"

Or with implicit

import scalax.file.ImplicitConversions.string2path

"c:\temp" ** "a*.foo"

Or if you want implicit explicitly...

import scalax.file.Path
import scalax.file.ImplicitConversions.string2path

val dir: Path = "c:\temp"
dir ** "a*.foo"

Documentation is available here: http://jesseeichar.github.io/scala-io-doc/0.4.3/index.html#!/file/glob_based_path_sets

0

This incantation works for me:

  def findFiles(dir: File, criterion: (File) => Boolean): Seq[File] = {
    if (dir.isFile) Seq()
    else {
      val (files, dirs) = dir.listFiles.partition(_.isFile)
      files.filter(criterion) ++ dirs.toSeq.map(findFiles(_, criterion)).foldLeft(Seq[File]())(_ ++ _)
    }
  }
0

You can use tail recursion for it:

object DirectoryTraversal {
  import java.io._

  def main(args: Array[String]) {
    val dir = new File("C:/Windows")
    val files = scan(dir)

    val out = new PrintWriter(new File("out.txt"))

    files foreach { file =>
      out.println(file)
    }

    out.flush()
    out.close()
  }

  def scan(file: File): List[File] = {

    @scala.annotation.tailrec
    def sc(acc: List[File], files: List[File]): List[File] = {
      files match {
        case Nil => acc
        case x :: xs => {
          x.isDirectory match {
            case false => sc(x :: acc, xs)
            case true => sc(acc, xs ::: x.listFiles.toList)
          }
        }
      }
    }

    sc(List(), List(file))
  }
}
-1

Why are you using Java's File instead of Scala's AbstractFile?

With Scala's AbstractFile, the iterator support allows writing a more concise version of James Moore's solution:

import scala.reflect.io.AbstractFile  
def tree(root: AbstractFile, descendCheck: AbstractFile => Boolean = {_=>true}): Stream[AbstractFile] =
  if (root == null || !root.exists) Stream.empty
  else
    (root.exists, root.isDirectory && descendCheck(root)) match {
      case (false, _) => Stream.empty
      case (true, true) => root #:: root.iterator.flatMap { tree(_, descendCheck) }.toStream
      case (true, false) => Stream(root)
    }

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.