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How to get dynamic name of .zip file after download in JAVA [duplicate]

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How to read all the files in a folder through Java? It doesn't matter which API.

public void listFilesForFolder(final File folder) {
for (final File fileEntry : folder.listFiles()) {
if (fileEntry.isDirectory()) {
listFilesForFolder(fileEntry);
} else {
System.out.println(fileEntry.getName());
}
}
}
final File folder = new File("/home/you/Desktop");
listFilesForFolder(folder);
Files.walk API is available from Java 8.
try (Stream<Path> paths = Files.walk(Paths.get("/home/you/Desktop"))) {
paths
.filter(Files::isRegularFile)
.forEach(System.out::println);
}
The example uses try-with-resources pattern recommended in API guide. It ensures that no matter circumstances the stream will be closed.

File folder = new File("/Users/you/folder/");
File[] listOfFiles = folder.listFiles();
for (File file : listOfFiles) {
if (file.isFile()) {
System.out.println(file.getName());
}
}

In Java 8 you can do this
Files.walk(Paths.get("/path/to/folder"))
.filter(Files::isRegularFile)
.forEach(System.out::println);
which will print all files in a folder while excluding all directories. If you need a list, the following will do:
Files.walk(Paths.get("/path/to/folder"))
.filter(Files::isRegularFile)
.collect(Collectors.toList())
If you want to return List<File> instead of List<Path> just map it:
List<File> filesInFolder = Files.walk(Paths.get("/path/to/folder"))
.filter(Files::isRegularFile)
.map(Path::toFile)
.collect(Collectors.toList());
You also need to make sure to close the stream! Otherwise you might run into an exception telling you that too many files are open. Read here for more information.

All of the answers on this topic that make use of the new Java 8 functions are neglecting to close the stream. The example in the accepted answer should be:
try (Stream<Path> filePathStream=Files.walk(Paths.get("/home/you/Desktop"))) {
filePathStream.forEach(filePath -> {
if (Files.isRegularFile(filePath)) {
System.out.println(filePath);
}
});
}
From the javadoc of the Files.walk method:
The returned stream encapsulates one or more DirectoryStreams. If
timely disposal of file system resources is required, the
try-with-resources construct should be used to ensure that the
stream's close method is invoked after the stream operations are completed.

One remark according to get all files in the directory.
The method Files.walk(path) will return all files by walking the file tree rooted at the given started file.
For instance, there is the next file tree:
\---folder
| file1.txt
| file2.txt
|
\---subfolder
file3.txt
file4.txt
Using the java.nio.file.Files.walk(Path):
Files.walk(Paths.get("folder"))
.filter(Files::isRegularFile)
.forEach(System.out::println);
Gives the following result:
folder\file1.txt
folder\file2.txt
folder\subfolder\file3.txt
folder\subfolder\file4.txt
To get all files only in the current directory use the java.nio.file.Files.list(Path):
Files.list(Paths.get("folder"))
.filter(Files::isRegularFile)
.forEach(System.out::println);
Result:
folder\file1.txt
folder\file2.txt

import java.io.File;
public class ReadFilesFromFolder {
public static File folder = new File("C:/Documents and Settings/My Documents/Downloads");
static String temp = "";
public static void main(String[] args) {
// TODO Auto-generated method stub
System.out.println("Reading files under the folder "+ folder.getAbsolutePath());
listFilesForFolder(folder);
}
public static void listFilesForFolder(final File folder) {
for (final File fileEntry : folder.listFiles()) {
if (fileEntry.isDirectory()) {
// System.out.println("Reading files under the folder "+folder.getAbsolutePath());
listFilesForFolder(fileEntry);
} else {
if (fileEntry.isFile()) {
temp = fileEntry.getName();
if ((temp.substring(temp.lastIndexOf('.') + 1, temp.length()).toLowerCase()).equals("txt"))
System.out.println("File= " + folder.getAbsolutePath()+ "\\" + fileEntry.getName());
}
}
}
}
}

In Java 7 and higher you can use listdir
Path dir = ...;
try (DirectoryStream<Path> stream = Files.newDirectoryStream(dir)) {
for (Path file: stream) {
System.out.println(file.getFileName());
}
} catch (IOException | DirectoryIteratorException x) {
// IOException can never be thrown by the iteration.
// In this snippet, it can only be thrown by newDirectoryStream.
System.err.println(x);
}
You can also create a filter that can then be passed into the newDirectoryStream method above
DirectoryStream.Filter<Path> filter = new DirectoryStream.Filter<Path>() {
public boolean accept(Path file) throws IOException {
try {
return (Files.isRegularFile(path));
} catch (IOException x) {
// Failed to determine if it's a file.
System.err.println(x);
return false;
}
}
};
For other filtering examples, [see documentation].(http://docs.oracle.com/javase/tutorial/essential/io/dirs.html#glob)

private static final String ROOT_FILE_PATH="/";
File f=new File(ROOT_FILE_PATH);
File[] allSubFiles=f.listFiles();
for (File file : allSubFiles) {
if(file.isDirectory())
{
System.out.println(file.getAbsolutePath()+" is directory");
//Steps for directory
}
else
{
System.out.println(file.getAbsolutePath()+" is file");
//steps for files
}
}

Just walk through all Files using Files.walkFileTree (Java 7)
Files.walkFileTree(Paths.get(dir), new SimpleFileVisitor<Path>() {
#Override
public FileVisitResult visitFile(Path file, BasicFileAttributes attrs) throws IOException {
System.out.println("file: " + file);
return FileVisitResult.CONTINUE;
}
});

If you want more options, you can use this function which aims to populate an arraylist of files present in a folder. Options are : recursivility and pattern to match.
public static ArrayList<File> listFilesForFolder(final File folder,
final boolean recursivity,
final String patternFileFilter) {
// Inputs
boolean filteredFile = false;
// Ouput
final ArrayList<File> output = new ArrayList<File> ();
// Foreach elements
for (final File fileEntry : folder.listFiles()) {
// If this element is a directory, do it recursivly
if (fileEntry.isDirectory()) {
if (recursivity) {
output.addAll(listFilesForFolder(fileEntry, recursivity, patternFileFilter));
}
}
else {
// If there is no pattern, the file is correct
if (patternFileFilter.length() == 0) {
filteredFile = true;
}
// Otherwise we need to filter by pattern
else {
filteredFile = Pattern.matches(patternFileFilter, fileEntry.getName());
}
// If the file has a name which match with the pattern, then add it to the list
if (filteredFile) {
output.add(fileEntry);
}
}
}
return output;
}
Best, Adrien

File directory = new File("/user/folder");
File[] myarray;
myarray=new File[10];
myarray=directory.listFiles();
for (int j = 0; j < myarray.length; j++)
{
File path=myarray[j];
FileReader fr = new FileReader(path);
BufferedReader br = new BufferedReader(fr);
String s = "";
while (br.ready()) {
s += br.readLine() + "\n";
}
}

nice usage of java.io.FileFilter as seen on https://stackoverflow.com/a/286001/146745
File fl = new File(dir);
File[] files = fl.listFiles(new FileFilter() {
public boolean accept(File file) {
return file.isFile();
}
});

static File mainFolder = new File("Folder");
public static void main(String[] args) {
lf.getFiles(lf.mainFolder);
}
public void getFiles(File f) {
File files[];
if (f.isFile()) {
String name=f.getName();
} else {
files = f.listFiles();
for (int i = 0; i < files.length; i++) {
getFiles(files[i]);
}
}
}

I think this is good way to read all the files in a folder and sub folder's
private static void addfiles (File input,ArrayList<File> files)
{
if(input.isDirectory())
{
ArrayList <File> path = new ArrayList<File>(Arrays.asList(input.listFiles()));
for(int i=0 ; i<path.size();++i)
{
if(path.get(i).isDirectory())
{
addfiles(path.get(i),files);
}
if(path.get(i).isFile())
{
files.add(path.get(i));
}
}
}
if(input.isFile())
{
files.add(input);
}
}

Simple example that works with Java 1.7 to recursively list files in directories specified on the command-line:
import java.io.File;
public class List {
public static void main(String[] args) {
for (String f : args) {
listDir(f);
}
}
private static void listDir(String dir) {
File f = new File(dir);
File[] list = f.listFiles();
if (list == null) {
return;
}
for (File entry : list) {
System.out.println(entry.getName());
if (entry.isDirectory()) {
listDir(entry.getAbsolutePath());
}
}
}
}

While I do agree with Rich, Orian and the rest for using:
final File keysFileFolder = new File(<path>);
File[] fileslist = keysFileFolder.listFiles();
if(fileslist != null)
{
//Do your thing here...
}
for some reason all the examples here uses absolute path (i.e. all the way from root, or, say, drive letter (C:\) for windows..)
I'd like to add that it is possible to use relative path as-well.
So, if you're pwd (current directory/folder) is folder1 and you want to parse folder1/subfolder, you simply write (in the code above instead of ):
final File keysFileFolder = new File("subfolder");

Java 8 Files.walk(..) is good when you are soore it will not throw Avoid Java 8 Files.walk(..) termination cause of ( java.nio.file.AccessDeniedException ) .
Here is a safe solution , not though so elegant as Java 8Files.walk(..) :
int[] count = {0};
try {
Files.walkFileTree(Paths.get(dir.getPath()), new HashSet<FileVisitOption>(Arrays.asList(FileVisitOption.FOLLOW_LINKS)),
Integer.MAX_VALUE, new SimpleFileVisitor<Path>() {
#Override
public FileVisitResult visitFile(Path file , BasicFileAttributes attrs) throws IOException {
System.out.printf("Visiting file %s\n", file);
++count[0];
return FileVisitResult.CONTINUE;
}
#Override
public FileVisitResult visitFileFailed(Path file , IOException e) throws IOException {
System.err.printf("Visiting failed for %s\n", file);
return FileVisitResult.SKIP_SUBTREE;
}
#Override
public FileVisitResult preVisitDirectory(Path dir , BasicFileAttributes attrs) throws IOException {
System.out.printf("About to visit directory %s\n", dir);
return FileVisitResult.CONTINUE;
}
});
} catch (IOException e) {
// TODO Auto-generated catch block
e.printStackTrace();
}

void getFiles(){
String dirPath = "E:/folder_name";
File dir = new File(dirPath);
String[] files = dir.list();
if (files.length == 0) {
System.out.println("The directory is empty");
} else {
for (String aFile : files) {
System.out.println(aFile);
}
}
}

package com;
import java.io.File;
/**
*
* #author ?Mukesh
*/
public class ListFiles {
static File mainFolder = new File("D:\\Movies");
public static void main(String[] args)
{
ListFiles lf = new ListFiles();
lf.getFiles(lf.mainFolder);
long fileSize = mainFolder.length();
System.out.println("mainFolder size in bytes is: " + fileSize);
System.out.println("File size in KB is : " + (double)fileSize/1024);
System.out.println("File size in MB is :" + (double)fileSize/(1024*1024));
}
public void getFiles(File f){
File files[];
if(f.isFile())
System.out.println(f.getAbsolutePath());
else{
files = f.listFiles();
for (int i = 0; i < files.length; i++) {
getFiles(files[i]);
}
}
}
}

Just to expand on the accepted answer I store the filenames to an ArrayList (instead of just dumping them to System.out.println) I created a helper class "MyFileUtils" so it could be imported by other projects:
class MyFileUtils {
public static void loadFilesForFolder(final File folder, List<String> fileList){
for (final File fileEntry : folder.listFiles()) {
if (fileEntry.isDirectory()) {
loadFilesForFolder(fileEntry, fileList);
} else {
fileList.add( fileEntry.getParent() + File.separator + fileEntry.getName() );
}
}
}
}
I added the full path to the file name.
You would use it like this:
import MyFileUtils;
List<String> fileList = new ArrayList<String>();
final File folder = new File("/home/you/Desktop");
MyFileUtils.loadFilesForFolder(folder, fileList);
// Dump file list values
for (String fileName : fileList){
System.out.println(fileName);
}
The ArrayList is passed by "value", but the value is used to point to the same ArrayList object living in the JVM Heap. In this way, each recursion call adds filenames to the same ArrayList (we are NOT creating a new ArrayList on each recursive call).

There are many good answers above, here's a different approach: In a maven project, everything you put in the resources folder is copied by default in the target/classes folder. To see what is available at runtime
ClassLoader contextClassLoader =
Thread.currentThread().getContextClassLoader();
URL resource = contextClassLoader.getResource("");
File file = new File(resource.toURI());
File[] files = file.listFiles();
for (File f : files) {
System.out.println(f.getName());
}
Now to get the files from a specific folder, let's say you have a folder called 'res' in your resources folder, just replace:
URL resource = contextClassLoader.getResource("res");
If you want to have access in your com.companyName package then:
contextClassLoader.getResource("com.companyName");

You can put the file path to argument and create a list with all the filepaths and not put it the list manually. Then use a for loop and a reader. Example for txt files:
public static void main(String[] args) throws IOException{
File[] files = new File(args[0].replace("\\", "\\\\")).listFiles(new FilenameFilter() { #Override public boolean accept(File dir, String name) { return name.endsWith(".txt"); } });
ArrayList<String> filedir = new ArrayList<String>();
String FILE_TEST = null;
for (i=0; i<files.length; i++){
filedir.add(files[i].toString());
CSV_FILE_TEST=filedir.get(i)
try(Reader testreader = Files.newBufferedReader(Paths.get(FILE_TEST));
){
//write your stuff
}}}

package com.commandline.folder;
import java.io.File;
import java.nio.file.Files;
import java.nio.file.Path;
import java.nio.file.Paths;
import java.util.stream.Stream;
public class FolderReadingDemo {
public static void main(String[] args) {
String str = args[0];
final File folder = new File(str);
// listFilesForFolder(folder);
listFilesForFolder(str);
}
public static void listFilesForFolder(String str) {
try (Stream<Path> paths = Files.walk(Paths.get(str))) {
paths.filter(Files::isRegularFile).forEach(System.out::println);
} catch (Exception e) {
e.printStackTrace();
}
}
public static void listFilesForFolder(final File folder) {
for (final File fileEntry : folder.listFiles()) {
if (fileEntry.isDirectory()) {
listFilesForFolder(fileEntry);
} else {
System.out.println(fileEntry.getName());
}
}
}
}

We can use org.apache.commons.io.FileUtils, use listFiles() mehtod to read all the files in a given folder.
eg:
FileUtils.listFiles(directory, new String[] {"ext1", "ext2"}, true)
This read all the files in the given directory with given extensions, we can pass multiple extensions in the array and read recursively within the folder(true parameter).

public static List<File> files(String dirname) {
if (dirname == null) {
return Collections.emptyList();
}
File dir = new File(dirname);
if (!dir.exists()) {
return Collections.emptyList();
}
if (!dir.isDirectory()) {
return Collections.singletonList(file(dirname));
}
return Arrays.stream(Objects.requireNonNull(dir.listFiles()))
.collect(Collectors.toList());
}

import java.io.File;
import java.util.ArrayList;
import java.util.List;
public class AvoidNullExp {
public static void main(String[] args) {
List<File> fileList =new ArrayList<>();
final File folder = new File("g:/master");
new AvoidNullExp().listFilesForFolder(folder, fileList);
}
public void listFilesForFolder(final File folder,List<File> fileList) {
File[] filesInFolder = folder.listFiles();
if (filesInFolder != null) {
for (final File fileEntry : filesInFolder) {
if (fileEntry.isDirectory()) {
System.out.println("DIR : "+fileEntry.getName());
listFilesForFolder(fileEntry,fileList);
} else {
System.out.println("FILE : "+fileEntry.getName());
fileList.add(fileEntry);
}
}
}
}
}

list down files from Test folder present inside class path
import java.io.File;
import java.io.IOException;
public class Hello {
public static void main(final String[] args) throws IOException {
System.out.println("List down all the files present on the server directory");
File file1 = new File("/prog/FileTest/src/Test");
File[] files = file1.listFiles();
if (null != files) {
for (int fileIntList = 0; fileIntList < files.length; fileIntList++) {
String ss = files[fileIntList].toString();
if (null != ss && ss.length() > 0) {
System.out.println("File: " + (fileIntList + 1) + " :" + ss.substring(ss.lastIndexOf("\\") + 1, ss.length()));
}
}
}
}
}

/**
* Function to read all mp3 files from sdcard and store the details in an
* ArrayList
*/
public ArrayList<HashMap<String, String>> getPlayList()
{
ArrayList<HashMap<String, String>> songsList=new ArrayList<>();
File home = new File(MEDIA_PATH);
if (home.listFiles(new FileExtensionFilter()).length > 0) {
for (File file : home.listFiles(new FileExtensionFilter())) {
HashMap<String, String> song = new HashMap<String, String>();
song.put(
"songTitle",
file.getName().substring(0,
(file.getName().length() - 4)));
song.put("songPath", file.getPath());
// Adding each song to SongList
songsList.add(song);
}
}
// return songs list array
return songsList;
}
/**
* Class to filter files which have a .mp3 extension
* */
class FileExtensionFilter implements FilenameFilter
{
#Override
public boolean accept(File dir, String name) {
return (name.endsWith(".mp3") || name.endsWith(".MP3"));
}
}
You can filter any textfiles or any other extension ..just replace it with .MP3

This will Read Specified file extension files in given path(looks sub folders also)
public static Map<String,List<File>> getFileNames(String
dirName,Map<String,List<File>> filesContainer,final String fileExt){
String dirPath = dirName;
List<File>files = new ArrayList<>();
Map<String,List<File>> completeFiles = filesContainer;
if(completeFiles == null) {
completeFiles = new HashMap<>();
}
File file = new File(dirName);
FileFilter fileFilter = new FileFilter() {
#Override
public boolean accept(File file) {
boolean acceptFile = false;
if(file.isDirectory()) {
acceptFile = true;
}else if (file.getName().toLowerCase().endsWith(fileExt))
{
acceptFile = true;
}
return acceptFile;
}
};
for(File dirfile : file.listFiles(fileFilter)) {
if(dirfile.isFile() &&
dirfile.getName().toLowerCase().endsWith(fileExt)) {
files.add(dirfile);
}else if(dirfile.isDirectory()) {
if(!files.isEmpty()) {
completeFiles.put(dirPath, files);
}
getFileNames(dirfile.getAbsolutePath(),completeFiles,fileExt);
}
}
if(!files.isEmpty()) {
completeFiles.put(dirPath, files);
}
return completeFiles;
}

This will work fine:
private static void addfiles(File inputValVal, ArrayList<File> files)
{
if(inputVal.isDirectory())
{
ArrayList <File> path = new ArrayList<File>(Arrays.asList(inputVal.listFiles()));
for(int i=0; i<path.size(); ++i)
{
if(path.get(i).isDirectory())
{
addfiles(path.get(i),files);
}
if(path.get(i).isFile())
{
files.add(path.get(i));
}
}
/* Optional : if you need to have the counts of all the folders and files you can create 2 global arrays
and store the results of the above 2 if loops inside these arrays */
}
if(inputVal.isFile())
{
files.add(inputVal);
}
}

Trying to get file name of the largest file

So I am learning recursion right now and I know how to get the largest file size in a folder that's chosen in JFileChooser.
I just can't for the life of me can't figure out how to get the name of that file after it's found. Here's the method to getting the largestFileSize. How would I go about getting the name of that file?
public static long largestFileSize(File f) {
if (f.isFile()) {
return f.length();
} else {
long largestSoFar = -1;
for (File file : f.listFiles()) {
largestSoFar = Math.max(largestSoFar, largestFileSize(file));
}
return largestSoFar;
}
}

String fileName = file.getName()
Since it's impractical to return both the size of a file and the name, why don't you return the File and then get its size and name from that?
public static File largestFile(File f) {
if (f.isFile()) {
return f;
} else {
File largestFile = null;
for (File file : f.listFiles()) {
// only recurse largestFile once
File possiblyLargeFile = largestFile(file);
if (possiblyLargeFile != null) {
if (largestFile == null || possiblyLargeFile.length() > largestFile.length()) {
largestFile = possiblyLargeFile;
}
}
}
return largestFile;
}
}
And then you can do this:
String largestFileName = largestFile(file).getName();
long largestFileSize = largestFile(file).length();
EDIT: Returns largest File in any of the subdirectories. Returns null if no files exist in the subdirectories.

Just do
public static File largestFile(File f) {
if (f.isFile()) {
return f;
} else {
long largestSoFar = -1;
File largestFile = null;
for (File file : f.listFiles()) {
file = largestFile(file);
if (file != null) {
long newSize = file.length();
if (newSize > largestSoFar) {
largestSoFar = newSize;
largestFile = file;
}
}
}
return largestFile;
}
}
then call:
largestFile(myFile).getName();

How to Convert List of Folders and SubFolder into JSOn FOrmat

i want to populate Folder Name With Sub Folder name on KendoDrop Down . so i want to Convert Folder Directory in JSOn Format How can i Do That ?
public class FolderPath {
public static void main(String[] args) throws IOException {
File currentDir = new File("Folder URL "); // current directory
displayDirectoryContents(currentDir);
}
public static void displayDirectoryContents(File dir) {
StringBuilder sb1 = new StringBuilder("[");
try {
File[] files = dir.listFiles();
for (File file : files) {
if (file.isDirectory()) {
sb1 = sb1.append("{\"JSONKEY\":\"" + file.getCanonicalPath() + "\"},");
String str = file.getCanonicalPath();
displayDirectoryContents(file);
} else {
}
}
sb1.deleteCharAt(sb1.length() - 1);
sb1 = sb1.append("]");
System.out.println("s2==>" + sb1);
} catch (IOException e) {
e.printStackTrace();
}
}
}
Here i am Not Getting Full Directroy into JSOn Please Help

You are creating a StringBuilder object on each iteration. That's why your concatenation does not work.
Consider the contents of you C:\test is composed of 3 directories:
c:\test
|
+--css
| +--less
+--js
The code below, returns:
[{"JSONKEY":"C:\test\css"},
{"JSONKEY":"C:\test\css\less"},
{"JSONKEY":"C:\test\js"}]
import java.io.File;
import java.io.FileFilter;
import java.io.IOException;
public class FolderPath {
private static FileFilter onlyDirectories = new FileFilter() {
#Override
public boolean accept(File file) {
return file.isDirectory();
}
};
public static void main(String[] args) {
File currentDir = new File("C:\\test"); // current directory
displayDirectoryContents(currentDir);
}
public static void displayDirectoryContents(File dir) {
StringBuilder sb1 = new StringBuilder("[");
doDisplayDirectoryContents(dir, sb1);
if (sb1.length() > 1) {
sb1.deleteCharAt(sb1.length() - 1);
}
sb1.append("]");
System.out.println(sb1);
}
private static void doDisplayDirectoryContents(File dir, StringBuilder sb1) {
File[] files = dir.listFiles(onlyDirectories);
if (files != null) {
for (File file : files) {
try {
sb1.append("{\"JSONKEY\":\"" + file.getCanonicalPath() + "\"},");
doDisplayDirectoryContents(file, sb1);
} catch (IOException e) {
e.printStackTrace();
}
}
}
}
}

public List<Object> getDirectoryContents(String path) throws IOException {
File directory = new File(path);
File[] files;
enter code here FileFilter fileFilter = file -> file.isDirectory() || file.isFile();
files = directory.listFiles(fileFilter);
List<Object> directoryContent = new ArrayList<>();
if(files != null) {
for (int i = 0; i < files.length; i++) {
File filename = files[i];
String folderPath[] =filename.toString().split("/");
if(files[i].isDirectory()) {
Folder folder = new Folder();
folder.setName(folderPath[folderPath.length - 1]);
folder.setType("folder");
folder.setChildren(mapper.readTree(mapper.writeValueAsString(getDirectoryContents(path + "/" + folder.getName()))));
directoryContent.add(folder);
}
else{
Files file = new Files();
file.setName(folderPath[folderPath.length - 1]);
file.setType("file");
directoryContent.add(file);
}
}
}
return directoryContent;
}
public class Files {
private String name;
private String type = "file";
}
public class Folder {
private String name;
private String type = "folder";
private JsonNode children;
}

How open a .scala file inside a Jar

I have a .scala file inside a JAR, how do i open from my code that isn't part of the jar?
For some additional precisions the jar file does not on classpath.
Here an example of my code. It works partially, the file on the jar is open but for that i create it from the folder "lib'.
Have you another idea for evitate the creation of the file on the folder?
Thanks !
protected Object openDialogBox(Control cellEditorWindow, Object value, String jarFileName)
throws CoreException, IOException {
IWorkspaceRoot myWorkspaceRoot = ResourcesPlugin.getWorkspace().getRoot();
IProject myProject = myWorkspaceRoot.getProject(ActiveProject.getNameProject());
String fileProgramName = (String) value;
InputStream stream;
final boolean readOnly = (jarFileName != null);
if (myProject.exists() && myProject.isOpen()) {
IFolder sourceFolder = myProject.getFolder( (jarFileName != null) ? "lib" : "src" );
if (sourceFolder.exists()) {
final IFile programFile = sourceFolder.getFile(fileProgramName);
if ( jarFileName != null ) {
programFile.delete(true, new NullProgressMonitor());
stream = JarUtil.getProgramFromJar(jarFileName, fileProgramName);
}
else {
stream = createContentStream(myProject.getName(), programFile.getName().replace(".scala", ""));
}
if (!programFile.exists()) {
// create the file
programFile.create(stream, true, new NullProgressMonitor());
}
programFile.refreshLocal(IResource.DEPTH_ZERO, null);
stream.close();
cellEditorWindow.getShell().getDisplay().asyncExec(new Runnable() {
public void run() {
IWorkbenchPage page = PlatformUI.getWorkbench()
.getActiveWorkbenchWindow().getActivePage();
try {
ResourceAttributes myAttributes = programFile.getResourceAttributes();
if (myAttributes == null) {
myAttributes = new ResourceAttributes();
}
myAttributes.setReadOnly(readOnly);
try {
programFile.setResourceAttributes(myAttributes);
} catch (CoreException e) {
e.printStackTrace();
}
IDE.openEditor(page, programFile, true);
} catch (PartInitException e) {
}
}
});
return value;
}
return null;
}
return null;
}

Search for file in directory with multiple directories

Here's my goal. I want to be able to pass a parent directory and a filename to a method that searches for that specific file in the directory and any sub-directories. Below is the code I have been working with but can not get it to do exactly what I want. It will find the file I specify but will not return anything.
private static File findFile(File dir, String name) {
String file = "";
File[] dirlist = dir.listFiles();
search:
for(int i = 0; i < dirlist.length; i++) {
if(dirlist[i].isDirectory()) {
findFile(dirlist[i], name);
} else if(dirlist[i].getName().matches(name)) {
file = dirlist[i].toString();
break search;
}
}
return new File(file);
}
I know that when the method finds a directory and calls itself it resets the file variable which is where I am storing the found file. So that is why I am getting a blank return. I am not sure how to accomplish this goal or if it's even possible.

The problem is that you're not returning anything from the recursive call:
if(dirlist[i].isDirectory()) {
findFile(dirlist[i], name); // <-- here
} else if(dirlist[i].getName().matches(name)) {
I would do the following:
private static File findFile(File dir, String name) {
File result = null; // no need to store result as String, you're returning File anyway
File[] dirlist = dir.listFiles();
for(int i = 0; i < dirlist.length; i++) {
if(dirlist[i].isDirectory()) {
result = findFile(dirlist[i], name);
if (result!=null) break; // recursive call found the file; terminate the loop
} else if(dirlist[i].getName().matches(name)) {
return dirlist[i]; // found the file; return it
}
}
return result; // will return null if we didn't find anything
}

In fact there are many solutions to do the job.
I assume that you want to find a unique file (or the first one) found in a directory tree that matches with the fileName.
It is a problem of optimization because there are multiple ways to explore solutions, and we want to find an acceptable solution.
1- Solution using FileUtils.listFiles
public static File searchFileWithFileUtils(final File file, final String fileName) {
File target = null;
if(file.isDirectory()) {
Collection<File> files = FileUtils.listFiles(file, null, true);
for (File currFile : files) {
if (currFile.isFile() && currFile.getName().equals(fileName)) {
target = currFile;
break;
}
}
}
return target;
}
The solution using the library FileUtils is not a suitable solution because the method FileUtils#listFiles() loads all the directory/folder tree (the cost is expensive !).
We don't need to know all the tree, we can choose a better algorithm which stops when the file is found.
2- Recursive Solution
public static File searchFileRecursive(final File file, final String search) {
if (file.isDirectory()) {
File[] files = file.listFiles();
for (File f : files) {
File target = searchFileRecursive(f, search);
if(target != null) {
return target;
}
}
} else {
if (search.equals(file.getName())) {
return file;
}
}
return null;
}
The algorithm tests if the file exists inside any folder. If not, it tries subfolder of the current folder... recursively. If the file is not found in the current branch it tries another subfolder.
The exploration is deep, and for any file in a deepness of 1 the algorithm will explore the entirety of previous subfolders (previous branches are completely explored !).
This algorithm has the best performances for files in a deep location inside the first branch.
In the majority of cases, the file location is not deep, so let explore another algorithm that works in most of cases.
3- Fastest Solution : exploration by deepness
public static File searchFileByDeepness(final String directoryName, final String fileName) {
File target = null;
if(directoryName != null && fileName != null) {
File directory = new File(directoryName);
if(directory.isDirectory()) {
File file = new File(directoryName, fileName);
if(file.isFile()) {
target = file;
}
else {
List<File> subDirectories = getSubDirectories(directory);
do {
List<File> subSubDirectories = new ArrayList<File>();
for(File subDirectory : subDirectories) {
File fileInSubDirectory = new File(subDirectory, fileName);
if(fileInSubDirectory.isFile()) {
return fileInSubDirectory;
}
subSubDirectories.addAll(getSubDirectories(subDirectory));
}
subDirectories = subSubDirectories;
} while(subDirectories != null && ! subDirectories.isEmpty());
}
}
}
return target;
}
private static List<File> getSubDirectories(final File directory) {
File[] subDirectories = directory.listFiles(new FilenameFilter() {
#Override
public boolean accept(final File current, final String name) {
return new File(current, name).isDirectory();
}
});
return Arrays.asList(subDirectories);
}
For each deepness, the algorithm searches the file inside all folders of the same level. If the file is not found, it tries the next level (deepness++).
Due to the parallel exploration (symmetry), this solution is suitable in most of cases.
Comparison:
public class FileLocationFinder {
public static void main(final String[] args) {
String rootFolder = args[0];
String fileName = args[1];
long start = System.currentTimeMillis();
File target = searchFileWithFileUtils(new File(rootFolder), fileName);
System.out.println(target.getAbsolutePath());
System.out.println("Duration: " + (System.currentTimeMillis() - start) + "ms");
start = System.currentTimeMillis();
target = searchFileRecursive(new File(rootFolder), fileName);
System.out.println(target.getAbsolutePath());
System.out.println("Duration: " + (System.currentTimeMillis() - start) + "ms");
start = System.currentTimeMillis();
target = searchFileByDeepness(rootFolder, fileName);
System.out.println(target.getAbsolutePath());
System.out.println("Duration: " + (System.currentTimeMillis() - start) + "ms");
}
// Solution with FileUtils#listFiles
//--------------------------------------------
public static File searchFileWithFileUtils(final File file, final String fileName) {
File target = null;
if(file.isDirectory()) {
Collection<File> files = FileUtils.listFiles(file, null, true);
for (File currFile : files) {
if (currFile.isFile() && currFile.getName().equals(fileName)) {
target = currFile;
break;
}
}
}
return target;
}
// Recursive solution
//--------------------------------------------
public static File searchFileRecursive(final File file, final String search) {
if (file.isDirectory()) {
File[] files = file.listFiles();
for (File f : files) {
File target = searchFileRecursive(f, search);
if(target != null) {
return target;
}
}
} else {
if (search.equals(file.getName())) {
return file;
}
}
return null;
}
// Fastest solution
//--------------------------------------------
public static File searchFileByDeepness(final String directoryName, final String fileName) {
File target = null;
if(directoryName != null && fileName != null) {
File directory = new File(directoryName);
if(directory.isDirectory()) {
File file = new File(directoryName, fileName);
if(file.isFile()) {
target = file;
}
else {
List<File> subDirectories = getSubDirectories(directory);
do {
List<File> subSubDirectories = new ArrayList<File>();
for(File subDirectory : subDirectories) {
File fileInSubDirectory = new File(subDirectory, fileName);
if(fileInSubDirectory.isFile()) {
return fileInSubDirectory;
}
subSubDirectories.addAll(getSubDirectories(subDirectory));
}
subDirectories = subSubDirectories;
} while(subDirectories != null && ! subDirectories.isEmpty());
}
}
}
return target;
}
private static List<File> getSubDirectories(final File directory) {
File[] subDirectories = directory.listFiles(new FilenameFilter() {
#Override
public boolean accept(final File current, final String name) {
return new File(current, name).isDirectory();
}
});
return Arrays.asList(subDirectories);
}
}
Result:
searchFileWithFileUtils: 20186ms | searchFileRecursive: 1134ms | searchFileByDeepness: 16ms
[EDIT]
You can also use Java 8 Files API to do this job :
public static File searchFileJava8(final String rootFolder, final String fileName) {
File target = null;
Path root = Paths.get(rootFolder);
try (Stream<Path> stream = Files.find(root, Integer.MAX_VALUE, (path, attr) ->
path.getFileName().toString().equals(fileName))) {
Optional<Path> path = stream.findFirst();
if(path.isPresent()) {
target = path.get().toFile();
}
}
catch (IOException e) {
}
return target;
}
But the execution time is not better (994ms).