如何通过Java读取文件夹中的所有文件?
答案 0 :(得分:868)
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可从Java 8获得。
try (Stream<Path> paths = Files.walk(Paths.get("/home/you/Desktop"))) {
paths
.filter(Files::isRegularFile)
.forEach(System.out::println);
}
该示例使用API指南中推荐的try-with-resources模式。它确保无论何种情况都将关闭流。
答案 1 :(得分:157)
File folder = new File("/Users/you/folder/");
File[] listOfFiles = folder.listFiles();
for (File file : listOfFiles) {
if (file.isFile()) {
System.out.println(file.getName());
}
}
答案 2 :(得分:108)
在Java 8中,你可以这样做
Files.walk(Paths.get("/path/to/folder"))
.filter(Files::isRegularFile)
.forEach(System.out::println);
将打印文件夹中的所有文件,同时排除所有目录。如果您需要一个列表,以下将执行:
Files.walk(Paths.get("/path/to/folder"))
.filter(Files::isRegularFile)
.collect(Collectors.toList())
如果您想返回List<File>而不是List<Path>,只需将其映射:
List<File> filesInFolder = Files.walk(Paths.get("/path/to/folder"))
.filter(Files::isRegularFile)
.map(Path::toFile)
.collect(Collectors.toList());
您还需要确保关闭流!否则,您可能会遇到一个异常,告诉您打开了太多文件。请阅读here以获取更多信息。
答案 3 :(得分:20)
关于此主题的所有使用新Java 8函数的答案都忽略了关闭流。接受的答案中的例子应该是:
try (Stream<Path> filePathStream=Files.walk(Paths.get("/home/you/Desktop"))) {
filePathStream.forEach(filePath -> {
if (Files.isRegularFile(filePath)) {
System.out.println(filePath);
}
});
}
来自Files.walk方法的javadoc:
返回的流封装了一个或多个DirectoryStream。如果 及时处理文件系统资源是必需的 应该使用try-with-resources构造来确保 在流操作完成后调用stream的close方法。
答案 4 :(得分:11)
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());
}
}
}
}
}
答案 5 :(得分:11)
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
}
}
答案 6 :(得分:8)
在Java 7中,您现在可以这样做 - http://docs.oracle.com/javase/tutorial/essential/io/dirs.html#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);
}
您还可以创建一个过滤器,然后将其传递到上面的newDirectoryStream方法
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;
}
}
};
其他过滤示例 - http://docs.oracle.com/javase/tutorial/essential/io/dirs.html#glob
答案 7 :(得分:7)
使用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;
}
});
答案 8 :(得分:5)
如果您想要更多选项,可以使用此功能,该功能旨在填充文件夹中存在的文件的arraylist。选项包括:recursivility和匹配的模式。
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
答案 9 :(得分:3)
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]);
}
}
}
答案 10 :(得分:3)
虽然我同意Rich,Orian和其他人使用:
final File keysFileFolder = new File(<path>);
File[] fileslist = keysFileFolder.listFiles();
if(fileslist != null)
{
//Do your thing here...
}
出于某种原因,这里的所有示例都使用绝对路径(即从root用户一路,或者说,驱动器号(C:\)用于Windows ..)
我想补充说,也可以使用相对路径。 所以,如果你是pwd(当前目录/文件夹)是folder1并且你想解析folder1 /子文件夹,你只需编写(在上面的代码而不是):
final File keysFileFolder = new File("subfolder");
答案 11 :(得分:3)
与Java 1.7一起使用的简单示例,用于递归列出命令行中指定的目录中的文件:
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());
}
}
}
}
答案 12 :(得分:3)
我认为这是阅读文件夹和子文件夹
中所有文件的好方法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);
}
}
答案 13 :(得分:3)
在https://stackoverflow.com/a/286001/146745
上看到java.io.FileFilter的精彩用法
File fl = new File(dir);
File[] files = fl.listFiles(new FileFilter() {
public boolean accept(File file) {
return file.isFile();
}
});
答案 14 :(得分:3)
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";
}
}
答案 15 :(得分:2)
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]);
}
}
}
}
答案 16 :(得分:2)
Java 8 Files.walk(..)很好,当你感到厌倦时它不会抛出Avoid Java 8 Files.walk(..) termination cause of ( java.nio.file.AccessDeniedException )。
这是一个安全的解决方案,虽然不如Java 8 Files.walk(..)那么优雅:
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();
}
答案 17 :(得分:1)
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());
}
}
}
}
答案 18 :(得分:1)
您可以将文件路径放入参数并创建包含所有文件路径的列表,而不是手动将其列入列表。然后使用for循环和阅读器。 txt文件示例:
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
}}}
答案 19 :(得分:1)
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);
}
}
}
答案 20 :(得分:1)
根据获得该目录中的所有文件的一句话。
Files.walk(path)方法将通过遍历以给定启动文件为根的文件树来返回所有文件。
例如,下一个文件树:
\---folder
| file1.txt
| file2.txt
|
\---subfolder
file3.txt
file4.txt
使用java.nio.file.Files.walk(Path):
Files.walk(Paths.get("folder"))
.filter(Files::isRegularFile)
.forEach(System.out::println);
给出以下结果:
folder\file1.txt
folder\file2.txt
folder\subfolder\file3.txt
folder\subfolder\file4.txt
要仅获取当前目录中的所有文件,请使用java.nio.file.Files.list(Path):
Files.list(Paths.get("folder"))
.filter(Files::isRegularFile)
.forEach(System.out::println);
结果:
folder\file1.txt
folder\file2.txt
答案 21 :(得分:0)
我们可以使用org.apache.commons.io.FileUtils,使用listFiles()方法读取给定文件夹中的所有文件。
例如:
FileUtils.listFiles(directory, {"array of extension"}, true)
这将读取给定目录中具有给定扩展名的所有文件,我们可以在数组中传递多个扩展名并在文件夹(true参数)中递归读取。
答案 22 :(得分:0)
这将在给定路径中读取指定的文件扩展名文件(也查看子文件夹)
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;
}
答案 23 :(得分:0)
这样可以正常工作:
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);
}
}
答案 24 :(得分:0)
给出一个baseDir,列出它下面的所有文件和目录,以迭代方式编写。
public static List<File> listLocalFilesAndDirsAllLevels(File baseDir) {
List<File> collectedFilesAndDirs = new ArrayList<>();
Deque<File> remainingDirs = new ArrayDeque<>();
if(baseDir.exists()) {
remainingDirs.add(baseDir);
while(!remainingDirs.isEmpty()) {
File dir = remainingDirs.removeLast();
List<File> filesInDir = Arrays.asList(dir.listFiles());
for(File fileOrDir : filesInDir) {
collectedFilesAndDirs.add(fileOrDir);
if(fileOrDir.isDirectory()) {
remainingDirs.add(fileOrDir);
}
}
}
}
return collectedFilesAndDirs;
}
答案 25 :(得分:0)
上面有很多好的答案,这里有一个不同的方法:在maven项目中,您放在resources文件夹中的所有内容都默认复制到target / classes文件夹中。查看运行时可用的内容
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());
}
现在要从特定文件夹中获取文件,假设您的资源文件夹中有一个名为“res”的文件夹,只需替换:
URL resource = contextClassLoader.getResource("res");
如果您想要在com.companyName包中访问,那么:
contextClassLoader.getResource("com.companyName");
答案 26 :(得分:0)
为了扩展已接受的答案,我将文件名存储到ArrayList(而不是仅将它们转储到System.out.println)我创建了一个帮助类“MyFileUtils”,因此它可以被其他项目导入:
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() );
}
}
}
}
我添加了文件名的完整路径。 你可以这样使用它:
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);
}
ArrayList由“value”传递,但该值用于指向生活在JVM堆中的相同ArrayList对象。这样,每次递归调用都会将文件名添加到同一个ArrayList中(我们不会在每次递归调用时创建新的ArrayList)。
答案 27 :(得分:0)
列出类路径
中存在的Test文件夹中的文件
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()));
}
}
}
}
}
答案 28 :(得分:0)
/**
* 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"));
}
}
您可以过滤任何文本文件或任何其他扩展名。只需将其替换为.MP3
答案 29 :(得分:0)
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);
}
}
}
}
}
答案 30 :(得分:-1)
防止列表上的空指针异常Files()函数和递归从子目录获取所有文件..
public void listFilesForFolder(final File folder,List<File> fileList) {
File[] filesInFolder = folder.listFiles();
if (filesInFolder != null) {
for (final File fileEntry : filesInFolder) {
if (fileEntry.isDirectory()) {
listFilesForFolder(fileEntry,fileList);
} else {
fileList.add(fileEntry);
}
}
}
}
List<File> fileList = new List<File>();
final File folder = new File("/home/you/Desktop");
listFilesForFolder(folder);
答案 31 :(得分:-2)
import java.io.File;
public class Test {
public void test1() {
System.out.println("TEST 1");
}
public static void main(String[] args) throws SecurityException, ClassNotFoundException{
File actual = new File("src");
File list[] = actual.listFiles();
for(int i=0; i<list.length; i++){
String substring = list[i].getName().substring(0, list[i].getName().indexOf("."));
if(list[i].isFile() && list[i].getName().contains(".java")){
if(Class.forName(substring).getMethods()[0].getName().contains("main")){
System.out.println("CLASS NAME "+Class.forName(substring).getName());
}
}
}
}
}
只需传递你的文件夹,它会告诉你关于该方法的主要课程。