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In Java, given a java.net.URL or a String in the form of http://www.example.com/some/path/to/a/file.xml , what is the easiest way to get the file name, minus the extension? So, in this example, I'm looking for something that returns "file".

I can think of several ways to do this, but I'm looking for something that's easy to read and short.

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2  
YOU do realize there is no requirement for there to be a filename at the end, or even something that looks like a filename. In this case, there may or may not be a file.xml on server. –  Miserable Variable Mar 3 '09 at 9:47
    
in that case, the result would be an empty string, or maybe null. –  Sietse Mar 3 '09 at 9:57
    
I think you need to define the problem more clearly. What about following URLS endings? ..../abc, ..../abc/, ..../abc.def, ..../abc.def.ghi, ..../abc?def.ghi –  Miserable Variable Mar 3 '09 at 10:10
1  
I think it's pretty clear. If the URL points to a file, I'm interested in the filename minus the extension (if it has one). Query parts fall outside the filename. –  Sietse Mar 3 '09 at 10:29
1  
the file name is the part of the url after the last slash. the file extension is the part of the file name after the last period. –  Sietse Jun 12 '12 at 10:59

13 Answers 13

up vote 43 down vote accepted

Instead of reinventing the wheel, how about using Apache commons-io:

import org.apache.commons.io.FilenameUtils;

public class FilenameUtilTest {

    public static void main(String[] args) {
        String url = "http://www.example.com/some/path/to/a/file.xml";

        String baseName = FilenameUtils.getBaseName(url);
        String extension = FilenameUtils.getExtension(url);

        System.out.println("Basename : " + baseName);
        System.out.println("extension : " + extension);
    }

}
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1  
In version commons-io 2.2 at least you still need to manually handle URLs with parameters. E.g. "example.com/file.xml?date=2010-10-20"; –  Luke Quinane Aug 13 '13 at 5:14
    
yes @LukeQuinane this doesn't seem to handle the urls with query params :( –  Sebastien Lorber Apr 18 at 12:37
1  
FilenameUtils.getName(url) is a better fit. –  ehsun7b Apr 22 at 6:05
String fileName = url.substring( url.lastIndexOf('/')+1, url.length() );

String fileNameWithoutExtn = fileName.substring(0, fileName.lastIndexOf('.'));
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5  
Why the downvote? This is unfair. My code works, I just verified my code after seeing the downvote. –  Real Red. Mar 3 '09 at 9:49
1  
I upvoted you, because it's slightly more readable than my version. The downvote may be because it doesn't work when there's no extension or no file. –  Sietse Mar 3 '09 at 9:59
2  
This wouldn't work if the URL had parameters –  Shaun Wild Dec 22 '13 at 20:50

This should about cut it (i'll leave the error handling to you):

int slashIndex = url.lastIndexOf('/');
int dotIndex = url.lastIndexOf('.', slashIndex);
String filenameWithoutExtension;
if (dotIndex == -1)
{
  filenameWithoutExtension = url.substring(slashIndex + 1);
}
else
{
  filenameWithoutExtension = url.substring(slashIndex + 1, dotIndex);
}
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1  
One error handling aspect you need to consider is you will end up with an empty string if you accidentally pass it a url that doesnt have a filename (such as http://www.example.com/ or http://www.example.com/folder/) –  rtpHarry Jan 21 '11 at 10:06
1  
The code doesn't work. lastIndexOf doesn't work this way. But the intention is clear. –  Robert Dec 15 '11 at 1:58

I've come up with this:

String url = "http://www.example.com/some/path/to/a/file.xml";
String file = url.substring(url.lastIndexOf('/')+1, url.lastIndexOf('.'));
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Hmm this won't work on files without extensions. –  Sietse Mar 3 '09 at 9:37
    
Or on URLs with no file, just a path. –  Sietse Mar 3 '09 at 10:00
    
your code is correct too. we are not supposed to check for negative conditions anyway. an upvote for you. btw does the name dirk kuyt sound familiar? –  Real Red. Mar 3 '09 at 10:06
    
good enough for simple cases –  Dreen Dec 5 '12 at 15:54
public static String getFileName(URL extUrl) {
		//URL: "http://photosaaaaa.net/photos-ak-snc1/v315/224/13/659629384/s659629384_752969_4472.jpg"
		String filename = "";
		//PATH: /photos-ak-snc1/v315/224/13/659629384/s659629384_752969_4472.jpg
		String path = extUrl.getPath();
		//Checks for both forward and/or backslash 
		//NOTE:**While backslashes are not supported in URL's 
		//most browsers will autoreplace them with forward slashes
		//So technically if you're parsing an html page you could run into 
		//a backslash , so i'm accounting for them here;
		String[] pathContents = path.split("[\\\\/]");
		if(pathContents != null){
			int pathContentsLength = pathContents.length;
			System.out.println("Path Contents Length: " + pathContentsLength);
			for (int i = 0; i < pathContents.length; i++) {
				System.out.println("Path " + i + ": " + pathContents[i]);
			}
			//lastPart: s659629384_752969_4472.jpg
			String lastPart = pathContents[pathContentsLength-1];
			String[] lastPartContents = lastPart.split("\\.");
			if(lastPartContents != null && lastPartContents.length > 1){
				int lastPartContentLength = lastPartContents.length;
				System.out.println("Last Part Length: " + lastPartContentLength);
				//filenames can contain . , so we assume everything before
				//the last . is the name, everything after the last . is the 
				//extension
				String name = "";
				for (int i = 0; i < lastPartContentLength; i++) {
					System.out.println("Last Part " + i + ": "+ lastPartContents[i]);
					if(i < (lastPartContents.length -1)){
						name += lastPartContents[i] ;
						if(i < (lastPartContentLength -2)){
							name += ".";
						}
					}
				}
				String extension = lastPartContents[lastPartContentLength -1];
				filename = name + "." +extension;
				System.out.println("Name: " + name);
				System.out.println("Extension: " + extension);
				System.out.println("Filename: " + filename);
			}
		}
		return filename;
	}
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Really Awesome! –  SKR Jul 9 '12 at 7:33
    
works straight out of the box !! (Y) –  saad Dec 29 '13 at 0:14

Create an URL object from the String. When first you have an URL object there are methods to easily pull out just about any snippet of information you need.

I can strongly recommend the Javaalmanac web site which has tons of examples. You might find http://www.exampledepot.com/egs/java.io/File2Uri.html interesting.

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1  
The link you included is broken. –  DavidA Dec 3 '12 at 21:31
1  
Exampledepot appears to have gone missing –  Thorbjørn Ravn Andersen Dec 27 '12 at 20:14

Urls can have parameters in the end, this

 /**
 * Getting file name from url without extension
 * @param url string
 * @return file name
 */
public static String getFileName(String url) {
    String fileName;
    int slashIndex = url.lastIndexOf("/");
    int qIndex = url.lastIndexOf("?");
    if (qIndex > slashIndex) {//if has parameters
        fileName = url.substring(slashIndex + 1, qIndex);
    } else {
        fileName = url.substring(slashIndex + 1);
    }
    if (fileName.contains(".")) {
        fileName = fileName.substring(0, fileName.lastIndexOf("."));
    }

    return fileName;
}
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Here is the simplest way to do it in Android. I know it will not work in Java but It may help Android application developer.

import android.webkit.URLUtil;

public String getFileNameFromURL(String url) {
    String fileNameWithExtension = null;
    String fileNameWithoutExtension = null;
    if (URLUtil.isValidUrl(url)) {
        fileNameWithExtension = URLUtil.guessFileName(url, null, null);
        if (fileNameWithExtension != null && !fileNameWithExtension.isEmpty()) {
            String[] f = fileNameWithExtension.split(".");
            if (f != null & f.length > 1) {
                fileNameWithoutExtension = f[0];
            }
        }
    }
    return fileNameWithoutExtension;
}
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andy's answer redone using split():

Url u= ...;
String[] pathparts= u.getPath().split("\\/");
String filename= pathparts[pathparts.length-1].split("\\.", 1)[0];
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public String getFileNameWithoutExtension(URL url) {
    String path = url.getPath();

    if (StringUtils.isBlank(path)) {
        return null;
    }
    if (StringUtils.endsWith(path, "/")) {
        //is a directory ..
        return null;
    }

    File file = new File(url.getPath());
    String fileNameWithExt = file.getName();

    int sepPosition = fileNameWithExt.lastIndexOf(".");
    String fileNameWithOutExt = null;
    if (sepPosition >= 0) {
        fileNameWithOutExt = fileNameWithExt.substring(0,sepPosition);
    }else{
        fileNameWithOutExt = fileNameWithExt;
    }

    return fileNameWithOutExt;
}
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How about this:

String filenameWithoutExtension = null;
String fullname = new File(
    new URI("http://www.xyz.com/some/deep/path/to/abc.png").getPath()).getName();

int lastIndexOfDot = fullname.lastIndexOf('.');
filenameWithoutExtension = fullname.substring(0, 
    lastIndexOfDot == -1 ? fullname.length() : lastIndexOfDot);
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In order to return filename without extension and without parameters use the following:

String filenameWithParams = FilenameUtils.getBaseName(urlStr); // may hold params if http://example.com/a?param=yes
return filenameWithParams.split("\\?")[0]; // removing parameters from url if they exist

In order to return filename with extension without params use this:

** Parses a URL and extracts the filename from it or returns an empty string (if filename is non existent in the url) <br/>
 * This method will work in win/unix formats, will work with mixed case of slashes (forward and backward) <br/>
 * This method will remove parameters after the extension
 *
 * @param urlStr original url string from which we will extract the filename
 * @return filename from the url if it exists, or an empty string in all other cases */
private String getFileNameFromUrl(String urlStr) {
    String baseName = FilenameUtils.getBaseName(urlStr);
    String extension = FilenameUtils.getExtension(urlStr);

    try {
        extension = extension.split("\\?")[0]; // removing parameters from url if they exist
        return baseName.isEmpty() ? "" : baseName + "." + extension;
    } catch (NullPointerException npe) {
        return "";
    }
}
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import java.io.*;

import java.net.*;

public class ConvertURLToFileName{


   public static void main(String[] args)throws IOException{
   BufferedReader in = new BufferedReader(new InputStreamReader(System.in));
   System.out.print("Please enter the URL : ");

   String str = in.readLine();


   try{

     URL url = new URL(str);

     System.out.println("File : "+ url.getFile());
     System.out.println("Converting process Successfully");

   }  
   catch (MalformedURLException me){

      System.out.println("Converting process error");

 }

I hope this will help you.

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2  
getFile() doesn't do what you think. According to the doc it is actually getPath()+getQuery, which is rather pointless. java.sun.com/j2se/1.4.2/docs/api/java/net/URL.html#getFile() –  bobince Mar 3 '09 at 10:19

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