I have in input a string that is an URI. how is possible to get the last path segment? that in my case is an id?

This is my input url

String uri = "http://base_path/some_segment/id"

And I have to obtain the id I have tried with this

String strId = "http://base_path/some_segment/id";
strId=strId.replace(path);
strId=strId.replaceAll("/", "");
Integer id =  new Integer(strId);
return id.intValue();

but it doesn't work and for sure there is a better way to do it.

10 Answers 10

up vote 122 down vote accepted

is that what you are looking for:

URI uri = new URI("http://example.com/foo/bar/42?param=true");
String path = uri.getPath();
String idStr = path.substring(path.lastIndexOf('/') + 1);
int id = Integer.parseInt(idStr);

alternatively

URI uri = new URI("http://example.com/foo/bar/42?param=true");
String[] segments = uri.getPath().split("/");
String idStr = segments[segments.length-1];
int id = Integer.parseInt(idStr);
  • 36
    I was searching for Android's android.net.Uri (not java.net.URI) and ended up here. If you're using that instead, there's a method there called getLastPathSegment() which should do the same thing. :) – pm_labs Mar 4 '13 at 4:19
  • 4
    Just do String idStr = new File(uri.getPath()).getName(), same as this answer but uses File instead of String to split the path. – Jason C May 6 '15 at 20:37
  • this wont work for urls like example.com/job/senior-health-and-nutrition-advisor/?param=true. Last "/" is making trouble. Need something more good getLastPathSegment() answer given by @paul_sns is perfect. – Vaibhav Kadam Jan 9 at 23:21
  • @VaibhavKadam well, technically you could argue that the last segment is an empty string. But if that's not what you want simply use: while (path.endsWith("/")) path = path.substring(0, path.length() - 1); – sfussenegger Jan 10 at 8:33
  • @sfussenegger My bad I didn't read TAGs in question. I thought it has tag of android. Well +1 for android.net.uri. :). Android is taking over JAVA. – Vaibhav Kadam Jan 11 at 10:29
import android.net.Uri;
Uri uri = Uri.parse("http://example.com/foo/bar/42?param=true");
String token = uri.getLastPathSegment();
  • 1
    Is this "android.net.Uri"? Base don the tags of the question, java.net.URI would be assumed and it doesn't have a getLastPathSegment()... – Michael Geiser May 5 '15 at 14:08
  • Also, the Android Uri class name is lowercase and cannot be instantiated. I've corrected your answer to use the static factory method Uri.parse(). – user113215 May 14 '15 at 16:34
  • GetLastPathSegment doesn't exists here. – Abdullah Shoaib Aug 27 '15 at 6:01

Here's a short method to do it:

public static String getLastBitFromUrl(final String url){
    // return url.replaceFirst("[^?]*/(.*?)(?:\\?.*)","$1);" <-- incorrect
    return url.replaceFirst(".*/([^/?]+).*", "$1");
}

Test Code:

public static void main(final String[] args){
    System.out.println(getLastBitFromUrl(
        "http://example.com/foo/bar/42?param=true"));
    System.out.println(getLastBitFromUrl("http://example.com/foo"));
    System.out.println(getLastBitFromUrl("http://example.com/bar/"));
}

Output:

42
foo
bar

Explanation:

.*/      // find anything up to the last / character
([^/?]+) // find (and capture) all following characters up to the next / or ?
         // the + makes sure that at least 1 character is matched
.*       // find all following characters


$1       // this variable references the saved second group from above
         // I.e. the entire string is replaces with just the portion
         // captured by the parentheses above
  • while i am a big fan of regex and use it frequently myself, i recognize that for most developers, regex is about as obtuse as it gets. it is not simpler in the fact that it is not quickly understood. – Bill Turner Jun 7 '16 at 21:44
  • The / in the negated character class [^/?] is unnecessary, because it will never be matched. .*/ will always match the last / in the String, so no other / should be encountered. – Stefan van den Akker May 27 '17 at 7:33
  • doesn't work for this kind of link http://example.com/foo#reply2, It will be great if you could update your answer to solve it. Thanks – ghui zhang Jun 2 '17 at 16:07
  • 1
    Regexps are cool. – noamtm Jul 17 at 6:39

I know this is old, but the solutions here seem rather verbose. Just an easily readable one-liner if you have a URL or URI:

String filename = new File(url.getPath()).getName();

Or if you have a String:

String filename = new File(new URL(url).getPath()).getName();
  • Does it work with all possible options of a URL, like a.co/last?a=1#frag. I think not, as the code does substring of the last path symbol until the end: path.substring(index + 1). – AlikElzin-kilaka May 21 at 14:49
  • @alik The question asks for the last path segment. The query and fragment are not part of the path segment. – Jason C Jun 18 at 9:03

In Java 7+ a few of the previous answers can be combined to allow retrieval of any path segment from a URI, rather than just the last segment. We can convert the URI to a java.nio.file.Path object, to take advantage of its getName(int) method.

Unfortunately, the static factory Paths.get(uri) is not built to handle the http scheme, so we first need to separate the scheme from the URI's path.

URI uri = URI.create("http://base_path/some_segment/id");
Path path = Paths.get(uri.getPath());
String last = path.getFileName().toString();
String secondToLast = path.getName(path.getNameCount() - 2).toString();

To get the last segment in one line of code, simply nest the lines above.

Paths.get(URI.create("http://base_path/some_segment/id").getPath()).getFileName().toString()

To get the second-to-last segment while avoiding index numbers and the potential for off-by-one errors, use the getParent() method.

String secondToLast = path.getParent().getFileName().toString();

Note the getParent() method can be called repeatedly to retrieve segments in reverse order. In this example, the path only contains two segments, otherwise calling getParent().getParent() would retrieve the third-to-last segment.

If you are using Java 8 and you want the last segment in a file path you can do.

Path path = Paths.get("example/path/to/file");
String lastSegment = path.getFileName().toString();

If you have a url such as http://base_path/some_segment/id you can do.

final Path urlPath = Paths.get("http://base_path/some_segment/id");
final Path lastSegment = urlPath.getName(urlPath.getNameCount() - 1);
  • 1
    Risky because java.nio.file.Paths#get depends on OS filesystem the JVM is running on. There's no guarantee it will recognise a URI with forward slashes as path separators. – Adrian Baker Jan 26 '17 at 20:36
  • What about URI with query params? Treating a random URI as a file system path is asking for an exception. – Abhijit Sarkar Dec 3 '17 at 6:50

You can use getPathSegments() function. (Android Documentation)

Consider your example URI:

String uri = "http://base_path/some_segment/id"

You can get the last segment using:

List<String> pathSegments = uri.getPathSegments();
String lastSegment = pathSegments.get(pathSegments.size - 1);

lastSegment will be id.

In Android

Android has a built in class for managing URIs.

Uri uri = Uri.parse("http://base_path/some_segment/id");
String lastPathSegment = uri.getLastPathSegment()

If you have commons-io included in your project, you can do it without creating unecessary objects with org.apache.commons.io.FilenameUtils

String uri = "http://base_path/some_segment/id";
String fileName = FilenameUtils.getName(uri);
System.out.println(fileName);

Will give you the last part of the path, which is the id

Get URL from URI and use getFile() if you are not ready to use substring way of extracting file.

  • 2
    won't work, see javadoc of getFile(): Gets the file name of this URL. The returned file portion will be the same as getPath(), plus the concatenation of the value of getQuery(), if any. If there is no query portion, this method and getPath() will return identical results.) – sfussenegger Oct 29 '10 at 8:24
  • Use getPath() not getFile(). – Jason C May 6 '15 at 20:37

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