Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

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.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

thx a lot

share|improve this question

5 Answers 5

up vote 46 down vote accepted

is that what you are looking for:

URI uri = new URI("");
String path = uri.getPath();
String idStr = path.substring(path.lastIndexOf('/') + 1);
int id = Integer.parseInt(idStr);


URI uri = new URI("");
String[] segments = uri.getPath().split("/");
String idStr = segments[segments.length-1];
int id = Integer.parseInt(idStr);
share|improve this answer
I was searching for Android's (not and ended up here. If you're using that instead, there's a method there called getLastPathSegment() which should do the same thing. :) – paul_sns Mar 4 '13 at 4:19
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 at 20:37

Nice of you to accept the answer, but the version you accepted was actually incorrect. Update: it's no longer accepted. Heres a simpler correct version:

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){




.*/      // 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
share|improve this answer
i will try your too, but for now sfussenegger's code works very well and i have understand it, in your i don't understand this (".*/([^/?]+).*", "$1" part . – DX89B Oct 29 '10 at 9:21
no sweat, sfussenegger's answer is good, but I'll try to explain mine in a minute or so. – Sean Patrick Floyd Oct 29 '10 at 9:25
thx for the explain i will try it – DX89B Oct 29 '10 at 9:32
Uri uri = Uri.parse("");
String token = uri.getLastPathSegment();
share|improve this answer
Is this ""? Base don the tags of the question, would be assumed and it doesn't have a getLastPathSegment()... – Michael Geiser May 5 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 at 16:34
GetLastPathSegment doesn't exists here. – Abdullah Shoaib Aug 27 at 6:01
Voted up because android is taking over Java. – Sep 25 at 9:27

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();
share|improve this answer

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

share|improve this answer
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 at 20:37

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

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