17

What I did up until now is following:

String fileName = "file.date.txt";
String ext = fileName.substring(fileName.lastIndexOf('.') + 1);

System.out.printf("'%s'%n", ext); // prints: 'txt'

Is there a more convenient way in Java 8?

  • 3
    The importance of a file extension is often overestimated. The substring/lastIndexOf solution is sufficient. – Holger Jun 18 '15 at 11:35
  • 2
    Java can not provide you with explicit means for getting the "file extension" of a path name because the concept of a file extension is not portable. Unix does not really have them (you can have a . near the end of a file leaf name, but the O/S kernel does not consider what follows to be significant). – Raedwald Jun 18 '15 at 11:56
  • Uhm. Extensions are a convenient and very common way of organizing files, used by a vast number of tools and applications, even if modern operating systems do not handle them explicitly. – Nicola Musatti Sep 19 at 9:27
6

No, see the changelog of the JDK8 release

14

No there is no more efficient/convenient way in JDK, but many libraries give you ready methods for this, like Guava: Files.getFileExtension(fileName) which wraps your code in single method (with additional validation).

8

Not Java8, but you can always use FilenameUtils.getExtension() from apache Commons library. :)

2

Actually there is a new way of thinking about returning file extensions in Java 8.

Most of the "old" methods described in the other answers return an empty string if there is no extension, but while this avoids NullPointerExceptions, it makes it easy to forget that not all files have an extension. By returning an Optional, you can remind yourself and others about this fact, and you can also make a distinction between file names with an empty extension (dot at the end) and files without extension (no dot in the file name)

public static Optional<String> findExtension(String fileName) {
    int lastIndex = fileName.lastIndexOf('.');
    if (lastIndex == -1) {
        return Optional.empty();
    }
    return Optional.of(fileName.substring(lastIndex + 1));
}
0

Use FilenameUtils.getExtension from Apache Commons IO

Example:

You can provide full path name or only the file name.

String myString1 = FilenameUtils.getExtension("helloworld.exe"); // returns "exe"
String myString2 = FilenameUtils.getExtension("/home/abc/yey.xls"); // returns "xls"

Hope this helps ..

  • 3
    There is an almost three year old answer mentioning this. There is no need to write that again. – Tom Apr 6 at 7:42

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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