181

What's the most efficient way to trim the suffix in Java, like this:

title part1.txt
title part2.html
=>
title part1
title part2
  • 2
    efficient code wise, is what you mean i hope, not CPU wise – mkoryak Jun 2 '09 at 18:56
  • 3
    He wasn't asking how to do it, he was asking what's the most efficient way. I came here looking for the same thing. – Edward Falk May 26 '11 at 20:27

19 Answers 19

292

This is the sort of code that we shouldn't be doing ourselves. Use libraries for the mundane stuff, save your brain for the hard stuff.

In this case, I recommend using FilenameUtils.removeExtension() from Apache Commons IO

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  • 6
    For 95% of the projects, this should be the accepted answer. Rewriting code like this is the root cause for many headaches! – Carsten Hoffmann Aug 1 '16 at 14:19
  • 1
    Just add the following line in gradle to add the depedency:- compile 'commons-io:commons-io:2.6' – Deepak Sharma Dec 21 '17 at 14:50
  • 10
    If you have Apache Commons I/O already in your project, that's right. But if this all you need from it, you're adding (at least) 2.5 MB of dead weight to your project for something that can be easily done with a single line. – foo Sep 3 '18 at 9:40
235
str.substring(0, str.lastIndexOf('.'))
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  • 9
    This should be assigned to a new variable as str is not modified. – Nathan Feger Jun 2 '09 at 19:24
  • 51
    Handle with care: it'll throw an Exception at you if the file name has no suffix. – Andreas Dolk Jun 2 '09 at 22:44
  • 24
    what about archive.tar.bz2 ? – Antonio May 1 '11 at 8:46
  • 21
    if(str.contains(".")) str.substring(0, str.lastIndexOf('.')) – Nicolas Tyler Jun 20 '13 at 12:04
  • 6
    if(str != null && str.contains(".")) str.substring(0, str.lastIndexOf('.')). FilenameUtils is another dependency, and not always available – ocramot Jul 24 '14 at 14:16
89

As using the String.substring and String.lastIndex in a one-liner is good, there are some issues in terms of being able to cope with certain file paths.

Take for example the following path:

a.b/c

Using the one-liner will result in:

a

That's incorrect.

The result should have been c, but since the file lacked an extension, but the path had a directory with a . in the name, the one-liner method was tricked into giving part of the path as the filename, which is not correct.

Need for checks

Inspired by skaffman's answer, I took a look at the FilenameUtils.removeExtension method of the Apache Commons IO.

In order to recreate its behavior, I wrote a few tests the new method should fulfill, which are the following:

Path                  Filename
--------------        --------
a/b/c                 c
a/b/c.jpg             c
a/b/c.jpg.jpg         c.jpg

a.b/c                 c
a.b/c.jpg             c
a.b/c.jpg.jpg         c.jpg

c                     c
c.jpg                 c
c.jpg.jpg             c.jpg

(And that's all I've checked for -- there probably are other checks that should be in place that I've overlooked.)

The implementation

The following is my implementation for the removeExtension method:

public static String removeExtension(String s) {

    String separator = System.getProperty("file.separator");
    String filename;

    // Remove the path upto the filename.
    int lastSeparatorIndex = s.lastIndexOf(separator);
    if (lastSeparatorIndex == -1) {
        filename = s;
    } else {
        filename = s.substring(lastSeparatorIndex + 1);
    }

    // Remove the extension.
    int extensionIndex = filename.lastIndexOf(".");
    if (extensionIndex == -1)
        return filename;

    return filename.substring(0, extensionIndex);
}

Running this removeExtension method with the above tests yield the results listed above.

The method was tested with the following code. As this was run on Windows, the path separator is a \ which must be escaped with a \ when used as part of a String literal.

System.out.println(removeExtension("a\\b\\c"));
System.out.println(removeExtension("a\\b\\c.jpg"));
System.out.println(removeExtension("a\\b\\c.jpg.jpg"));

System.out.println(removeExtension("a.b\\c"));
System.out.println(removeExtension("a.b\\c.jpg"));
System.out.println(removeExtension("a.b\\c.jpg.jpg"));

System.out.println(removeExtension("c"));
System.out.println(removeExtension("c.jpg"));
System.out.println(removeExtension("c.jpg.jpg"));

The results were:

c
c
c.jpg
c
c
c.jpg
c
c
c.jpg

The results are the desired results outlined in the test the method should fulfill.

| improve this answer | |
  • 4
    Great answer. Is there a particular reason why you use System.getProperty("file.separator") and not just File.separator? – halirutan Sep 4 '13 at 22:10
  • 2
    A word of warning: This solution also removes the preceding path, not just the extension, unlike the Apache Commons IO method. – DHa Apr 21 '16 at 22:34
  • 3
    It appears this will fail for the /path/to/.htaccess – Kuzeko May 4 '16 at 15:22
18

BTW, in my case, when I wanted a quick solution to remove a specific extension, this is approximately what I did:

  if (filename.endsWith(ext))
    return filename.substring(0,filename.length() - ext.length());
  else
    return filename;
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16
String foo = "title part1.txt";
foo = foo.substring(0, foo.lastIndexOf('.'));
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  • 4
    No, there might be more than one '.'; you want lastIndexOf('.') – Adam Jaskiewicz Jun 2 '09 at 19:12
  • -1 for not using the method I thought you were using. That's now a total of +0 from me. Change it quick! ;) – Michael Myers Jun 2 '09 at 19:18
8
String fileName="foo.bar";
int dotIndex=fileName.lastIndexOf('.');
if(dotIndex>=0) { // to prevent exception if there is no dot
  fileName=fileName.substring(0,dotIndex);
}

Is this a trick question? :p

I can't think of a faster way atm.

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7

Use a method in com.google.common.io.Files class if your project is already dependent on Google core library. The method you need is getNameWithoutExtension.

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7

you can try this function , very basic

public String getWithoutExtension(String fileFullPath){
    return fileFullPath.substring(0, fileFullPath.lastIndexOf('.'));
}
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5

I found coolbird's answer particularly useful.

But I changed the last result statements to:

if (extensionIndex == -1)
  return s;

return s.substring(0, lastSeparatorIndex+1) 
         + filename.substring(0, extensionIndex);

as I wanted the full path name to be returned.

So "C:\Users\mroh004.COM\Documents\Test\Test.xml" becomes 
   "C:\Users\mroh004.COM\Documents\Test\Test" and not
   "Test"
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5
filename.substring(filename.lastIndexOf('.'), filename.length()).toLowerCase();
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  • 3
    Opposite of what was asked and there is no need to pass the length, just use one arg substring – user486646 Oct 19 '13 at 14:48
4

Use a regex. This one replaces the last dot, and everything after it.

String baseName = fileName.replaceAll("\\.[^.]*$", "");

You can also create a Pattern object if you want to precompile the regex.

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1
String[] splitted = fileName.split(".");
String fileNameWithoutExtension = fileName.replace("." + splitted[splitted.length - 1], "");
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  • Need to split on "\\." as "." is special for regex. – Compass Dec 23 '14 at 19:24
1

create a new file with string image path

String imagePath;
File test = new File(imagePath);
test.getName();
test.getPath();
getExtension(test.getName());


public static String getExtension(String uri) {
        if (uri == null) {
            return null;
        }

        int dot = uri.lastIndexOf(".");
        if (dot >= 0) {
            return uri.substring(dot);
        } else {
            // No extension.
            return "";
        }
    }
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1

org.apache.commons.io.FilenameUtils version 2.4 gives the following answer

public static String removeExtension(String filename) {
    if (filename == null) {
        return null;
    }
    int index = indexOfExtension(filename);
    if (index == -1) {
        return filename;
    } else {
        return filename.substring(0, index);
    }
}

public static int indexOfExtension(String filename) {
    if (filename == null) {
        return -1;
    }
    int extensionPos = filename.lastIndexOf(EXTENSION_SEPARATOR);
    int lastSeparator = indexOfLastSeparator(filename);
    return lastSeparator > extensionPos ? -1 : extensionPos;
}

public static int indexOfLastSeparator(String filename) {
    if (filename == null) {
        return -1;
    }
    int lastUnixPos = filename.lastIndexOf(UNIX_SEPARATOR);
    int lastWindowsPos = filename.lastIndexOf(WINDOWS_SEPARATOR);
    return Math.max(lastUnixPos, lastWindowsPos);
}

public static final char EXTENSION_SEPARATOR = '.';
private static final char UNIX_SEPARATOR = '/';
private static final char WINDOWS_SEPARATOR = '\\';
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1
 private String trimFileExtension(String fileName)
  {
     String[] splits = fileName.split( "\\." );
     return StringUtils.remove( fileName, "." + splits[splits.length - 1] );
  }
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0

I would do like this:

String title_part = "title part1.txt";
int i;
for(i=title_part.length()-1 ; i>=0 && title_part.charAt(i)!='.' ; i--);
title_part = title_part.substring(0,i);

Starting to the end till the '.' then call substring.

Edit: Might not be a golf but it's effective :)

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  • 7
    That's basically what lastIndexOf does anyway; why reinvent the wheel? – Michael Myers Jun 2 '09 at 19:01
  • For fun and to be a bit descriptive. just that. (and i forgot about lastIndexOf when i was writing this) – fmsf Jun 2 '09 at 19:04
0

Keeping in mind the scenarios where there is no file extension or there is more than one file extension

example Filename : file | file.txt | file.tar.bz2

/**
 *
 * @param fileName
 * @return file extension
 * example file.fastq.gz => fastq.gz
 */
private String extractFileExtension(String fileName) {
    String type = "undefined";
    if (FilenameUtils.indexOfExtension(fileName) != -1) {
        String fileBaseName = FilenameUtils.getBaseName(fileName);
        int indexOfExtension = -1;
        while (fileBaseName.contains(".")) {
            indexOfExtension = FilenameUtils.indexOfExtension(fileBaseName);
            fileBaseName = FilenameUtils.getBaseName(fileBaseName);
        }
        type = fileName.substring(indexOfExtension + 1, fileName.length());
    }
    return type;
}
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0
String img = "example.jpg";
// String imgLink = "http://www.example.com/example.jpg";
URI uri = null;

try {
    uri = new URI(img);
    String[] segments = uri.getPath().split("/");
    System.out.println(segments[segments.length-1].split("\\.")[0]);
} catch (Exception e) {
    e.printStackTrace();
}

This will output example for both img and imgLink

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0
public static String removeExtension(String file) {
    if(file != null && file.length() > 0) {
        while(file.contains(".")) {
            file = file.substring(0, file.lastIndexOf('.'));
        }
    }
    return file;
}
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  • This will transform "a.jpg.jpg" to "a" instead of the (correct) "a.jpg". What purpose serves the file.length() > 0 check? – Klaus Gütter Jan 12 '19 at 6:17
  • Main question was "how remove extension ?", so yes its transform "a.txt.zip" to "a" and ".htaccess" to emptiness. This function work with Strings, so file names can be not null but still can be 0 length, faster check if it worth it before parsing symbols. Regards. – Alexey Jan 12 '19 at 14:37

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