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I would like to have a regular expression to extract the path from a full file location

For example, having a path

#/home/java/bin/myfile

The regular expression should extract /home/java/bin/

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  • I would like to have a regular expression to extract the path(to match the path as mentioned). Thanks. Nov 30, 2013 at 20:46
  • Bohemian already provided the solution. Thanks for your help. Dec 5, 2013 at 15:40

3 Answers 3

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Why regular expression?

String s = "#/home/java/bin/myfile";
String result = s.substring(1, s.lastIndexOf("/") + 1);
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  • 1
    What if path is not absolute and does not contain any / character?
    – Ωmega
    Nov 30, 2013 at 20:53
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The most simple regex pattern would be .*\/(?!.*\/)|

Regular expression visualization

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  • This is java: no need to escape slashes. In fact, if used as-is, this wouldn't compile
    – Bohemian
    Nov 30, 2013 at 21:05
  • Also it doesn't actually work
    – Bohemian
    Nov 30, 2013 at 21:24
  • Not sure why this is not matching the path, Please find my code. Nov 30, 2013 at 21:29
  • Pattern p = Pattern.compile(".*\\/(?!.*\\/)|"); Matcher matcher = p.matcher("#/home/java/bin/myfile"); //The regular expression should extract /home/java/bin/ if(matcher.matches()) { System.out.println("Group 0 " + matcher.group(0)); System.out.println("Group 1 " + matcher.group(1)); } Nov 30, 2013 at 21:29
  • @Bohemian - This is a standard regex format, that includes common escaping. Java requires to double an escape characters, but that is something well known. As this question and related answers may be helpful for other users, regardless of programming language, I prefer to use standard regex format.
    – Ωmega
    Nov 30, 2013 at 22:11
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You can extract the directory from the path using this line:

String dir = path.replaceAll(".*?(/.*/).*", "$1");

Here's some test code:

String path = "#/home/java/bin/myfile";
String dir = path.replaceAll(".*?(/.*/).*", "$1");
System.out.println(dir);

Output:

/home/java/bin/
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  • Thank you. Appreciate your help. Nov 30, 2013 at 21:52
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    You should not use lazy regex operator if you don't have to... Faster alternative to your solution would be replaceAll("^[^/]*|[^/]*$", "");
    – Ωmega
    Nov 30, 2013 at 22:28
  • @ΩmegaΔ I did think of that, but decided against it because it's a regex for the negative of the target, whereas my regex captures the target and is IMHO easier to read and useful elsewhere, for example for extracting multiple instances from a string containing several paths. While performance is important, the difference in performance between the two would be negligible. It's always good to think of performance, but readability is more important. All that said, it's good to show your solution as an alternative.
    – Bohemian
    Dec 1, 2013 at 1:04

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