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Is there any library API or regex pattern to split a String on some delimiter and automatically trim leading and trailing spaces from every element without having to loop the elements?

For example, on splitting " A B # C#D# E # " on # the desired output is [A B,C,D,E]

The closest I got is str.split("\\s*#\\s*") which gives [ A B, C, D, E]

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2  
Isn't that just a trick of Arrays.toString()? It works fine for me. –  biziclop Nov 2 '11 at 20:57
    
Well with your code you certainly wouldn't have to "loop the elements"; it's only the first and last elements that wouldn't be trimmed. –  Mark Peters Nov 2 '11 at 20:57
    
@Biziclop: I think Somu is referring to A B being ` A B` instead. There is no delimiter at the start so the beginning isn't trimmed. –  Mark Peters Nov 2 '11 at 20:58
1  
Just to clarify, the desired output is String[]. So when I say [A B,C,D,E], I really meant {"A B","C","D","E"} –  Somu Nov 2 '11 at 21:08
    
@Mark Peters Ah, I see what the problem is now. As far as I'm aware, split() can't trim that. You can do "(^\\s+)|(\\s*#\\s*)|(\\s+$)" but that would create an extra empty string at the start and the end. –  biziclop Nov 2 '11 at 21:08

4 Answers 4

up vote 16 down vote accepted

Just trim it before you split

" A B # C#D# E # ".trim().split("\\s*#\\s*")

The spaces after the commas in [ A B, C, D, E] are just the way Arrays.toString prints

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Thanks, this was silly of me, got fooled by Arrays.toString's formatted output :) –  Somu Nov 2 '11 at 21:19
1  
So I was right after all. :) –  biziclop Nov 2 '11 at 21:21
    
@biziclop Yeah I took a second too long to decipher your comment. You were spot on! Thank you. –  Somu Nov 2 '11 at 21:26
    
" A B # C#D# E # ".trim().split("\\s*#\\s*") is not working but " A B # C#D# E # ".trim().split(\\s*#\\s*) –  N K Oct 22 '13 at 7:58

Guava to the rescue! Use CharMatcher and Splitter. I use Joiner just to stitch the Iterable back together, clearly showing that the iterable only has the letters in it, with no padding, extraneous spaces, or hash signs.

package main;

import com.google.common.base.CharMatcher;
import com.google.common.base.Joiner;
import com.google.common.base.Splitter;

public class TestMain {

    static Splitter split = Splitter.on(CharMatcher.anyOf(" #")).trimResults()
            .omitEmptyStrings();
    static Joiner join = Joiner.on(", ");

    public static void main(String[] args) {
        final String test = " A B # C#D# E # ";

        System.out.println(join.join(split.split(test)));

    }
}

Output:

A, B, C, D, E

Great for people who get headaches from regex.

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What about just doing a replaceall before splitting?

str.replaceall("\\s*#\\s*","#").split()
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It gives the same result [ A B, C, D, E] –  Somu Nov 2 '11 at 21:13
    
I suppose you could do a trim() on the string after the replaceAll. –  anon Nov 2 '11 at 21:14

Edited to correct whitespace error that was pointed out by Marcus.

I think that the proper regex should be [\s]*#[\s]*:

str.split("[\\s]*#[\\s]*");

Tested on : http://regexpal.com/

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Thanks for pointing out my mistake Marcus. –  NickLH Nov 2 '11 at 21:11
    
Why would \\s need to be in brackets? –  Mark Peters Nov 2 '11 at 21:14
    
Umm, because I'm an idiot :P Yeah, you really don't need those. –  NickLH Nov 2 '11 at 21:17

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