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I have a multiline string which is delimited by a set of different delimiters:

(Text1)(DelimiterA)(Text2)(DelimiterC)(Text3)(DelimiterB)(Text4)

I can split this string into its parts, using String.split, but it seems that I can't get the actual string, which matched the delimiter regex.

In other words, this is what I get:

  • Text1
  • Text2
  • Text3
  • Text4

This is what I want

  • Text1
  • DelimiterA
  • Text2
  • DelimiterC
  • Text3
  • DelimiterB
  • Text4

Is there any JDK way to split the string using a delimiter regex but also keep the delimiters?

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Is this a duplicate of this: stackoverflow.com/questions/275768/… –  David Grant Feb 5 '10 at 10:11

5 Answers 5

up vote 94 down vote accepted

You can use Lookahead and Lookbehind. Like this:

System.out.println(Arrays.toString("a;b;c;d".split("(?<=;)")));
System.out.println(Arrays.toString("a;b;c;d".split("(?=;)")));
System.out.println(Arrays.toString("a;b;c;d".split("((?<=;)|(?=;))")));

And you will get:

[a;, b;, c;, d]
[a, ;b, ;c, ;d]
[a, ;, b, ;, c, ;, d]

The last one is what you want.

((?<=;)|(?=;)) equals to select an empty character before ; or after ;.

Hope this helps.

EDIT Fabian Steeg comments on Readability is valid. Readability is always the problem for RegEx. One thing, I do to help easing this is to create a variable whose name represent what the regex does and use Java String format to help that. Like this:

static public final String WITH_DELIMITER = "((?<=%1$s)|(?=%1$s))";
...
public void someMethod() {
...
final String[] aEach = "a;b;c;d".split(String.format(WITH_DELIMITER, ";"));
...
}
...

This helps a little bit. :-D

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Very nice! Here we can see again the power of regular expressions!! –  George Feb 5 '10 at 10:26
3  
Nice addition for improving readability! –  Fabian Steeg Feb 5 '10 at 11:46
3  
That should be: String.format(WITH_DELIMITER, ";"); as format is a static method. –  john16384 Apr 22 '12 at 11:18
2  
One complication I just encountered is variable-length delimiters (say [\\s,]+) that you want to match completely. The required regexes get even longer, as you need additional negative look{ahead,behind}s to avoid matching them in the middle, eg. (?<=[\\s,]+)(?![\\s,])|(?<![\\s,])(?=[\\s,]+). –  Michał Politowski May 9 '12 at 13:24
1  
This won't work for delimiter pattern containing repeat, right? –  justhalf Sep 18 '13 at 8:52

A very naive solution, that doesn't involve regex would be to perform a string replace on your delimiter along the lines of (assuming comma for delimiter):

string.replace(FullString, "," , "~,~")

Where you can replace tilda (~) with an appropriate unique delimiter.

Then if you do a split on your new delimiter then i believe you will get the desired result.

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Clever cheat! :) –  mixkat Feb 3 '13 at 14:47

I suggest using Pattern and Matcher, which will almost certainly achieve what you want. Your regular expression will need to be somewhat more complicated than what you are using in String.split.

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+1, This is the right way. StringTokenizer will output delimiters if you place them in capture groups, but it's essentially deprecated. Using lookahead with split() is hacky for reasons that are outlined in the comments of the accepted answer -- mainly that it becomes a mess when there's more than one delimiter. But you can have a real tokenizer in a few lines with Pattern and Matcher. –  johncip Mar 14 at 9:26

I don't think it is possible with String#split, but you can use a StringTokenizer, though that won't allow you to define your delimiter as a regex, but only as a class of single-digit characters:

new StringTokenizer("Hello, world. Hi!", ",.!", true); // true for returnDelims
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There I can't define a regex to specify my delimiters. –  Daniel Rikowski Feb 5 '10 at 10:05
    
StringTokenizer only allows for single-character delimiters, though. –  Michael Borgwardt Feb 5 '10 at 10:05
    
@DR @Michael: True, edited to clarify –  Fabian Steeg Feb 5 '10 at 11:08

An extremely naive and inefficient solution which works nevertheless.Use split twice on the string and then concatenate the two arrays

String temp[]=str.split("\\W");
String temp2[]=str.split("\\w||\\s");
int i=0;
for(String string:temp)
System.out.println(string);
String temp3[]=new String[temp.length-1];
for(String string:temp2)
{
        System.out.println(string);
        if((string.equals("")!=true)&&(string.equals("\\s")!=true))
        {
                temp3[i]=string;
                i++;
        }
//      System.out.println(temp.length);
//      System.out.println(temp2.length);
}
System.out.println(temp3.length);
String[] temp4=new String[temp.length+temp3.length];
int j=0;
for(i=0;i<temp.length;i++)
{
        temp4[j]=temp[i];
        j=j+2;
}
j=1;
for(i=0;i<temp3.length;i++)
{
        temp4[j]=temp3[i];
        j+=2;
}
for(String s:temp4)
System.out.println(s);
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