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For example,

The string is: "{{aaa,bbb},{ccc,ddd},{eee,fff}}"

I want the program auto split it as a string pattern

Pattern is: {{...},{...},{...}}

What is the Pattern Matching regex?

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1  
I don't understand :( –  willcodejavaforfood Oct 15 '10 at 15:26
    
How about no need auto add to array? I just need the Pattern Matching regex, thanks! –  Ivan Oct 15 '10 at 15:32

3 Answers 3

Not sure of what you want, so here goes:

Option 1a

This will return a String[] containing elements:

[ "aaa,bbb",
  "ccc,ddd",
  "eee,fff" ]

if you call this with your original string:

  public static String[] split1(String source) {
    final ArrayList<String> res = new ArrayList<String>();

    if (source != null) {
      source = source.trim();
      if (source.startsWith("{") && source.endsWith("}")) {
        final Pattern p = Pattern.compile("\\{([^}]+)\\}[,]?");
        final Matcher m = p.matcher(source.substring(1).substring(0, source.length() - 2));

        while (m.find()) {
          res.add(m.group(1));
        }
      }
    }
    return (res.toArray(new String[res.size()]));
  }

Option 1b

EDIT: this is slightly simpler than 1a, for the same result:

public static String[] split3(final String source) {
  final ArrayList<String> res = new ArrayList<String>();

  if (source != null) {
    final Pattern p = Pattern.compile("\\{(([^{}]+)[,]?)+\\}");
    final Matcher m = p.matcher(source.trim());

    while (m.find()) {
      res.add(m.group(2));
    }
  }
  return (res.toArray(new String[res.size()]));
}

Option 2a

This will return a String[][] containing elements:

[ [ "aaa", "bbb" ],
  [ "ccc", "ddd" ],
  [ "eee", "fff" ] ]

if you call this with your original string:

  public static String[][] split2(String source) {
    final ArrayList<String[]> res = new ArrayList<String[]>();

    if (source != null) {
      source = source.trim();
      if (source.startsWith("{") && source.endsWith("}")) {
        final Pattern p = Pattern.compile("\\{([^}]+)\\}[,]?");
        final Matcher m = p.matcher(source.substring(1).substring(0,
            source.length() - 2));

        while (m.find()) {
          res.add(m.group(1).split(","));
        }
      }
    }
    return (res.toArray(new String[res.size()][]));
  }

Option 2b

EDIT: this is slightly simpler than 2a, for the same result:

public static String[][] split4(final String source) {
  final ArrayList<String[]> res = new ArrayList<String[]>();

  if (source != null) {
    final Pattern p = Pattern.compile("\\{(((\\w+),(\\w+))[,]?)+\\}");
    final Matcher m = p.matcher(source.trim());

    while (m.find()) {
      res.add(new String[] {
          m.group(3),
          m.group(4)
      });
    }
  }
  return (res.toArray(new String[res.size()][]));
}

Here's a main method for testing:

public static void main(String[] args) {
  final String TEST = "{{aaa,bbb},{ccc,ddd},{eee,fff}}";

  System.out.println("split1 (Option 1a)");
  for (final String str : split1(TEST)) {
    System.out.println(str);
  }

  System.out.println("split2 (Option 2a)");
  for (final String[] strs : split2(TEST)) {
    System.out.println(Arrays.toString(strs));
  }

  System.out.println("split3 (Option 1b)");
  for (final String str : split3(TEST)) {
    System.out.println(str);
  }

  System.out.println("split4 (Option 2b)");
  for (final String[] strs : split4(TEST)) {
    System.out.println(Arrays.toString(strs));
  }
}
share|improve this answer

String has a split(String regex) method that might prove useful. It returns a String[].

You've figured out the pattern;

Pattern is: {{...},{...},{...}}

there is a recurring theme there that delimits the array elements you are trying to extract. You might also want to think about how you handle the start and end bits in your pattern that you don't want.

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Edited. Here's a better solution. You'd just create the compiled Pattern once, then run it against each input string via the "matcher()" routine.

    Matcher m= Pattern.compile( "\\{(\\w*,\\w*)\\}" ).matcher( "{{aaa,bbb},{ccc,ddd},{eee,fff}}" );
    List<String> stuffArray = new ArrayList<String>();
    for ( int i = 1; m.find(); i++ )
    {
        stuffArray.add( m.group().replaceAll( "[{}]","" ) );
    }
    String[] stuffString = stuffArray.toArray( new String[ stuffArray.size() ] );
share|improve this answer
    
Thanks! Where can I learn all the regex symbol is represent for? –  Ivan Oct 15 '10 at 15:40
    
Since regular grammars cannot handle nesting, isn't "a bit more complex" an understatement? Also, not sure I understand your logic. Isn't removing all the commas going to cause a problem? –  Kirk Woll Oct 15 '10 at 15:40
    
The javadoc on Pattern is pretty comprehensive regarding regex expressions. –  Chris Kessel Oct 15 '10 at 15:42
    
You can find the javadoc on Pattern here: download.oracle.com/javase/1.5.0/docs/api/java/util/regex/… –  K.U. Oct 15 '10 at 15:45

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