Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is there a nice way to extract tokens that start with a pre-defined string and end with a pre-defined string?

For example, let's say the starting string is "[" and the ending string is "]". If I have the following string:

"hello[world]this[[is]me"

The output should be:

token[0] = "world"

token[1] = "[is"

(Note: the second token has a 'start' string in it)

share|improve this question
    
Are your tokens one-character only or may them be longer ? –  GhiOm Jun 19 '09 at 5:34
    
may be longer - my example was for simplicity however the start string could be "foo" and the end string could be "bar". –  digiarnie Jun 19 '09 at 5:37
    
Looks like Apache Commons Lang - StringUtils.substringsBetween(string,open,close) is what you need. Works as per above requirement, see answer below for more details. –  Jon Jun 19 '09 at 6:08
add comment

8 Answers 8

up vote 5 down vote accepted

I think you can use the Apache Commons Lang feature that exists in StringUtils:

substringsBetween(java.lang.String str,
                  java.lang.String open,
                  java.lang.String close)

The API docs say it:

Searches a String for substrings delimited by a start and end tag, returning all matching substrings in an array.

The Commons Lang substringsBetween API can be found here:

http://commons.apache.org/lang/apidocs/org/apache/commons/lang/StringUtils.html#substringsBetween(java.lang.String,%20java.lang.String,%20java.lang.String)

share|improve this answer
add comment

Here is the way I would go to avoid dependency on commons lang.

public static String escapeRegexp(String regexp){
	String specChars = "\\$.*+?|()[]{}^";
	String result = regexp;
	for (int i=0;i<specChars.length();i++){
		Character curChar = specChars.charAt(i);
		result = result.replaceAll(
			"\\"+curChar,
			"\\\\" + (i<2?"\\":"") + curChar); // \ and $ must have special treatment
	}
	return result;
}

public static List<String> findGroup(String content, String pattern, int group) {
	Pattern p = Pattern.compile(pattern);
	Matcher m = p.matcher(content);
	List<String> result = new ArrayList<String>();
	while (m.find()) {
		result.add(m.group(group));
	}
	return result;
}


public static List<String> tokenize(String content, String firstToken, String lastToken){
	String regexp = lastToken.length()>1
					?escapeRegexp(firstToken) + "(.*?)"+ escapeRegexp(lastToken)
					:escapeRegexp(firstToken) + "([^"+lastToken+"]*)"+ escapeRegexp(lastToken);
	return findGroup(content, regexp, 1);
}

Use it like this :

String content = "hello[world]this[[is]me";
List<String> tokens = tokenize(content,"[","]");
share|improve this answer
    
Why reinvent the wheel though? –  Jon Jun 20 '09 at 21:33
1  
Because we live in a free world. And because you may not want to use a whole library for one method in it. And because I like it this way. Happy ? –  GhiOm Jun 20 '09 at 22:27
add comment

StringTokenizer?Set the search string to "[]" and the "include tokens" flag to false and I think you're set.

share|improve this answer
    
Sorry, which method is this? I don't see anything with something like 'include tokens' in the signature –  digiarnie Jun 19 '09 at 5:30
    
I can't seem to find that in the docs either: java.sun.com/j2se/1.4.2/docs/api/java/util/StringTokenizer.html –  Sev Jun 19 '09 at 5:36
1  
It is in the 3-arguments constructor. Nonetheless, the result will be {"hello","[","world","]","this","[","[","is","]","me"} so additional work needs to take place. –  David Rabinowitz Jun 19 '09 at 5:45
add comment

Normal string tokenizer wont work for his requirement but you have to tweak it or write your own.

share|improve this answer
add comment

There's one way you can do this. It isn't particularly pretty. What it involves is going through the string character by character. When you reach a "[", you start putting the characters into a new token. When you reach a "]", you stop. This would be best done using a data structure not an array since arrays are of static length.

Another solution which may be possible, is to use regexes for the String's split split method. The only problem I have is coming up with a regex which would split the way you want it to. What I can come up with is {]string of characters[) XOR (string of characters[) XOR (]string of characters) Each set of parenthesis denotes a different regex. You should evaluate them in this order so you don't accidentally remove anything you want. I'm not familiar with regexes in Java, so I used "string of characters" to denote that there's characters in between the brackets.

share|improve this answer
    
yeah I was thinking that character-by-character may have to be the solution but was hoping to steer clear of that if possible - especially if there was an elegant pre-existing API for what I want already. –  digiarnie Jun 19 '09 at 5:34
add comment

Try a regular expression like:

(.*?\[(.*?)\])

The second capture should contain all of the information between the set of []. This will however not work properly if the string contains nested [].

share|improve this answer
add comment

StringTokenizer won't cut it for the specified behavior. You'll need your own method. Something like:

public List extractTokens(String txt, String str, String end) {
    int                      so=0,eo;
    List                     lst=new ArrayList();

    while(so<txt.length() && (so=txt.indexOf(str,so))!=-1) {
        so+=str.length();
        if(so<txt.length() && (eo=txt.indexOf(end,so))!=-1) {
            lst.add(txt.substring(so,eo);
            so=eo+end.length();
            }
        }
    return lst;
    }
share|improve this answer
add comment

The regular expression \\[[\\[\\w]+\\] gives us [world] and [[is]

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.