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is ist possible to tell String.split("(") function that it has to split only by the first found string "("?


String test = "A*B(A+B)+A*(A+B)";
test.split("(") should result to ["A*B" ,"A+B)+A*(A+B)"]
test.split(")") should result to ["A*B(A+B" ,"+A*(A+B)"]
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3 Answers 3

up vote 46 down vote accepted

Yes, absolutely:

test.split("\\(", 2);

As the documentation for String.split(String,int) explains:

The limit parameter controls the number of times the pattern is applied and therefore affects the length of the resulting array. If the limit n is greater than zero then the pattern will be applied at most n - 1 times, the array's length will be no greater than n, and the array's last entry will contain all input beyond the last matched delimiter.

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ruakh I tried your answer, when my reges is "\(", it works fine but when my regex is "(", it throws Exception. can you say why? – Chandra Sekhar Mar 26 '12 at 14:16
@ChandraSekhar: It's because ( has a special meaning in Java regular expressions. (For example, (34)+ means "one or more occurrences of 34", as opposed to 34+ which means "a 3, followed by one or more occurrences of 4.) So the backslash is used to "quote" or "escape" it, and indicate "an actual ( character" rather than using ( for its special meaning. – ruakh Mar 26 '12 at 14:21
@ruakh thanks for your reply. – Chandra Sekhar Mar 26 '12 at 14:26
@aioobe thanks for your reply. – Chandra Sekhar Mar 26 '12 at 14:26
( has a special meaning in any regular expressions interpreter (maybe not in some really old or limited ones [?] - not sure - but any I would be likely to use) – Code Jockey Mar 26 '12 at 20:59

See javadoc for more info

EDIT: Escaped bracket, as per @Pedro's comment below.

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Will cause Exception. java.util.regex.PatternSyntaxException: Unclosed group near index 1 – Pedro Ferreira Mar 26 '12 at 14:27

Try with this solution, it's generic, faster and simpler than using a regular expression:

public static String[] splitOnFirst(String str, char c) {
    int idx = str.indexOf(c);
    String head = str.substring(0, idx);
    String tail = str.substring(idx + 1);
    return new String[] { head, tail} ;

Test it like this:

String test = "A*B(A+B)+A*(A+B)";
System.out.println(Arrays.toString(splitOnFirst(test, '(')));
System.out.println(Arrays.toString(splitOnFirst(test, ')')));
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"Simpler"? To each his own, I guess. I find the regex to be the simplest, and plenty fast. Also, it supports strings, and it won't blow up if str.indexOf(c) == -1. – ruakh Mar 26 '12 at 14:50
It's simpler because you don't have to know about regular expressions to use it. Sure, it needs a bit of error checking, but that's beyond the question. And if Strings are needed, simply changing the parameter char c to String c will do the trick. And yes, it's faster, your solution needs to compile and match a regular expression each time it's invoked, and OP will need to escape special characters, which he's unaware of. – Óscar López Mar 26 '12 at 15:05
Re: "And yes, it's faster": Well, obviously. I didn't say that the regex is faster, only that it's plenty fast, and much simpler. Re: "simply changing the parameter char c to String c will do the trick": You'd also have to change 1 to c.length(). – ruakh Mar 26 '12 at 15:11
To each his own describes it pretty well -- using regex in many cases also allows dynamic maintenance or adjustment of an algorithm, since the entire "algorithm" can often be contained inside a string (which can be a field in a database or a single value in a properties file). To me, "Split on open parenthesis for a maximum array size of 2" is far more simply represented as test.split("\\(", 2); (see? I did it just then) than by the function in your example. Also, compiling the regex can further increase efficiency of it if it is to be used often (not that said expression is very complex). – Code Jockey Mar 26 '12 at 21:11

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