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I'm trying to capture a string up until a certain word that is within some group of words.

I only want to capture the string up until the FIRST instance of one of these words, as they may appear many times in the string.

For example:

Group of words: (was, in, for)

String = "Once upon a time there was a fox in a hole"; would return "Once upon a time there"

Thank you

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Also, there may or may not be a period after one of our "capturing" words. eg using the group above: String "The fox did not realize what it was." would return "The fox did not realize what it" – user1558822 Aug 9 '12 at 21:31
can you just do a couple of indexOfs and trim the string beforehand, and then run your regex? (if this is a common problem you could make that a function) – maxko87 Aug 9 '12 at 21:32

4 Answers 4

up vote 7 down vote accepted

What you need is called a Lookahead. The exact regex for your situation is:


Anyway, the ^ matches the beginning of the string, .+? is a lazy match(it will match the shortest possible string), (?= ... ) means "followed by" and (?: ... ) is a noncapturing group - which may or may not be necessary for you.

For bonus points, you should probably be using word boundaries to make sure you're matching the whole word, instead of a substring ("The fox wasn't" would return "The fox "), and a leading space in the lookahead to kill the trailing space in the match:


Where \s* matches any amount of white space (including none at all) and \b matches the beginning or end of a word. It's a Zero-Width assertion, meaning it doesn't match an actual character.

Or, in Java:

Pattern p = Pattern.compile("^.+?(?=\\s*\\b(?:was)|(?:in)|(?:for)\\b)");

I think that will work. I haven't used it, but according to the documentation, that exact string should work. Just had to escape all the backslashes.


Here I am, more than a year later, and I just realized the regex above does not do what I thought it did at the time. Alternation has the highest precedence, rather than the lowest, so this pattern is more correctly:


Compare this new regex to my old one. Additionally, future travelers, you may wish to capture the whole string if no such breaker word exists. Try THIS on for size:


This one uses a NEGATIVE lookahead (which asserts a match that fails the pattern). It's possibly slower, but it still does the job. See it in action here.

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Great! And will this enforce that there's a space before the word and possibly a period after it? Edit: Also how does Java formatting differ? – user1558822 Aug 9 '12 at 21:40
The second one will, yes. There could be any manner of punctuation or space after the key word, and any manner of space before it and it will still match. – FrankieTheKneeMan Aug 9 '12 at 21:43
I'm sorry - I don't know what you mean by your edit... – FrankieTheKneeMan Aug 9 '12 at 21:43
Added an answer to your Pattern question. – FrankieTheKneeMan Aug 9 '12 at 21:58
Works like a charm! Thank you! – user1558822 Aug 9 '12 at 22:15

You can use this code to capture the string before a terminating word:

Pattern p = Pattern.compile("^(.*?)((\\b(was|in|for)\\b)|$)");
String s = "Once upon a time there was a fox in a hole";
Matcher m = p.matcher(s);
if (m.find()) {

This code produces the following output (link):

Once upon a time there

Here is how this expression works: the (\\b(was|in|for)\\b) means "any of the words listed in the inner parentheses, when they appear on word boundaries". The expression just outside allows for $ in order to capture something even if none of the terminating words appear in the source.

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I'm voting for your answer, because it is functional, but your terminology is wrong. You're capturing both groups and only returning the first, rather than using a non-capturing groups. – FrankieTheKneeMan Aug 9 '12 at 22:06
@FrankieTheKneeMan Thanks! This was from before the first edit, when I was using a non-capturing group. Pshemo pointed out that my non-capturing group was not necessary, so I deleted it, but I forgot to fix the wording. – dasblinkenlight Aug 9 '12 at 22:14

A very simple way to handle this is to just split the string with a regex and keep the first thing returned:

String str = "Once upon a time there was a fox in a hole";
String match = str.split("(was|in|for)")[0];

// match = "Once upon a time there "

In this example, match will either contain the first part of the string before the first matched word or, in the case of a string where the word wasn't found it will contain the entire string.

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This is actually a significantly better answer than mine. – FrankieTheKneeMan Nov 4 '13 at 20:14
String s = "Once upon a time there was a fox in the hole";
String[] taboo = {"was", "in", "for"} ;
for (int i = 0; i < taboo.length; i++){
    if (s.indexOf(taboo[i]) > -1 ){
        s=s.substring(0, s.indexOf(taboo[i])) ;

works on my computer..

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After looking at all the other answers I feel like mine is the least elegant. – Chase Roberts Aug 9 '12 at 21:38
"I feel like mine is the least elegant" Yet is is very likely the fastest one, assuming a small number of taboo words. +1 – dasblinkenlight Aug 9 '12 at 22:02

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