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Let's say I have a generalized string

"...&<constant_word>+<random_words_with_random_length>&...&...&..."

I would want to split the string using

"<constant_word>+<random_words_with_random_length>&"

for which I tried RegEx split like

<string>.split(/<constant_word>.*&/)

This RegEx splits till the last '&' unfortunately i.e.

"<constant_word>+<random_words_with_random_length>&...&...&"

What would be the RegEx code if I wanted it to split when it gets the first '&'?

example for a string split like

"example&ABC56748393&this&is&a&sample&string".split(/ABC.*&/)

gives me

["example&","string"]

while what I want is..

["example&","this&is&a&sample&string"]
share|improve this question

You may change the greediness with a question mark ?:

"example&ABC56748393&this&is&a&sample&string".split(/&ABC.*?&/);
// ["example", "this&is&a&sample&string"]
share|improve this answer
    
Thanks! it worked! I am quite new to regex. – Varun Muralidharan Jan 17 '13 at 19:48
    
@VarunMuralidharan You're welcome :) – VisioN Jan 17 '13 at 19:49
    
what if I wanted till the second '&', then what will change in the regex code? – Varun Muralidharan Jan 17 '13 at 19:54
    
ok then it would be this "example&ABC56748393&this&is&a&sample&string".split(/ABC.*?&.*?&/) – Varun Muralidharan Jan 17 '13 at 19:57
    
Alternatively, with less repetition: /ABC(?:.*?&){2}/. The (?:) just wraps it in a non-capturing group, so it can be treated as a single entity. – Mattias Buelens Jan 17 '13 at 20:00

Just use non greedy match, by placing a ? after the * or +:

<string>.split(/<constant_word>.*?&/)
share|improve this answer

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