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.

I have made a Work with JQ. My Work is a string width a special character block begin and end of string. I want take the text in that special characters, i used regular expression for find in string, but how to make JQ find multi result when have two special character or more.

My html here;

<div id="container">
    <div id="textcontainer">
     Cuộc chiến pháp lý giữa [|cơ thử|nghiệm|] thị trường [|test2|đây là test lần 2|] chứng khoán [|Mỹ|day la nuoc my|] và ngân hàng đầu tư quyền lực nhất Phố Wall mới chỉ bắt đầu.
 </div>
</div>

and my JQ

$(document).ready(function() {

 var takedata = $("#textcontainer").text();
 var test = 'abcd adddb';
 var filterdata = takedata.match(/(\[.+\])/);

 alert(filterdata); 

//end write js 
});

my result is: [|cơ thử|nghiệm|] thị trường [|test2|đây là test lần 2|] chứng khoán [|Mỹ|day la nuoc my|] . but this is'nt the result i want :(. How to get [text] for times 1 and [demo] for times 2 ?. pls help me !. thankyou :)


hi everyone! i've just done my work after searching info on internet ^^. i make code like this:

var filterdata = takedata.match(/(\[.*?\])/g);
  • my result is : [|cơ thử|nghiệm|],[|test2|đây là test lần 2|] this is right!. but i don't realy understand this. Can you answer my why?
share|improve this question

3 Answers 3

up vote 80 down vote accepted

The non-greedy regex modifiers are like their greedy counter-parts but with a ? immediately following them:

*  - zero or more
*? - zero or more (non-greedy)
+  - one or more
+? - one or more (non-greedy)
?  - zero or one
?? - zero or one (non-greedy)
share|improve this answer
3  
might be useful to note that ? on its own means 'one or zero' (but is greedy!). E.g. 'bb'.replace(/b?/, 'a') //'ab' and 'bb'.replace(/c?/, 'a') //'abb' –  Hashbrown Oct 4 '13 at 4:46

You are right that greediness is an issue:

--A--Z--A--Z--
  ^^^^^^^^^^
     A.*Z

If you want to match both A--Z, you'd have to use A.*?Z (the ? makes the * "reluctant", or lazy).

There are sometimes better ways to do this, though, e.g.

A[^Z]*+Z

This uses negated character class and possessive quantifier, to reduce backtracking, and is likely to be more efficient.

In your case, the regex would be:

/(\[[^\]]++\])/

Unfortunately Javascript regex doesn't support possessive quantifier, so you'd just have to do with:

/(\[[^\]]+\])/

See also


Quick summary

*   Zero or more, greedy
*?  Zero or more, reluctant
*+  Zero or more, possessive

+   One or more, greedy
+?  One or more, reluctant
++  One or more, possessive

?   Zero or one, greedy
??  Zero or one, reluctant
?+  Zero or one, possessive

Note that the reluctant and possessive quantifiers are also applicable to the finite repetition {n,m} constructs.

Examples in Java:

System.out.println("aAoZbAoZc".replaceAll("A.*Z", "!"));  // prints "a!c"
System.out.println("aAoZbAoZc".replaceAll("A.*?Z", "!")); // prints "a!b!c"

System.out.println("xxxxxx".replaceAll("x{3,5}", "Y"));  // prints "Yx"
System.out.println("xxxxxx".replaceAll("x{3,5}?", "Y")); // prints "YY"
share|improve this answer
    
i copy your regex into my work and result is : invalid quantifier +\]) [Break on this error] var filterdata = takedata.match(/(\[[^\]]++\])/);\n (firebugs + Firefox) something wrong ? –  Rueta May 13 '10 at 4:08
    
@Rueta: apparently Javascript flavor doesn't support possessive. I've edited my answer to reflect this fact. You can just use one + instead of two. –  polygenelubricants May 13 '10 at 4:19

I believe it would be like this

takedata.match(/(\[.+\])/g);

the g at the end means global, so it doesn't stop at the first match.

share|improve this answer
    
yea, you are right in /g. i've just done my work with your answer /g ^^. But when i make regular /(\[.+\])/g my result is : [|cơ thử|nghiệm|] thị trường [|test2|đây là test lần 2|] chứng khoán [|Mỹ|day la nuoc my|] :( –  Rueta May 13 '10 at 4:00

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.