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I am still a beginner :)

I need to get a substring ignoring the last section inside [] (including the brackets []), i.e. ignore the [something inside] section in the end.

Note - There could be other single occurances of [ in the string. And they should appear in the result.

Example

Input of the form -

1 checked arranged [1678]

Desired output -

1 checked arranged

I tried with this

var item = "1 checked arranged [1678]";

var parsed = item.match(/([a-zA-Z0-9\s]+)([(\[d+\])]+)$/);
                          |<-section 1  ->|<-section 2->|

alert(parsed);

I tried to mean the following -

section 1 - multiple occurrences of words (containing literals and nos.) followed by spaces

section 2 - ignore the pattern [something] in the end.

But I am getting 1678],1678,] and I am not sure which way it is going.

Thanks

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7 Answers 7

OK here is the problem in your expression

([a-zA-Z0-9\s]+)([(\[d+\])]+)$

The Problem is only in the last part

([(\[d+\])]+)$
 ^        ^
 here are you creating a character class, 
 what you don't want because everything inside will be matched literally.

((\[d+\])+)$
 ^      ^^
here you create a capturing group and repeat this at least once ==> not needed

(\[d+\])$
   ^
  here you want to match digits but forgot to escape

That brings us to

([a-zA-Z0-9\s]+)(\[\d+\])$

See it here on Regexr, the complete string is matched, the section 1 in capturing group 1 and section 2 in group 2.

When you now replace the whole thing with the content of group 1 you are done.

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You could do this

var s = "1 checked arranged [1678]";

var a = s.indexOf('[');

var b = s.substring(0,a);

alert(b);

http://jsfiddle.net/jasongennaro/ZQe6Y/1/

This s.indexOf('['); checks for where the first [ appears in the string.

This s.substring(0,a); chops the string, from the beginning to the first [.

Of course, this assumes the string is always in a similar format

share|improve this answer
    
But there could be other single occurances of [ in the string. sorry I missed that in the question –  Sandeepan Nath Aug 3 '11 at 13:18
    
No problem @Sandeepan Nath. If the test is always before the first occurance of [ then this will still work. –  Jason Gennaro Aug 3 '11 at 13:26
var item = '1 check arranged [1678]',
    matches = item.match(/(.*)(?=\[\d+\])/));

alert(matches[1]);

The regular expression I used makes use of a positive lookahead to exclude the undesired portion of the string. The bracketed number must be a part of the string for the match to succeed, but it will not be returned in the results.

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Here you can find how to delete stuff inside square brackets. This will leave you with the rest. :) Regex: delete contents of square brackets

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try this if you only want to get rid of that [] in the end

var parsed = item.replace(/\s*\[[^\]]*\]$/,"")
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var item = "1 checked arranged [1678]";
var parsed = item.replace(/\s\[.*/,"");
alert(parsed);

That work as desired?

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Use escaped brackets and non-capturing parentheses:

var item = "1 checked arranged [1678]";
var parsed = item.match(/([\w\s]+)(?:\s+\[\d+\])$/);
alert(parsed[1]); //"1 checked arranged"

Explanation of regex:

([\w\s]+)    //Match alphanumeric characters and spaces
(?:          //Start of non-capturing parentheses
\s*          //Match leading whitespace if present, and remove it
\[           //Bracket literal
\d+          //One or more digits
\]           //Bracket literal
)            //End of non-capturing parentheses
$            //End of string
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