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I have a jquery code that trims the leading and trailing character (passed from the calling program). I am using a variable in RegExp to replace the character with blank. How can I make the RegExp work for any character passed from the calling program? Here is the simplified code:

var time = ":1h:45m:34s:";
var chr= ':'; //can have . or , or any other character
var regex = new RegExp("(^" + chr + ")|(" + chr+ "$)" , "g"); //works for colon but not for dot.
//var regex = new RegExp("(^/" + chr + ")|(/" + chr+ "$)" , "g"); //for dot I added / but not for colon.
var formattedtime = time.replace(regex, "");

Expected Outputs:

1. time = ":1h:45m:34s:"; 
chr = ":";
Output: 1h:45m:34s
2. time = "1h:45m:34s"; 
chr = ":";
Output: 1h:45m:34s
3. time = ".45m.34s"; 
chr = ".";
Output: 45m.34s
4. time = "1h.45m.34s."; 
chr = ".";
Output: 1h.45m.34s

How can I make the regexp work for any character?

share|improve this question
    
whats your expected output? – Siva Charan Mar 8 '12 at 15:29
    
added it to OP. – Sri Reddy Mar 8 '12 at 15:33
up vote 2 down vote accepted

You need to escape meta characters (like . and several others) to get literals. You do that by adding a backslash before them.

JS doesn't have any built in function for that, so you could use this:

function quotemeta(str){
    return str.replace(/[.+*?|\\^$(){}\[\]-]/g, '\\$&');
}

Used like so:

new RegExp("^(?:" + quotemeta(chr) + ")+|(?:" + quotemeta(chr) + ")+$" , "g");
share|improve this answer
    
I did that as in the commented line in my code snippet. var regex = new RegExp("(^/" + chr + ")|(/" + chr+ "$)" , "g"); This works great for dot but not for colon. You mean I have to check the character and escape for each??? – Sri Reddy Mar 8 '12 at 15:33
    
/ is not a backslash, \ is. But you can't use it on every character, because they have special meaning, eg \s means any white space. – Qtax Mar 8 '12 at 15:37
    
Ah, this utility method is great. It can handle many characters. More generic approach. How can I understand the RegExp you provided? – Sri Reddy Mar 8 '12 at 15:51
1  
It just matches any number of those characters at the beginning or end of string. I used a non-capturing group (?:...) in case it's not just one character, but a string. If you want to remove many different characters at once you can use a character class instead of the group, like [abc] will match one of a, b or c. – Qtax Mar 8 '12 at 15:57
var chr= ':/';
...    
var regex = new RegExp("(^[" + chr + "])|([" + chr+ "]$)" , "g");
share|improve this answer
    
This is a cool solution. It works for me. I am not that good with RegExp. Do you mind explaining this? – Sri Reddy Mar 8 '12 at 15:38
    
-1, it works with . but would break for ]. – Qtax Mar 8 '12 at 15:38
    
Use [] to define a set of characters, eg [:/.] matches on : / or . – pät Mar 8 '12 at 15:42
    
I think I misunderstood your question, as I thought you wanted to remove a set of characters by using only one expression. – pät Mar 8 '12 at 15:50
    
Pat, sorry if I made it sound silly.. Qtax's solution seems to be working for various characters and I wanted a generic solution to handle different characters. Thanks for your time. – Sri Reddy Mar 8 '12 at 15:53

Regex should this way:-

For Colon, /^(\:)|(\:)$/gim

For Dot, /^(\.)|(\.)$/gim

OR

/^(\:|\w|\.)|(\:|\w|\.)$/gim

LIVE DEMO

share|improve this answer
    
-1, would not work for letters, eg /^(\d)|(\d)$/gim – Qtax Mar 8 '12 at 15:40

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