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How can i replace all Parenthesis in a string using javascript

or replace all special characters in string.

i tried this mystring= mystring.replace(/"/g, "").replace(/'/g, "").replace("(", "").replace(")", "");

this works for all double and single quotes but for parenthesis this only replaces first parenthesis in the string

how can i make it work to replace all parenthesis in the string

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This isnt jQuery, its just standard javascript –  rickyduck Feb 2 '12 at 15:56
    
oops! hope you understand the requirement, i need to get this done either by jquery or standard javascript. would you be able to help me? –  HaBo Feb 2 '12 at 15:57

8 Answers 8

up vote 7 down vote accepted

Try the following:

mystring= mystring.replace(/"/g, "").replace(/'/g, "").replace(/\(|\)/g, "");

A little bit of REGEX to grab those pesky parentheses.

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You should use something more like this:

mystring = mystring.replace(/["'()]/g,"");

The reason it wasn't working for the others is because you forgot the "global" argument (g)

note that [...] is a character class. anything between those brackets is replaced.

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Do you not need to escape the parentheses? –  Matt Fellows Feb 2 '12 at 15:59
1  
@MattFellows not while it's in a character class. (I tend to put special characters in character classes just so I don't have to escape them... makes it more readable for me at least :P) –  Joseph Marikle Feb 2 '12 at 16:00
1  
@MattFellows I will add however that the exceptions to this are [, ], and `\` which do need escaped. –  Joseph Marikle Feb 2 '12 at 16:02
    
@JosephMarikle I learn something new every day, thanks! I had no clue you don't have to escape them. –  nana Feb 2 '12 at 16:06

You should be able to do this in a single replace statement.

mystring = mystring.replace(/["'\(\)]/g, "");

If you're trying to replace all special characters you might want to use a pattern like this.

mystring = mystring.replace(/\W/g, "");

Which will replace any non-word character.

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You can also use a regular experession if you're looking for parenthesis, you just need to escape them.

mystring = mystring.replace(/\(|\)/g, '');

This will remove all ( and ) in the entire string.

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Just one replace will do:

"\"a(b)c'd{e}f[g]".replace(/[\(\)\[\]{}'"]/g,"")
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That should work :

mystring= mystring.replace(/"/g, "").replace(/'/g, "").replace(/\(/g, "").replace(/\)/g, "");
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That's because to replace multiple occurrences you must use a regex as the search string where you are using a string literal. As you have found searching by strings will only replace the first occurrence.

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The string based replace method will not replace globally. As such you probably want to use the regex based replacing method it should be noted:

You need to escape '(' and ')' as they are used for group matching:

mystring= mystring.replace(/"/g, "").replace(/'/g, "").replace(/\(/g, "").replace(/\)/g, "");

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But there's no concept of "group" for the non-regex version of replace that the OP is using. –  Chris Farmer Feb 2 '12 at 16:00
    
That is true - but to get global replacing you need to use a regex I believe - hence why I've sugested a regex, and then my statement is true. –  Matt Fellows Feb 2 '12 at 16:02
    
It's true, but it's just a bit misleading IMO since the grouping issue was not the cause of the OP's original problem. I just think it's worth a specific mention that you're converting his string-based replaces to regex-based replaces. –  Chris Farmer Feb 2 '12 at 16:11
    
Duly noted updating to make it explicit –  Matt Fellows Feb 2 '12 at 16:29

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