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I want to remove any occurances of the string pattern of a number enclosed by square brackets, e.g. [1], [25], [46], [345] (I think up to 3 characters within the brackets should be fine). I want to replace them with an empty string, "", i.e. remove them.

I know this can be done with regular expressions but I'm quite new to this. Here's what I have which doesn't do anything:

var test = "this is a test sentence with a reference[12]";
removeCrap(test);
alert(test);

function removeCrap(string) {

var pattern = new RegExp("[...]"); 
string.replace(pattern, "");

}

Could anyone help me out with this? Hope the question is clear. Thanks.

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  1. [] has a special meaning in regular expressions, it creates a character class. If you want to match these characters literally, you have to escape them.

  2. replace [docs] only replaces the first occurrence of a string/expression, unless you set the global flag/modifier.

  3. replace returns the new string, it does not change the string in-place.

Having this in mind, this should do it:

var test = "this is a test sentence with a reference[12]";
test = test.replace(/\[\d+\]/g, '');
alert(test);

Regular expression explained:

In JavaScript, /.../ is a regex literal. The g is the global flag.

  • \[ matches [ literally
  • \d+ matches one or more digits
  • \] matches ] literally

To learn more about regular expression, have a look at the MDN documentation and at http://www.regular-expressions.info/.

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  • @maxcollins: My pleasure :) Welcome to SO and don't forget to accept the answer that helped you the most (by clicking the tick outline next to it). – Felix Kling Jul 2 '11 at 19:19
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This will do it:

test = test.replace(/\[\d+\]/g, '');
  • \[ because [ on its own introduces a character range
  • \d+ - any number of digits
  • \] as above
  • /g - do it for every occurrence

NB: you have to reassign the result (either to a new variable, or back to itself) because String.replace doesn't change the original string.

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