5

I want to accept words and some special characters, so if my regex does not fully match, let's say I display an error,

var re = /^[[:alnum:]\-_.&\s]+$/;
var string = 'this contains invalid chars like #@';
var valid = string.test(re);

but now I want to "filter" a phrase removing all characters not matching the regex ?

usualy one use replace, but how to list all characters not matching the regex ?

var validString = string.filter(re); // something similar to this

how do I do this ?

regards


Wiktor Stribiżew solution works fine :

regex=/[^a-zA-Z\-_.&\s]+/g;
let s='some bloody-test @rfdsfds';
s = s.replace(/[^\w\s.&-]+/g, '');
console.log(s);

Rajesh solution :

regex=/^[a-zA-Z\-_.&\s]+$/;
let s='some -test @rfdsfds';
s=s.split(' ').filter(x=> regex.test(x));
console.log(s);

9
  • look at string is a reserved word Commented Oct 16, 2017 at 13:23
  • JS regex engine does not support POSIX character classes like [:alnum:] (you may use [A-Za-z0-9] instead, but only to match ASCII letters and digits). you may try running s.match(/[^\w\s.&-]/g) to get the chars that do not match letters, digits, _, ., &, whitespace and -. Commented Oct 16, 2017 at 13:24
  • 1
    string.split(' ').filter(x => !regex.test(x))
    – Rajesh
    Commented Oct 16, 2017 at 13:25
  • but how to remove them afterwards ?
    – Phil
    Commented Oct 16, 2017 at 13:27
  • @Rajesh sadfully it does not filter anything, I modified my question
    – Phil
    Commented Oct 16, 2017 at 13:33

2 Answers 2

1

JS regex engine does not support POSIX character classes like [:alnum:]. You may use [A-Za-z0-9] instead, but only to match ASCII letters and digits.

Your current regex matches the whole string that contains allowed chars, and it cannot be used to return the chars that are not matched with [^a-zA-Z0-9_.&\s-].

You may remove the unwanted chars with

var s = 'this contains invalid chars like #@';
var res = s.replace(/[^\w\s.&-]+/g, '');
var notallowedchars = s.match(/[^\w\s.&-]+/g);
console.log(res);
console.log(notallowedchars);

The /[^\w\s.&-]+/g pattern matches multiple occurrences (due to /g) of any one or more (due to +) chars other than word chars (digits, letters, _, matched with \w), whitespace (\s), ., & and -.

4
  • Why you need []+ if it's global replace?
    – Justinas
    Commented Oct 16, 2017 at 13:31
  • @Justinas To remove matched streaks of chars in one go. It means fewer replacements made by the regex engine internally. Commented Oct 16, 2017 at 13:32
  • And how much is that faster then simple replace (if faster at all)?
    – Justinas
    Commented Oct 16, 2017 at 13:33
  • @Justinas Check this fiddle. It is faster with the + quantifier. Commented Oct 16, 2017 at 13:41
0

To match all characters that is not alphanumeric, or one of -_.& move ^ inside group []

var str = 'asd.=!_#$%^&*()564';

console.log(
    str.match(/[^a-z0-9\-_.&\s]/gi),
    str.replace(/[^a-z0-9\-_.&\s]/gi, '')
);

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