89

I'm trying to create a Regex test in JavaScript that will test a string to contain any of these characters:

!$%^&*()_+|~-=`{}[]:";'<>?,./

More Info If You're Interested :)

It's for a pretty cool password change application I'm working on. In case you're interested here's the rest of the code.

I have a table that lists password requirements and as end-users types the new password, it will test an array of Regexes and place a checkmark in the corresponding table row if it... checks out :) I just need to add this one in place of the 4th item in the validation array.

var validate = function(password){
    valid = true;

    var validation = [
        RegExp(/[a-z]/).test(password), RegExp(/[A-Z]/).test(password), RegExp(/\d/).test(password), 
        RegExp(/\W|_/).test(password), !RegExp(/\s/).test(password), !RegExp("12345678").test(password), 
        !RegExp($('#txtUsername').val()).test(password), !RegExp("cisco").test(password), 
        !RegExp(/([a-z]|[0-9])\1\1\1/).test(password), (password.length > 7)
    ]

    $.each(validation, function(i){
        if(this)
            $('.form table tr').eq(i+1).attr('class', 'check');
        else{
            $('.form table tr').eq(i+1).attr('class', '');
            valid = false
        }
    });

    return(valid);

}

Yes, there's also corresponding server-side validation!

  • 8
    It's quite funny that the answer to your question lies in the title with the exception of escaping special characters and enclosing forward slashes. – sciritai Dec 2 '11 at 16:46
  • 1
    Why not use .addClass("check") and .removeClass("check")? And seeing if (someBoolean == true) in code always makes me cringe. Just do if (someBoolean). Or, better yet, just do $(".form table tr").eq(i+1).toggleClass("check", !!this); valid = valid && !!this;. – gilly3 Dec 2 '11 at 16:46
  • +1 @gill3 thx for the code review- great feedback indeed. I've def used those short-hand methods in the past. – pixelbobby Dec 2 '11 at 17:59
  • @gilly3, it appears to work great in FF but !IE8. love this short-hand. I'm trying to figure out what IE8 is doing differently. – pixelbobby Dec 2 '11 at 18:14
160

The regular expression for this is really simple. Just use a character class. The hyphen is a special character in character classes, so it needs to be first:

/[-!$%^&*()_+|~=`{}\[\]:";'<>?,.\/]/

You also need to escape the other regular expression metacharacters.

Edit: The hyphen is special because it can be used to represent a range of characters. This same character class can be simplified with ranges to this:

/[$-/:-?{-~!"^_`\[\]]/

There are three ranges. '$' to '/', ':' to '?', and '{' to '~'. the last string of characters can't be represented more simply with a range: !"^_`[].

Use an ACSII table to find ranges for character classes.

| improve this answer | |
  • Why is not mentioned quantifiers \Q and \E for escaping the sequence of characters? – SerG May 27 '14 at 8:29
  • Before finding this solution I was going down the character class exclusion route: match everything BUT alpha, digits, white space, etc. – Pete Alvin Apr 29 '15 at 13:00
  • 1
    Is it common knowledge that hyphens have to come first? I've read dozens of SO answers and regex cheat sheets this is the first I've heard of it. Your answer saved me a lot of drama. Thanks! – CF_HoneyBadger Jun 29 '16 at 14:57
  • 2
    @SerG \Q and \E don't work in the JS RegExp engine :( /^\Q.\E$/.test('Q+E'); // true – Paul S. Sep 17 '16 at 21:04
  • 1
    @q4w56 backslash isn't in the set of characters specified in the original question, so not matching backslash is correct. :) – Jeff Hillman Jun 2 '17 at 23:32
3

The most simple and shortest way is to use this:

/[\W\S]/

It means: All characters that are not a digit or an English letter (\W) or a white-space character (\S).

It maybe is not as perfect as Jeff's solution, but it's much simpler and I don't think it differs in practicality.

| improve this answer | |
  • wouldn't you need a ^ to indicate not? – Concourse Jan 28 '19 at 16:57
  • @Webber No. They're in capital and this makes the statement negative. ^ is needed when we use \w and \s in small letters. – AmirZpr Jan 29 '19 at 10:44
  • 3
    Doesn't this interpret it so that either outside w or outside s, and since those two don't really intersect it just lets through all of the characters? (Thus not filtering anything.) – Zael Feb 19 '19 at 9:20
  • 2
    @Zael You're right, the regular expression as stated (/[\W\S]/) does let everything through. A more accurate representation of what I believe Amir was getting at would be [^\w\s]. In the former, the regular expression is saying "match anything that is not alphanumeric OR that is not whitespace", which as you mentioned let's everything through since alphanumeric characters are not whitespace and vice versa. The latter says "match anything that is not alphanumeric AND that is not whitespace". Of course, exceptions apply in that accented characters (like À) are matched by [^\w\s]. – Jesse Jan 22 at 7:22
0

Answer

/[^\w\s]/

Explanation

This creates a negated character class removing the word characters and space characters. All that is left is the special characters.

\w will select all "word" characters equivalent to [^a-zA-Z0-9_]
\s will select all "whitespace" characters equivalent to [ \t\n\r\f\v]

adding the ^ at the beginning of the class says to not select any of the following.

| improve this answer | |
  • MikeSchem, you just took me through a time machine. – pixelbobby Apr 24 at 2:26
  • yea, I noticed it. was old, but I felt the simplest answer wasn't posted. – MikeSchem Apr 27 at 16:44
-1
// The string must contain at least one special character, escaping reserved RegEx characters to avoid conflict
  const hasSpecial = password => {
    const specialReg = new RegExp(
      '^(?=.*[!@#$%^&*"\\[\\]\\{\\}<>/\\(\\)=\\\\\\-_´+`~\\:;,\\.€\\|])',
    );
    return specialReg.test(password);
  };
| improve this answer | |
  • Don't use the RegExp constructor when you can just use a regex literal. Much less escaping work (most of which are unnecessary anyway), and it's more efficient as well. – Bergi Jul 17 '19 at 21:56
  • Why use a complicated lookahead when you can just match the character directly? – Bergi Jul 17 '19 at 21:58
  • Can you give an example @Bergi? I don't understand what you are suggesting. – Arni Gudjonsson Sep 18 '19 at 17:09
-1

A simple way to achieve this is the negative set [^\w\s]. This essentially catches:

  • Anything that is not an alphanumeric character (letters and numbers)
  • Anything that is not a space, tab, or line break (collectively referred to as whitespace)

For some reason [\W\S] does not work the same way, it doesn't do any filtering. A comment by Zael on one of the answers provides something of an explanation.

| improve this answer | |
  • No, the underscore is missing and all characters out of the ascii range and most of the control characters in the ascii range would match this class. /[^\w\s]/.test('é') # true, /[^\w\s]/.test('_') # false. – Casimir et Hippolyte Oct 18 '19 at 11:00
-5

Replace all latters from any language in 'A', and if you wish for example all digits to 0:

return str.replace(/[^\s!-@[-`{-~]/g, "A").replace(/\d/g, "0");
| improve this answer | |
  • 19
    What question are you answering? – Toto Aug 28 '17 at 12:21

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