12

I need to write a regular expression for form validation that allows spaces within a string, but doesn't allow only white space.

For example - 'Chicago Heights, IL' would be valid, but if a user just hit the space bar any number of times and hit enter the form would not validate. Preceding the validation, I've tried running an if (foo != null) then run the regex, but hitting the space bar still registers characters, so that wasn't working. Here is what I'm using right now which allows the spaces:

^[-a-zA-Z0-9_:,.' ']{1,100}$
  • Which language? Java/C#? – kennytm Apr 8 '11 at 19:34
16

I'm not sure you need a RegEx here. Why not just call your language's Trim() method and then ensure the resulting string is non-empty?

  • Won't this trim out any white space...I still need to allow for white space between words - ex. Chicago, IL (needs the space between the comma and capital I). – user699242 Apr 11 '11 at 14:12
  • It depends on the language of course, but most Trim() methods only eliminate white-space on either end of the string. Also, you don't have to use the trimmed string if you don't want to. It's just that Trim()-ing a string that is all white-space will return the empty string, which is easy to check for. – dlev Apr 11 '11 at 14:13
  • Oh, great!! I'll give this a try. Thank you. This is just plain JavaScript, by the way. – user699242 Apr 11 '11 at 14:18
  • Ended up using the jQuery trim function and it worked great!! Thanks so much for all the suggestions and help!! – user699242 Apr 11 '11 at 14:44
32

It's very simple: .*\S.*

This requires one non-space character, at any place. The regular expression syntax is for Perl 5 compatible regular expressions, if you have another language, the syntax may differ a bit.

  • Just noticed that. Have deleted, and offer my apologies. – dlev Apr 8 '11 at 19:44
  • This doesn't address the 100 character maximum, though. Your .* is also broader than his character class. – Justin Morgan Apr 8 '11 at 20:13
  • I didn't read the 100 as a requirement, only as what the original poster tried so far. The limit can be expressed as a regular expression, but since regular expressions cannot count characters, this would be a nuisance to write. It's much simpler to completely ignore regular expressions in this case and to write s = s.trim(); if (s.length() >= 1 && s.length() <= 100) { ... } – Roland Illig Apr 9 '11 at 23:29
  • Won't this trim function also delete white space between words? – user699242 Apr 11 '11 at 14:05
  • That of course depends on the programming language you use. The ones I often use (Java, Python, Perl) only trim at the beginning and at the end. – Roland Illig Apr 11 '11 at 19:00
6

The following will answer your question as written, but see my additional note afterward:

^(?!\s*$)[-a-zA-Z0-9_:,.' ']{1,100}$

Explanation: The (?!\s*$) is a negative lookahead. It means: "The following characters cannot match the subpattern \s*$." When you take the subpattern into account, it means: "The following characters can neither be an empty string, nor a string of whitespace all the way to the end. Therefore, there must be at least one non-whitespace character after this point in the string." Once you have that rule out of the way, you're free to allow spaces in your character class.

Extra note: I don't think your ' ' is doing what you intend. It looks like you were trying to represent a space character, but regex interprets ' as a literal apostrophe. Inside a character class, ' ' would mean "match any character that is either ', a space character, or '" (notice that the second ' character is redundant). I suspect what you want is more like this:

^(?!\s*$)[-a-zA-Z0-9_:,.\s]{1,100}$
  • This seems like what I was looking for, but for some reason the blank whitespace is still passing the regex in my script. Any ideas why that might be? – user699242 Apr 11 '11 at 14:04
  • @user699242 - Hmm. It seems to work correctly here: rubular.com/r/V8nlkU7E5R and with some letters thrown in: rubular.com/r/8qjj4Z2PWs. What language of regex are you using? – Justin Morgan Apr 11 '11 at 15:44
  • 1
    This is the most correct answer, I feel. The negative lookup does exactly what was required. – Ben Hughes Apr 20 '16 at 1:39
5

You could use simple:

^(?=.*\S).+$

if your regex engine supports positive lookaheads. This expression requires at least one non-space character.

See it on rubular.

0

If we wanted to apply validations only with allowed character set then I tried with USERNAME_REGEX = /^(?:\s*[.\-_]*[a-zA-Z0-9]{1,}[.\-_]*\s*)$/;

  • A string can contain any number of spaces at the beginning or ending or in between but will contain at least one alphanumeric character.
  • Optional ., _ , - characters are also allowed but string must have one alphanumeric character.
-1

Try this regular expression:

^[^\s]+(\s.*)?$

It means one or more characters that are not space, then, optionally, a space followed by anything.

  • This expression does not allow spaces. – dlev Apr 8 '11 at 19:40
  • That would allow only non-spaces. – David Thornley Apr 8 '11 at 19:40
  • You're right... I'll change it – True Soft Apr 8 '11 at 19:42
  • This doesn't allow spaces at the beginning. The requirement was only that the string cannot be all spaces. – Justin Morgan Apr 11 '11 at 15:46
-1

Just use \s* to avoid one or more blank spaces in the regular expression between two words.

For example, "Mozilla/ 4.75" and "Mozilla/4.75" both can be matched by the following regular expression:

[A-Z][a-z]*/\s*[0-9]\.[0-9]{1,2}

Adding \s* matches on zero, one or more blank spaces between two words.

protected by Community Oct 13 '17 at 7:29

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