Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm constructing a regex which will accept at least 1 alpha numerical character and any number of spaces.

Right now I've got...[A-Za-z0-9]+[ \t\r\n]* which I understand to be at least 1 alphanumeric OR at least 1 space. How would I fix this?

EDIT: To answer the comments below I want it to accept strings which contain ATLEAST 1 alphanumeric AND any number of (including no) spaces. Right now it will accept JUST a whitespace.

EDIT2: To clarify, I don't want the any number of whitespace (including 0) to be accepted unless there is at least 1 alphanumeric character

share|improve this question
1  
No, your expression is exactly right: it will accept one or more alphanumeric character, followed by some (or no) spaces. –  Konrad Rudolph Dec 2 '10 at 21:12
    
I read the regex you wrote (in a platform neutral way) as : One or more alpha numerical character followed by zero or more white spaces. That seems to match the description you asked for? –  Amir Afghani Dec 2 '10 at 21:13
    
You got it right. It would match at least one alphanumeric followed by zero or more whitespace characters. –  detunized Dec 2 '10 at 21:14
    
@Ulkmun: In answer to your edits: no, you are wrong. Right now, it will not accept just whitespace. It will accept exactly what you want it to. If it behaves unexpected, then the error is somewhere else. –  Konrad Rudolph Dec 2 '10 at 21:35
    
That’s one of those 1960s-style data-processing things, what being straight ASCII. It’s kind of like overnight delivery in a nanosecond world. Java has always supported Unicode, at least in its marketing glossies, but there is a disturbingly pervasive ASCII-only mentality throughout its user community. That is something that truly perplexes me. It’s time to shed the shackles of the 1960s and step into the Brave New Millennium of Unicode. Maybe by 2250 people will catch up. –  tchrist Dec 2 '10 at 21:59

4 Answers 4

up vote 2 down vote accepted
\s*\p{Alnum}[\p{Alnum}\s]*

Your regex, [A-Za-z0-9]+[ \t\r\n]*, requires the string to start with a letter or digit (or, more accurately, it doesn't start matching until it sees one). Adding \s* allows the match to start with whitespace, but you still won't match any alphanumerics after the first whitespace character that follows an alphanumeric (for example, it won't match the xyz in abc xyz. Changing the trailing \s* to [\p{Alnum}\s]* fixes that problem.

On a side note, \p{Alnum} is exactly equivalent to [A-Za-z0-9] in Java, which is not the case in all regex flavors. I used \p{Alnum}, not just because it's shorter, but because it gives more protection from typos like [A-z] (which is syntactically valid, but almost certainly not what the author really meant).

EDIT: Performance should be considered, too. I originally included a + after the first \p{Alnum}, but I realized that wasn't a good idea. If this were part of a longer regex, and the regex didn't match right away, it could end up wasting a lot of time trying to match the same groups of characters with \p{Alnum}+ or [\p{Alnum}\s]*. The leading \s* is okay, though, because \s doesn't match any of the characters that \p{Alnum} matches.

share|improve this answer
    
Well, with some whitespace, but you know the story. –  tchrist Dec 2 '10 at 22:19

Any one or more word char zero or more whitespace

\w+\s*
share|improve this answer
    
It most certainly does not! [\pL\pM\p{Nd}\p{Nl}\p{Pc}[\p{InEnclosedAlphanumerics}&&\p{So}]]+[\u000A\u000B\u‌​000C\u000D\u0020\u0085\u00A0\u1680\u180E\u2000\u2001\u2002\u2003\u2004\u2005\u200‌​6\u2007\u2008\u2009\u200A\u2028\u2029\u202F\u205F\u3000]* conforms to the description you have given. –  tchrist Dec 2 '10 at 22:16
    
What on earth is that?! –  aioobe Dec 2 '10 at 22:22
    
@aioobe: That, sir, is simply the correct expression in Java’s Unicode regex language that lines up @Freiheit’s description, as his description did not match his pattern. You can read more about this scandalous state of affairs here in this answer. –  tchrist Dec 2 '10 at 22:51

Hey try this ([^\s]+\s*) [^\s] means catch everything that is not white space, while \s* means that an white space is optional (if you really want at least one white space put + instead of ) Edit: sory mine catch everithing not only alphanumeric (put ([a-zA-Z0-9]+\s) for alphanumeric)

share|improve this answer
    
You can use \S for matching non whitespace chars. –  jjnguy Dec 2 '10 at 21:27
    
No that is incorrect. In a Java regex, [^\s] matches numerous whitespace codepoints, including U+85 and exceedingly common U+A0. Similarly, Java’s \s fails to match the 2 whitespace codepoints just mentioned as well as 17 other whitespace codepoints. Not really a workable solution in a language whose native character set is touted as modern. Its support for that native character set is shockingly meagre, even broken in places. –  tchrist Dec 2 '10 at 22:13

This should do the trick:

\s*\p{Alnum}+\s*
  • \p{Alnum} is an alphanumeric character: [\p{Alpha}\p{Digit}]
  • * says "zero or more times"
  • + says "at least one" (not "or" as you seem to believe, or is written |)
  • | means "or"
  • \s is a whitespace character: [ \t\n\x0B\f\r]

EDIT: To answer the comments below I want it to accept strings which contain AT LEAST 1 alphanumeric AND any number of (including no) spaces.

The pattern I suggested requires at least one alpha numeric character.

EDIT2: To clarify, I don't want the any number of whitespace (including 0) to be accepted unless there is at least 1 alphanumeric character

The pattern I suggested will not accept only white space characters only.

share|improve this answer
    
No, \p{Alnum} is not “any alphanumeric character” in Java. It only looks like a Unicode property, but is in fact merely a POSIX character-class,operative in the ASCII-only C locale. A reasonably concise substitute for the 1960s-style ASCII is to use [\pL\pN], although that may not catch all the things you really ought to catch, such as diacritics and connector punctuation. Also, that impoverished whitespace description is like, so antemillennial! There is a correct version that breaks you out of the 1960s, but unfortunately the margin is too small here to write the correct answer.☺ –  tchrist Dec 2 '10 at 22:07
    
Hehe, well that's a verbatim copy from the Java API documentation, you go file a documentation bug-report ;-) Besides, it says that it matches an alphanumeric character, not all alphanumeric characters, right? ;) –  aioobe Dec 2 '10 at 22:20
    
Notwithstanding that the Java Pattern API documentation varies from sketchy to misleading to downright wrong, such casuistry is unlikely to persuade a jury of your peers. And the bug is not merely in their documentation. It is the library itself, which really cannot be used as is for anything except literal enumerated codepoints or Unicode properties. The rest is pure bollocks. It requires serious surgery — if you can de-capon it. Read ’em and weep! –  tchrist Dec 2 '10 at 22:53

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.