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I want to allow 0 or more white spaces in my string and one or more A-Z or a-z or 0-9 in my string.

Regex allowing a space character in Java

suggests [0-9A-Za-z ]+.

I doubt that, this regex matches patterns having zero or more white spaces.

What to do to allow 0 or more whitespaces anywhere in the string and one or more characters anywhere in the string.

Will this work? ([0-9A-Za-z]+)([ ]*)

share|improve this question
    
By any convenient chance, do you know the first letter is not a whitespace? – Duncan Apr 15 '14 at 18:24
    
why do you have doubts? It will match "blanks" - if you want accept all whitespaces, use [0-9A-Za-z\s]+ – dognose Apr 15 '14 at 18:24
    
([0-9A-Za-z]+)([ ])* will require that it cannot start with a space. – Cruncher Apr 15 '14 at 18:26
    
@dognose : Edited. I meant zero or more spaces. – vvid Apr 15 '14 at 19:10
    
^(.*\p{Blank}?\p{Alnum}+.*\p{Blank}?)$ this will do it. – Pedro Lobito Apr 15 '14 at 19:56
up vote 7 down vote accepted

I believe you can do something like this:

([ ]*+[0-9A-Za-z]++[ ]*+)+

This is 0 or more spaces, followed by at least 1 alphanum char, followed by 0 or more spaces

^^ that whole thing at least once.

Using Pshemo's idea of possessive quantifiers to speed up the regex.

share|improve this answer
2  
+1 While not as fancy as the look-ahead options, this is certainly easier to understand! – Duncan Apr 15 '14 at 18:32
    
Does this check for spaces between characters? Eg:"Good morning J"? – vvid Apr 15 '14 at 18:36
    
@wid absolutely. Good will be matched by the [0-9A-Za-z]+, then since it doesn't work, it will go to the beginning of the group again and match the space with [ ]*, and repeat. – Justin Apr 15 '14 at 18:38
2  
@Cruncher Yep. Also ([foo]+)+ smells like catastrophic backtracking. – Pshemo Apr 15 '14 at 18:42
1  
If you want to speed up this regex you can use possessive quantifiers ([ ]*+[0-9A-Za-z]++[ ]*+)+. – Pshemo Apr 15 '14 at 18:47

You can try also this :

  ^[0-9A-Za-z ]*[0-9A-Za-z]+[ ]*$
share|improve this answer
1  
Smart! I seriously doubted this before trying it. – aliteralmind Apr 15 '14 at 18:44

Use lookahead:

^(?=.*\s*)(?=.*[a-zA-Z0-9]+)[a-zA-Z0-9 ]+$
share|improve this answer
2  
This answer might benefit from some additional explanation if you have time. – Duncan Apr 15 '14 at 18:33
    
(?=.*\s*) seems redundant. – Pshemo Apr 15 '14 at 18:37

Before looking at the other answers, I came up with doing it in two regexes:

boolean ok = (myString.matches("^[A-Za-z0-9 ]+$")  &&  !myString.matches("^ *$"));

This matches one-or-more letters/digits and zero-or-more spaces, but not only spaces (or nothing).

It could be made efficient by pre-creating a single matcher object for each regex:

   import  java.util.regex.Matcher;
   import  java.util.regex.Pattern;
public class OnePlusLetterDigitZeroPlusSpace  {
   //"": Unused search string, to reuse the matcher object
   private static final Matcher mtchr1PlusLetterDigitSpc = Pattern.compile("^[a-zA-z0-9 ]+$").matcher("");
   private static final Matcher mtchr0PlusSpc = Pattern.compile("^ *$").matcher("");
   public static final void main(String[] ignored)  {
      test("");
      test(" ");
      test("a");
      test("hello ");
      test(" hello ");
      test("hello there");
   }
   private static final void test(String to_search)  {
      System.out.print("\"" + to_search + "\": ");
      if(mtchr1PlusLetterDigitSpc.reset(to_search).matches()  &&  !mtchr0PlusSpc.reset(to_search).matches())  {
         System.out.println("good");
      }  else  {
         System.out.println("BAD");
      }
   }
}

Output:

[C:\java_code\]java OnePlusLetterDigitZeroPlusSpace
"": BAD
" ": BAD
"a": good
"hello ": good
" hello ": good
"hello there": good

Interesting regex question of the day.

share|improve this answer

You are asking that the string (s) satisfies this condition (note: let c∈s mean c∈{x|x is a character in s}. Also, [] represent regex character classes):

(∀c∈s (c∈[0-9A-Za-z ])) ∧ (∃c∈s ∋ c∈[0-9A-Za-z])

Consider the negation:

¬((∀c∈s c∈[0-9A-Za-z ]) ∧ (∃c∈s ∋ c∈[0-9A-Za-z]))
⇔
(∃c∈s ∋ c∉[0-9A-Za-z ]) ∨ (∀c∈s c∉[0-9A-Za-z])
⇔
(∃c∈s ∋ c∈[^0-9A-Za-z ]) ∨ (∀c∈s c∈[^0-9A-Za-z])

So now we want to construct a regex that either contains a non-alphanumeric and non-space character or consists only of non-alphanumeric characters.

The first is easy: [^0-9A-Za-z ].
The second is like unto it: ^[^0-9A-Za-z]*$

Combine them together to get: [^0-9A-Za-z ]|^[^0-9A-Za-z]*$

Now we need to negate this regex. Obviously, we could just do (?![^0-9A-Za-z ]|^[^0-9A-Za-z]*$). Or we could manually negate the regex:

[^0-9A-Za-z ] becomes ^[0-9A-Za-z ]*$
^[^0-9A-Za-z]*$ becomes [0-9A-Za-z]. (note: we could easily have arrived here from the beginning)

But now we need to combine them with AND, not OR:

Since [0-9A-Za-z] is a subset of [0-9A-Za-z ], we can simply do this:

^[0-9A-Za-z ]*[0-9A-Za-z][0-9A-Za-z ]*$

Note that we can simplify it down to:

^[0-9A-Za-z ]*[0-9A-Za-z][ ]*$

This just requires that the character that matches [0-9A-Za-z] is the last character that could do so. We could also do

^[ ]*[0-9A-Za-z][0-9A-Za-z ]*$

Which would require that the character that matches [0-9A-Za-z] is the first character that could do so.

So now we're done. We can either use one of those or (?![^0-9A-Za-z ]|^[^0-9A-Za-z]*$).

Note: String#match acts as if the regex is ^ + regex + $ (where + is concatenation). This can throw a few things off.

share|improve this answer
try {
    if (subjectString.matches("(?i)^(?=.*\\s*)(?!.*_)(?=.*[\\w]+)[\\w ]+$")) {
        // String matched entirely
    } else {
        // Match attempt failed
    } 
} catch (PatternSyntaxException ex) {
    // Syntax error in the regular expression
}

Or Simply:

^(.*\p{Blank}?\p{Alnum}+.*\p{Blank}?)$

Example

share|improve this answer
1  
I've never seen a try/catch for a regular expression syntax failure. Should that be necessary..? The only case I can think of is a memory-leak/timeout caused by catastrophic backtracing..but I don't think that would through a PatternSyntaxException. – Sam Apr 15 '14 at 19:35
1  
@Sam Just in case the regex isn't well formated. – Pedro Lobito Apr 15 '14 at 19:45
    
Shouldn't you be testing the format before using in production code? – Sam Apr 15 '14 at 19:46
    
@Sam I normally do, but this way I can catch it faster if I don't. – Pedro Lobito Apr 15 '14 at 19:52
1  
Fair enough, continue on. – Sam Apr 15 '14 at 20:00

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