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Basically my question is this, why is:

String word = "unauthenticated";
word.matches("[a-z]");

returning false? (Developed in java1.6)

Basically I want to see if a string passed to me has alpha chars in it.

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3 Answers 3

up vote 17 down vote accepted

The String.matches() function matches your regular expression against the whole string (as if your regex had ^ at the start and $ at the end). If you want to search for a regular expression somewhere within a string, use Matcher.find().

The correct method depends on what you want to do:

  1. Check to see whether your input string consists entirely of alphabetic characters (String.matches() with [a-z]+)
  2. Check to see whether your input string contains any alphabetic character (and perhaps some others) (Matcher.find() with [a-z])
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Your code is checking to see if the word matches one character. What you want to check is if the word matches any number of alphabetic characters like the following:

word.matches("[a-z]+");
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I never saw the + symbol in any examples before. The java didn't like me using * for some reason, but + is working. Thanks. –  sMaN Dec 10 '10 at 2:28
    
@Shaun, the + means 1 or more of preceding element. –  jjnguy Dec 10 '10 at 2:29
    
@Shaun83 - Java / java regexes will have no problems with a * instead of + either. Maybe you ARE losing it ... :-) –  Stephen C Dec 10 '10 at 3:38
    
Exception in thread "main" java.util.regex.PatternSyntaxException: Dangling meta character '*' near index 0. I must've had it in the wrong place though cause its worked for other regex's. –  sMaN Dec 14 '10 at 23:14
1  
To expand on @AlanMoore's comment, * doesn't match any character, it matches the preceding character zero ore more times. If it is at the start of the regex, then there is no preceding character, hence it is in the wrong place. To match the beginning you're after something like '.*', where dot matches any (printable?) character. –  MattJenko Jun 24 at 4:33

with [a-z] you math for ONE character.

What you’re probably looking for is [a-z]*

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