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am using regex expression to check if a string contains white space. my regex is : ^\\s+$

for example if my string is my name then regex matches should return true. but it is returning true only if my string contains only spaces no other character.

How to check if a string contains a whitespace or tab or carriage return characters in between/start/end of some string.

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It will be much easier to understand exactly what you want if you provide examples of what should and shouldn't match. –  Anthony Grist Feb 18 '12 at 13:03
    
Your regex better not have a double backslash. –  tchrist Feb 18 '12 at 13:05
    
as i have already mentioned in post, if string is "my name" i dont want this, it should be only myname. a string without any whitespace chars. –  Romi Feb 18 '12 at 13:08
    
The double backslash is needed in this place, because he uses the \s-character class and not a "escaped" s (which doesn't even exist I think). –  AlexS Feb 18 '12 at 13:18
    
@AlexS No, that’s not right. A pattern never has double backslashes. That’s just an artifact of the compiler. The pattern has to not have them. –  tchrist Feb 18 '12 at 13:22
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3 Answers

^(.*\s+.*)+$ seems to work for me. Accepts anything as long as there is at least one space in the string. This will match the entire string.

If you only want to check for the presence of a space, you can just use \s without any begin or end markers in the string. The difference is that this will only match the individual spaces.

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That's superfluous. Simply \s does that. You are basically adding a check for beginning and ending of string, but all strings have beginnings and ends. –  tripleee Feb 18 '12 at 13:38
    
@tripleee I'm assuming the guy wants the entire string matched, i.e. that using it with my name will match the entire string. Using a lone \s will match if there's a space in the string, but it will only match that character. I interpreted the question as "Match any string as long as there at least one whitespace character inside it". –  Dervall Feb 18 '12 at 13:47
    
There are no capturing parens in the question. Maybe you want to clarify this aspect of your answer. –  tripleee Feb 18 '12 at 13:55
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You're regex is not correct.

  1. That's a string representing a regular expresion. (as tchrist pointed out correctly)
  2. The corresponding pattern, that you get using Pattern.compile() matches only strings containing only one or more whitespace characters starting from the beginning until the end. Thus matching string only consist of whitespace characters.

Try this string insted for Pattern.compile():

"\\s+"

The difference is that without the anchors "^" and "$" there may be other characters around the whitespace character. The whitespace character(s) may be everywhere in the string.

Using this pattern-string the whitespace character(s) must be at the beginning:

"^\\s+"

And here the sequence of whitespace characters has to be at the end:

"\\s+$"
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Those are strings, not regexes. –  tchrist Feb 18 '12 at 13:22
    
I'm sorry to disappoint you, but they are. Remember that the strings are ready to use in Java-programs (Backslash is escaped) and as you can see this is a java-regex question. Please try things out, before you post things like this. These strings are tested and do exactly what I wrote. –  AlexS Feb 18 '12 at 15:10
    
Ok, let's be more precise: What I meant was "strings representing patterns". I corrected it in my answer as well. I don't know if my grandma ever did anything like that, but I also don't know what sucking eggs stands for (non native english speaker). I only know that she never started counting beans ;) –  AlexS Feb 18 '12 at 15:42
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Use org.apache.commons.lang.StringUtils.containsAny(). See http://commons.apache.org/lang/api-3.1/org/apache/commons/lang3/StringUtils.html.

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i want to use regex –  Romi Feb 18 '12 at 13:09
    
Try to use simply \s as a regex. –  Alexey Berezkin Feb 18 '12 at 13:15
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