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I want to validate (preferably with .matches()) that the part before % in for example "ookd&sr34!abc*%*blabla.h" does not begin or end with for example 'k'. 'k' must, however, be allowed in between those endpoints (beginning to %, exclusive).

I can't use the end anchor because I don't want the end of the whole string. Also, I don't want to split the string, I want to do it all in one regex.

Possibly some kind of lookahead? I'm stuck.

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1  
Why a regex? It seems like this would be easier done by just checking for the ks with charAt(), or taking a substring and using startsWith() and endsWith(). (In Java, substring() does not create a copy.) – millimoose Nov 18 '12 at 21:22
    
Millimoose what did you mean by substring() does not create a copy? Did you mean a copy of the entire string? Or that it doesn't create a new string? Because it sure does create a new string, which is a substring of your original.. So you have 2 strings in your string pool - your original, and your new substring. – Penelope The Duck Nov 18 '12 at 21:30
1  
@PenelopeTheDuck substring returns a new String object but internally this object points to the same underlying char[] as the original, just with a different offset and length. – Ian Roberts Nov 18 '12 at 21:40
    
@Ian Roberts, while this was certainly true in older versions of Java, it is no longer the case. Now a new string is created internally each time. I believe this was introduced with Java 7 update 6. – Penelope The Duck Dec 1 '13 at 21:22
up vote 0 down vote accepted

Something like

str.matches("(?!k)[^%]*(?<!k)%.*")

If you ignore the look-arounds this matches any sequence of characters up to the first %, then the %, then everything else. The lookahead at the start ensures the first character (if there is one) is not k and the look behind ensures that the last character before the first % (if there is one) is not k. Unlike the naive [^k].*?[^k]% this allows for the case where there are fewer than two characters before the %.

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Try this regexp ^k.*k%.

matches("ookd&sr34!abc*%*blabla.h") -> false
matches("kokd&sr34!abc*k%*blabla.h") -> true
matches("kookd&sr34!abc*%*blabla.h") -> false
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import java.util.regex.Matcher;
import java.util.regex.Pattern;

public class TestClass {    
  public static void main(String[] args) {
    String myString = "ookd&sr34!abc*%*blabla.h";
    Pattern p = Pattern.compile("^k.*k%");
    Matcher m = p.matcher(myString);
    while(m.find()){
      System.out.println(m.group());
    }
    System.out.println(Pattern.matches("^k.*k%.*", myString));
    System.out.println(myString.matches("^k.*k%.*"));
  }
}

Never used the matches before, but it seems to require the .* on the end, after the % or it will return false - presumably because it evaluates the entire string and not just a part of it like the Matcher.find() method.

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