Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to write a method in Java that checks a String and allows it to only contain numbers and comma. Besides, there can be no repeating numbers.

For instance:

  • 11,22,33 - this is ok
  • 22,22,33 - this is NOT ok

I've done a first draft of it using a combination of regex and Set<String> (below), but was looking for something better, preferably using regex only.

public boolean isStringOk(String codes) {
    if(codes.matches("^[0-9,]+$")){ 
        Set<String> nonRepeatingCodes = new LinkedHashSet<String>();
        for(String c: codigoRoletas.split(",")){
            if(nonRepeatingCodes.contains(c)){
                return false;
            }
            else{
                nonRepeatingCodes.add(c);
            }
        }
        return true;
     }
    return false;
}

Does anyone know if this is possible using regex only?

share|improve this question
3  
Using Regex only its not possible. Regex does not keep track of all the actual numbers matched. It just knows that digit matched. For a few matches, you can still do. But if you don't know the length of string, then it would be i don't know how much complex, even if its possible. –  Rohit Jain Nov 12 '12 at 17:47
1  
it might be possible with a regex, but it would be completely cryptic to the next persom coming along. Jamie Zawinski made his comment about regex for reasons just like this. –  Jarrod Roberson Nov 12 '12 at 17:48
    
Are the sub-ranges of values always the same length? For example, 11,22,33 for length of 2, 111,222,333 for length of 3, etc. –  TheLima Nov 12 '12 at 17:53
    
@RohitJain it is possible with regex only. But I completely agree with Jarrod Roberson! –  Martin Büttner Nov 12 '12 at 18:00
    
@m.buettner.. Yeah I saw your solution, and that's why I pointed out, it might be complex, as in your answer. –  Rohit Jain Nov 12 '12 at 18:01

5 Answers 5

I doubt that it is advisable (as Jarrod Roberson mentioned), since it is hard to understand for any fellow coder on your project. But it is definitely possible with regex only:

^(?:(\d+)(?!.*,\1(?!\d)),)*\d+$

The double-negative lookahead makes it a bit difficult to understand. But here is an explanation:

^                # anchor the regex to the beginning of the string
(?:              # subpattern that matches all numbers, but the last one and all commas
    (\d+)        # capturing group \1, a full number
    (?!          # negative lookahead, that asserts that this number does not occur again
        .*       # consume as much as you want, to look through the whole string
        ,        # match a comma
        \1       # match the number we have already found
        (?!\d)   # make sure that the number has ended (so we don't get false negatives)
    )            # end of lookahead
    ,            # match the comma
)*               # end of subpattern, repeat 0 or more times
\d+              # match the last number
$                # anchor the regex to the beginning of the string

Note that this up there is just the general regex, not specific to Java. In Java you need to escape every backslash, otherwise it won't get through to the regex engine:

^(?:(\\d+)(?!.*,\\1(?!\\d)),)*\\d+$
share|improve this answer
1  
Any comments for the downvote? :) –  Martin Büttner Nov 12 '12 at 18:01
    
this is perfect..y the downvote! –  Anirudha Nov 12 '12 at 18:04

Be warned that using regular expressions for what's technically a non-regular language can be dangerous, especially for large, non-matching strings. You can introduce exponential time complexity if you're not careful. Also, regular expression engines have to do some back-door tricks that can also slow down the engine.

If you try the other solutions and they give you problems, you can try it this way using a capture group along with the Pattern and Matcher classes to make your code cleaner:

private static final Pattern PATTERN = Pattern.compile("([\\d]+),?");

public static boolean isValid(String str) {
    Matcher matcher = PATTERN.matcher(str);
    Set<Integer> found = new HashSet<Integer>();
    while (matcher.find()) {
        if (!found.add(Integer.parseInt(matcher.group(1)))
            return false;
    }
    return true;
}
share|improve this answer
2  
+1 for pointing out there's a difference between regular and other (context-sensitive) languages here. –  Hanno Binder Nov 12 '12 at 18:37
    
Why the direct use for the Pattern and Matcher classes? I believe String.split() would achieve the same results which a lesser code and resources footprint. - And why converting to Integer? I think it reduces flexibility and adds unnecessary processing due to the conversion operation, while serving no real purpose to the boolean results as far as the OP's example goes. (I realize the matcher and this conversion are important if the integer format must be guaranteed, though) --- See my version of your method, and feel free use at will if you'd like. –  TheLima Nov 13 '12 at 15:53
    
@TheLima All your answer does is reiterate what the OP already knew. He already had the String.split(",") solution in his question. As for extra allocation/processing, you're talking microseconds and kilobytes, which screams premature optimization. My code makes sense and is readable, which is what experts do. He wanted something to match numbers, so I made it match numbers. It was intentionally inflexible because code should indicate purpose. –  Brian Nov 13 '12 at 16:33
    
I really can't see your point as valid. Your code's difference to String.split() is as good as the difference between "Half a dozen" and "6". There is unnecessary code within, which reduces clarity by increasing noise. And, nevermind code, while indeed the performance changes scream premature optimization to the example, such milliseconds and kilobytes are of non-trivial importance if the code is applied to massive amounts of data; Something that would be unsurprising considering the question's nature. --- I don't see any true reason the changes would be worse rather than better. –  TheLima Nov 13 '12 at 16:52
    
You point about massive data is invalid. If he wants to use regular expressions in the first place, then there isn't going to be "massive amounts of data" because regular expressions are going to inherently be slower than most other methods of verification (like testing primality). Not to mention the memory concerns in having data that large even using your method. He asked for an alternate solution to using split, so I gave him one that was concise and clear instead of telling him what he already knew. –  Brian Nov 13 '12 at 16:58

Here's the least-ugly regex I could come up with:

return codes.matches("^(?:,?(\\d+)(?=(?:,(?!\\1\\b)\\d+)*$))+$");

breakdown:

  • ,? consumes the next comma if there is one (i.e., it's not the beginning of the string).

  • (\d+) captures the next number in group #1

  • (?=(?:,(?!\1\b)\d+)*$) tries to match the remaining numbers, checking each one to make sure it's not the same as the one that was just captured.

The \b after the backreference prevents false positives on strings like 11,111. It isn't needed anywhere else, but you can tack one onto each \d+ if you want, and it might make the regex slightly more efficient. But if you need to tweak the regex for maximum performance, making all the quantifiers possessive will have more effect:

"^(?:,?+(\\d++)(?=(?:,(?!\\1\\b)\\d++)*+$))++$"
share|improve this answer

This regex would do

^(?=^\d+(?:,\d+)*$)(?!^.*?((?<=(?:^|,))\d+(?=[,$])).*?\1(?:$|,.*?)).*?$

(?=^\d+(?:,\d+)*$) checks for valid format like 45 or 55,66,88,33

(?!^.*?((?<=(?:^|,))\d+(?=[,$])).*?\1(?:$|,.*?)) doesnt match if there are any repeating digits..

.*? matches everything provided the above negative lookahead returns true

works here

share|improve this answer
    
I almost died... :( :'( –  Rohit Jain Nov 12 '12 at 18:24

If a regex solution is not mandatory, the problem can be solved with a split, a list/set and a contains check, such as is your current code. Here is my own version of it:

public static void main(String[] args) {
  String[] tests = {
    "11,22,33", //valid.
    "12,23,34", //valid.
    "11,11,22", //not valid.
    "12,12,23" //not valid.
  };

  for (String s : tests) {
    System.out.println(isValid(s));
  }
}

public static boolean isValid(String source) {
  Set<String> set = new HashSet<String>();
  for (String sub : source.split(",")) {
    if (!set.add(sub)) {
      return false;
    }
  }
  return true;
}

If a regex solution is mandatory, the answer will depend on your exact format. Which you have not specified clearly.

By that, I mean that your regex will have to be very tightened around your format, otherwise it won't work. Other answers already cover exemplifying some possibilities for a 2-digit sub-range length as is your example. But, as stated, your format is not really crystal-clear as being that outside the sampling scope.

For an example different from the other answers, consider the assumption that validity is determined by different ranges of the same number. Most codes answered will not match in case the sub-ranges are of different sizes. For example, 11,111,22 would not match.

For this specific example, here is a possible regex solution:

String matcher = ".*?(\\d+)(,\\1).*";
String t1 = "111,222.333";
String t2 = "111,111,222";
String t3 = "11,1111,222";
String t4 = "111,222,111";
System.out.println(t1.matches(matcher)); //false
System.out.println(t2.matches(matcher)); //true
System.out.println(t3.matches(matcher)); //true
System.out.println(t4.matches(matcher)); //false

Also, it's not clear whether a non-consecutive situation such as 11,22,11 would be "ok" or not. I'm assuming it is not. But I couldn't achieve a regex-only solution for that yet.


As should be clear by most answers so far, a regex-only solution requires a regex so specific it can hardly be called easily-maintainable, as any change to the data-source's format is probably going to demand changes to the regex.

As such, a solution that actually uses code other than regex, such as that you already have, or similar ones such as mine, is probably best.

share|improve this answer
    
its not a flaw, it is by design, the example only has 2 digit numbers –  Jarrod Roberson Nov 12 '12 at 18:45
    
@JarrodRoberson - The example is an example. The OP clearly specifies the purpose is to detect repeating numbers, but he never specifies sub-range length as being always 2. --- I have asked this on the question's comments, with no response. --- Until specified, I'm assuming it to be flexible. –  TheLima Nov 12 '12 at 18:59
    
on what planet does 111 == 1111? –  Jarrod Roberson Nov 12 '12 at 20:37
    
Same deal. Specific ranges are never specified, so, based on the example, I'm assuming the shortest range, which is sequences of equal numbers. –  TheLima Nov 13 '12 at 14:19

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.