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I have an alpha-numeric string and I want to check for pattern repetition in it just for the integers. And they should be continuous.

Example

  1. 12341234qwe should tell me 1234 is repeated.
  2. 1234qwe1234 should NOT tell me that 1234 is repeated since its not continuous.
  3. 12121212 should be treated as 12 being repeated as that is the first set which would be found being repeated. But if there is an algorithm which would find 1212 as the repeated set before 12 then I guess it has to perform the steps again on 1212.

What I thought was I can store the integer part by iterating and comparing it with ( <= '0' && >= '9') in a different StringBuilder. Then I read about performing FFT on the string and it shows the repeated patterns. But I have no idea on how to perform FFT in Java and look for the results, also, I was hoping to try to do this without going to Signal Processing. I read about KMP pattern matching but that only works with a given input. Is there any other way to do this?

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is there a max number of integers in sequence? –  ant Apr 23 '12 at 19:12
    
Nope, there is not limit to the repetition. –  noMAD Apr 23 '12 at 19:14
    
Is this homework? –  Tudor Apr 23 '12 at 19:15
9  
would "12121212" be: a) "1212" repeated two times or b) "12" repeated four times? –  Dan Byström Apr 23 '12 at 19:15
1  
Please add references for special terms you use in your question, but which you don't want to explain. Of course, we can search for them by ourselves, but that does not help with potential ambiguity. Further, such references would make things easier and improve your question. –  Michael Schmeißer Apr 23 '12 at 19:16

5 Answers 5

up vote 42 down vote accepted

You can take help of regex to solve this I think. Consider code like this:

String arr[] = {"12341234abc", "1234foo1234", "12121212"};
String regex = "(\\d+?)\\1";
Pattern p = Pattern.compile(regex);
for (String elem : arr) {
   Matcher matcher = p.matcher(elem);
   if (matcher.find())
      System.out.println(elem + " got repeated: " + matcher.group(1));
   else
      System.out.println(elem + " has no repeation");
}

OUTPUT:

12341234abc got repeated: 1234
1234foo1234 has no repeation
12121212 got repeated: 12

Explanation:

Regex being used is (\\d+?)\\1 where

\\d        - means a numerical digit
\\d+       - means 1 or more occurrences of a digit
\\d+?      - means reluctant (non-greedy) match of 1 OR more digits
( and )    - to group the above regex into group # 1
\\1        - means back reference to group # 1
(\\d+?)\\1 - repeat the group # 1 immediately after group # 1
share|improve this answer
1  
+1 for the answer can you clearify the regex bit –  ant Apr 23 '12 at 19:42
    
Sure, adding some explanation to my answer. –  anubhava Apr 23 '12 at 20:01
2  
nice one, I'd give you +2 if I could –  ant Apr 23 '12 at 20:09
    
@anubhava: Thanks for this solution. I was just wondering how does it work for 1234foo1234? According to your explanation you check in a non-greedy fashion for match of 1 or more digits. But how come it skips the digits if in this case? –  noMAD Apr 23 '12 at 21:15
1  
@noMAD: Since I'm using (\\d+?)\\1 it is making sure a digit combination is repeated immediately so 1234foo1234 will not be matched since foo comes in between repetitions. –  anubhava Apr 24 '12 at 3:12

I am not sure if you are familiar with RegularExpressions (RegEx) but this code works

String str = "12341234qwe";
String rep = str.replaceAll(".*(.+)\\1.*","$1");
if (rep.equals(str))
    System.out.println(str+" has no repition");
else
    System.out.println(str+" has repition "+rep);
str = "1234qwe1234";
rep = str.replaceAll(".*(.+)\\1.*","$1");
if (rep.equals(str))
    System.out.println(str+" has no repition");
else
    System.out.println(str+" has repition "+rep);

Here is tutorial: http://docs.oracle.com/javase/tutorial/essential/regex/

share|improve this answer
    
Thanks.. it saved me –  Noman Hamid Nov 27 '12 at 16:13

My theory is that you can use the data structure known as suffix tree to achieve what you want.

Going through the initial string, collect each contiguous sequence of digits and build its suffix tree. For your example it would look like (for the first 4 suffixes):

                  R - root
      |         |          |         |
      |         |          |         |
      |         |          |         | 
  12341234$  2341234$   341234$     41234$

Now, the next suffix in order would be 1234$. However, when inserting, we notice that it matches the prefix 1234 of the first suffix. A counter is kept in parallel and incremented every time a suffix is added to the tree.

At each step we compare the counter with the length of the match between the current suffix to be inserted and the substring with which it matches. If the length of the match is a multiple of the counter, then we have a repetition.

In the above case, the counter would be 4 (starting from 0) by the time we insert 1234$ and the length of the match with the prefix of 12341234$ is also 4, so 1234 is repeated.

share|improve this answer
1  
This is awesome but can you tell me which data structure will you use to implement a suffix tree in java? Or should it be built from scratch having a node class? –  noMAD Apr 23 '12 at 20:07
    
Well there's no built-in data structure for this. Basically you have to implement an N-ary tree where each node contains a string. –  Tudor Apr 23 '12 at 20:12
    
this can be very much used in implementing password complexities –  dungeon Hunter Jun 26 '12 at 14:27

First you'd want to define some rules for a pattern. If a pattern could have any arbitrary length, then you should start storing int values (building up the pattern) and starting to check for a repetition at the first repeated int.

In this case: 1234123q You're building the 1234 pattern, then since 1 is repeated you should keep storing it AND start comparing it with the next values.

How do you handle repetitions inside a pattern?

In the case: 123124123124

the pattern 123124 is repeated twice. Should it register as a repetition, or stop at the the first 4 since 123 != 124 ?

If you choose to register those case as valid repetition, you'll need to start creating parallel patterns to check at the sime times as you keep building them up.

The firs case (stopping at the first NOT repeated value) is simple, the second case will generate a lot of parralel patterns to build and to check at the same time.

Once you reach the end of the stream you could do the search using String-provided existing methods.

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Apache Commons Lang. has a class org.apache.commons.lang.StringUtils which has method that counts the occurences of the specific substring. Its already exist you can use it directly instead of creating your own solution.

StringUtils.CountMatches("1234","12341234"); //first parameter is the string to find and second param is the String to search.

countMatches

share|improve this answer
    
And how do you know for which string to search? –  Tudor Apr 23 '12 at 19:30
    
any string you will pass in the first parameter it will search its occurences in the second parameter String. –  Shehzad Apr 23 '12 at 19:33
    
And how do you know the first parameter for a generic string? –  Tudor Apr 23 '12 at 19:33
    
ah got you I miss interpreted the question Its about the type of occurence not specific user provied occurence of a set. –  Shehzad Apr 23 '12 at 19:35

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