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I have an array like this

 var randomArray = [1,2,1,1,1,1,0,2,1,2,3,10,12,54,10,12] etc..

I can Remove duplicate elements or find duplicate elements in this. But I want to log all repeating sequence of elements repeated in array. Here is the code I have tried, but it is running into infinite loop

  for (i = 0; i < randomLength; i++) {
    var cycle = [i],
    flag = 0,
    start = i;
    for (var j = i + 1; j < randomLength; j++) {
       if (randomArray[i] == randomArray[j]) {
         cycle.push(randomArray[j]);
         while (i <= j) {
            if (randomArray[i + 1] == randomArray[j + 1]) {
                cycle.push(randomArray[j + 1]);
            }
            i = i + 1;
            j = j + 1;
         }
         console.log(cycle);
       }
       i = start;
    }
   i = start;
 }  

It should return me. And I don't want to regex to do the same

1,2
1,1
10,12

If array is ["a","d","z","e","g","h","a","d","z"]  

then

output would be "a","d","z"

And it should be optimal solution. Please suggest me on this. At least corrections to my current code..

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1  
Why 10, 12 and not 0, 2? –  Blender Feb 10 '13 at 6:40
    
@Blender Because 0,2 sequence is repeating only once there.. –  Exception Feb 10 '13 at 6:50
2  
This is an interesting challenge. –  גלעד ברקן Feb 10 '13 at 6:56
    
@groovy Yes it is.. I am trying to implement cycle detection algorithm for this :-) –  Exception Feb 10 '13 at 6:58
    
Shouldn't return [1,2], [2, 1], [1, 1] and [10, 12] instead? That's all the subsequences that repeat given the initial sequence –  higuaro Feb 10 '13 at 7:05

6 Answers 6

up vote 1 down vote accepted

Here is my solution, much like @robert king 's (as I discovered after tackling the problem myself) except mine is complete (already is capable of not counting overlapping patterns) and optimised (as much as I can).

Also, returns a map of objects, so you can enumerate over it and only pull out patterns of size X, or ones that repeated Y times etc.


The following line (with the below function)

getPatterns([1,2,1,1,1,1,0,2,1,2,3,10,12,54,10,12]).showRepeated();

will result in this;

1 2 found 2 times
2 1 found 2 times
1 1 found 2 times
10 12   found 2 times


CODE

function getPatterns(input, generateAll) {
    var patternMap = new getPatterns.presentation();

    var generated = [];
    var patternObj;
    var start;
    //for each item
    for (var index = 0; index < input.length; ++index) {
        //open a new slot for a new pattern start at this index
        generated.push('');

        start = 0;
        //unless told to generate all
        //skip patterns that cant possibly be repeated
        //(i.e. longer than half the input length)
        if (!generateAll && generated.length > input.length / 2)
            start = generated.length - Math.floor(input.length / 2);

        //test patterns we have generated for this index
        for (var index2 = start; index2 < generated.length; ++index2) {
            //generate a fresh lot of patterns for this index
            generated[index2] += ' ' + input[index];

            //unless told to generate all, dismiss patterns of length 1
            if (!generateAll && index2 == generated.length - 1)
                break;

            //try to fetch a pre-existing pattern, O(1)
            patternObj = patternMap[generated[index2]];
            //if this is a new pattern
            if (!patternObj) {
                //generate an object
                patternMap[generated[index2]] = {
                    lastSeen : index,
                    count : 1,
                    size : generated.length - index2
                };
                continue;
            }

            //unless told to generate all, skip patterns that overlap with themselves
            if (!generateAll && index - patternObj.lastSeen < patternObj.size)
                continue;

            //this pattern has repeated! update the object data
            ++patternObj.count;
            patternObj.lastSeen = index;
        }
    }

    return patternMap;
}
//just for a function prototype
getPatterns.presentation = function() {};
getPatterns.presentation.prototype = {
    showRepeated : function() {
        var patternObj;
        for (var pattern in this) {
            patternObj = this[pattern];
            if (patternObj.count > 1)
                console.log(pattern + '\tfound ' + patternObj.count + ' times');
        }
    }
};
share|improve this answer
    
this is what I get for being late to the party :P –  Hashbrown Jul 22 '13 at 1:14
var randomArray = [1,2,1,1,1,1,0,2,1,2,3,10,12,54,10,12];

for(var i = 0; i < randomArray.length; i++) {
    var item = randomArray[i];
    var str  = "";    

    while(randomArray[i] == item) {
        str = str + " " + randomArray[i];   
        i++;
    }

    document.write(str + "<br />");
}

See this JSFiddle: http://jsfiddle.net/Ucgtm/

share|improve this answer
1  
@Derek, reread it, slightly confusing way to represent the question. However, commenting out the sort provides what they are asking for. –  user2002360 Feb 10 '13 at 6:45
    
@user2002360 : Thanks, but small doubt before looking into your solution. How can you find a repeating sequence in sorted array? Is that really possible... Because sorting will disturb array elements positions.. –  Exception Feb 10 '13 at 6:48
    
See the updated code. I removed the sorting, and it produces the sequence as desired. –  user2002360 Feb 10 '13 at 6:49
    
It logs wrong output here jsfiddle.net/W8ebm/25 –  Exception Feb 10 '13 at 6:56

I've used a "trie" tree datastructure (google it for more info). The tree branches for each sequence. It finds 1,1,1 as a solution since 1,1,1 occurs twice. (if you want to stop a number being repeated in two sequences, you need to count unique indexes against each node of the trie).

Here is the code: Runtime should be something like O(N^2) which could be improved on slightly.

var randomArray = [1,2,1,1,1,1,0,2,1,2,3,10,12,54,10,12]

var solve = function(a) {
    var trie = {};
    var sequence_set = {};
    for (var start = 0; start < a.length - 1; start += 1)  {
        var sub_trie = trie[a[start]] || {};
        trie[a[start]] = sub_trie;
        sequence = "" + a[start]
        for (var i = start + 1; i < a.length; i += 1) {
            sequence += "," + a[i]
            sub_trie[a[i]] = sub_trie[a[i]] || {};
            sub_trie = sub_trie[a[i]];
            var sub_trie_count = sub_trie.count || 0;
            sub_trie.count = sub_trie_count + 1;
            if (sub_trie_count >= 1) {
                sequence_set[sequence] = "found";
                console.log(sequence);
            }
        }
    }
    solution = "";
    for (sequence in sequence_set) {
        solution += sequence + ", ";
    }
    console.log(trie)
    return solution;
}

Output:

1,1 fiddle.jshell.net:37
1,1,1 fiddle.jshell.net:37
1,1 fiddle.jshell.net:37
2,1 fiddle.jshell.net:37
1,2 fiddle.jshell.net:37
10,12 fiddle.jshell.net:37
Object {0: Object, 1: Object, 2: Object, 3: Object, 10: Object, 12: Object, 54: Object}
 fiddle.jshell.net:45
share|improve this answer
    
why is it counting '1,1,1' as a repeated sequence? –  גלעד ברקן Feb 10 '13 at 15:09
    
because 1111 contains 111 and 111. –  robert king Feb 10 '13 at 21:20
1  
...it seems to me that a repeated sequence cannot overlap. for 111 to repeat, you would have to have 111111 –  גלעד ברקן Feb 10 '13 at 23:39
    
I mentioned that already in my answer and a simple change that can filter out overlapping sequences. –  robert king Feb 10 '13 at 23:44
2  
oh, sorry...I only looked at the result...nice –  גלעד ברקן Feb 10 '13 at 23:48

Here is a solution I just wrote in Haskell. (You can see how concise the language can be.) Below the code is an example of how it is implemented in the interpreter command line.

import Data.List

findSequences list length
  | length >= 2 = repeatedPattern list length ++ findSequences list (length-1)
  | otherwise = []
    where repeatedPattern [] _ = []
          repeatedPattern list size
            | take size list `isInfixOf` drop size list = 
                take size list : repeatedPattern (tail list) size
            | otherwise = repeatedPattern (tail list) size

Prelude> :load "findSequences.hs"
[1 of 1] Compiling Main ( findSequences.hs, interpreted )
Ok, modules loaded: Main.
*Main> let randomArray = [1,2,1,1,1,1,0,2,1,2,3,10,12,54,10,12]
*Main> findSequences randomArray (floor $ (/2) $ fromIntegral (length randomArray))
[[1,2],[2,1],[1,1],[10,12]]
*Main> let array = ["a","d","z","e","g","h","a","d","z"]
*Main> findSequences array (floor $ (/2) $ fromIntegral (length array))
[["a","d","z"],["a","d"],["d","z"]]

share|improve this answer
    
Thanks groovy.. I will try to translate it to JavScript –  Exception Feb 10 '13 at 8:08
    
@Exception ... have success! –  גלעד ברקן Feb 10 '13 at 8:10

If you want it in php, it goes like this:

Create an array in php outside the <script>

$array=array("1","2","2","1".....);

$result = array_unique($array);

Then

var randomArray = <?php echo json_encode($result) ?>;

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I think your code may be running into an infinite loop because i and j are increasing at the same rate inside the "while" loop, so the "while" condition is not getting satisfied.

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