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I'm trying to find an easy way to loop (iterate) over an array to find all the missing numbers in a sequence, the array will look a bit like the one below.

var numArray = [0189459, 0189460, 0189461, 0189463, 0189465];

For the array above I would need 0189462 and 0189464 logged out.

Any thoughts?

UPDATE

Thanks for the help,

Sorry Kennebec couldn't get your function to work correctly in the end. See the comment below your answer.

EDIT : this is the exact solution I used from Soufiane's answer.

var numArray = [0189459, 0189460, 0189461, 0189463, 0189465];
var mia= [];

    for(var i = 1; i < numArray.length; i++) 
    {     
        if(numArray[i] - numArray[i-1] != 1) 
        {         
            var x = numArray[i] - numArray[i-1];
            var j = 1;
            while (j<x)
            {
                mia.push(numArray[i-1]+j);
                j++;
            }
        }
    }
alert(mia) // returns [0189462, 0189464]
share|improve this question
    
You can iterate over the array and compare each two elements. –  Felix Kling Sep 6 '11 at 9:55

4 Answers 4

up vote 5 down vote accepted

If you know that the numbers are sorted and increasing:

for(var i = 1; i < numArray.length; i++) {
    if(numArray[i] - numArray[i-1] != 1) {
           //Not consecutive sequence, here you can break or do whatever you want
    }
}
share|improve this answer
    
Thanks Soufiane, is that going to catch each occurence in the array as the array will contain approx 100 numbers and how would i log the actualy number that isn't there, again i might be being thick. –  Mark Walters Sep 6 '11 at 10:11
    
@Mark: Every number between numArray[i] and numArray[i-1], if the difference is greater than 1, is not in the array. –  Felix Kling Sep 6 '11 at 10:14
    
Yes, you are going to go through every item in the array, and to catch the missing number, when the difference is X (X != 1), your missing numbers are : numArray[i-1] + j (j>0 and j<X) –  Soufiane Hassou Sep 6 '11 at 10:14
    
@Soufiane + Felix: thanks to both –  Mark Walters Sep 6 '11 at 10:26

Watch your leading zeroes, they will be dropped when the array is interpreted-

var A= [0189459, 0189460, 0189461, 0189463, 0189465]

(A returns [189459,189460,189461,189463,189465])

function absent(arr){
    var mia= [], min= Math.min.apply('',arr), max= Math.max.apply('',arr);
    while(min<max){
        if(arr.indexOf(++min)== -1) mia.push(min);
    }
    return mia;
}

var A= [0189459, 0189460, 0189461, 0189463, 0189465]; alert(absent(A))

/* returned value: (Array) 189462,189464 */

share|improve this answer
    
I'm getting the following error running this function - TypeError 1406: Variable indexOf is not a function type. –  Mark Walters Sep 9 '11 at 8:38

It would be fairly straightforward to sort the array:

numArray.sort();

Then, depending upon what was easiest for you:

  1. You could just traverse the array, catching sequential patterns and checking them as you go.
  2. You could split the array into multiple arrays of sequential numbers and then check each of those separate arrays.
  3. You could reduce the sorted array to an array of pairs where each pair is a start and end sequence and then compare those sequence start/ends to your other data.
share|improve this answer

I use a recursive function for this.

function findMissing(arr, start, stop) {

    var current = start,
        next = stop,
        collector = new Array();

    function parseMissing(a, key) {
        if(key+1 == a.length) return;

        current = a[key];
        next = a[key + 1];

        if(next - current !== 1) {
            collector.push(current + 1);
            // insert current+1 at key+1
            a = a.slice( 0, key+1 ).concat( current+1 ).concat( a.slice( key +1 ) );
            return parseMissing(a, key+1);
        }

        return parseMissing(a, key+1);
    }

    parseMissing(arr, 0);
    return collector;
}

Not the best idea if you are looking through a huge set of numbers. FAIR WARNING: recursive functions are resource intensive (pointers and stuff) and this might give you unexpected results if you are working with huge numbers. You can see the jsfiddle. This also assumes you have the array sorted.

Basically, you pass the "findMissing()" function the array you want to use, the starting number and stopping number and let it go from there.

So:

var missingArr = findMissing(sequenceArr, 1, 10);
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