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I have two Javascript array objects, where first one is sorted in the order I want it to be sorted in and second array is sorted in the wrong order, for example:

1) SortedArray (0 - 10 items, 11 - 20 items, 21 - 30 items, 10000 - 20000 items)

2) Alphabetically sorted Array (0 - 10 items, 10000 - 20000 items, 11 - 20 items, 21 - 30 items)

I would like to sort the second array in the same order as the first one, is there an easy way to solve this issue?

Any help would be appreciated. Thank you.

Conditions:

1) The second array can be different in size. So it could have less values than the first array.

2) If the data is corrupt, the second array can have values that do not exist in the first array.

Update

I have built an sample here based on Bergi's response: jsfiddle.net/EPwS6 - but now I need to figure out how I can preserve values in arr2 which do not exist in arr1. Any ideas or tips?

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1  
Do both arrays really contain the same elements? –  Bergi Dec 5 '12 at 10:51
    
Most of the time they will, unless the data is corrupt, then they will be different. The second set of values are being built from a set of data, whereas the first set of values are pre-defined. So you could possibly have instances where the data doesn't match the pre-defined value, then the array would be different in size and values - we can possibly put a check in place to only consider array with same values. –  pipalia Dec 5 '12 at 10:52
2  
Why not just use the array that is sorted the way that you want it? –  Guffa Dec 5 '12 at 10:56
    
Let me edit my question to clarify the situation. –  pipalia Dec 5 '12 at 10:57

1 Answer 1

up vote 2 down vote accepted

If both arrays contain the same items, but in different order, it's easy: Just copy the first array to the second. Either use a direct reference, or slice to create a new array.

If the two arrays contain different objects with similar keys, it gets more difficult. Yet you can easily manage that by creating a lookup table:

var table = {};
for (var i=0; i<arr2.length; i++)
    table[ arr2[i].getKey() ] = arr2[i];
for (var i=0; i<arr1.length; i++)
    arr2[i] = table[ arr1[i].getKey() ];
table = null;
// arr2 now ordered by the same keys as arr1, and its length is set to arr1.length

If the key sets are not the same, you might go with something like this:

var table = {};
for (var i=0; i<arr2.length; i++)
    table[ arr2[i].getKey() ] = arr2[i];
for (var i=0; i<arr1.length; i++) {
    var key = arr1[i].getKey();
    if (key in table) {
        arr2.push(table[key]); // add to array
        delete table[key]; // and prevent readding
    }
}
for (var key in table)
    arr2.push(table[key]); // add all leftover objects
table = null;
share|improve this answer
    
Many thanks - I will give it a go. –  pipalia Dec 5 '12 at 11:17
    
Thank you it works, I have built an sample here: jsfiddle.net/EPwS6 - but now I figure out how I can preserve values in arr2 which do not exist in arr1. Any ideas or tips? –  pipalia Dec 5 '12 at 11:41
1  
Depends on where you want to have them sorted. Also, what should happen to keys that occur multiple times, or do occur in arr1 but not in arr2? –  Bergi Dec 5 '12 at 11:47
    
There won't be any duplication that's at least guaranteed, and any values not in arr1 should simply be pushed at the end of the array. What's the most efficient way to achieve this please? –  pipalia Dec 5 '12 at 11:49
    
Thank you - this is a really elegant solution, appreciate your help. –  pipalia Dec 5 '12 at 14:57

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