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I have a Map and a List. The List should be sorted based on the Map key values. E.g:

Map = (<2,"Andy">,<4,"Karl">)
List = ("Kathy","Andy","Yiri","Jun","Karl")

I have to sort the List in such a way that at index : (2 : Andy) should be there and at index (4 : Karl) should be there. For rest of elements order does not matter. Rest of Conditions are :

  1. Entries in Map may or may not present in List ;(In this we can keep the order same)
  2. List could be empty
  3. Map could be empty

I am able to do this in 2 loops , I was curious to know if it is possible to achieve this in a single Loop.

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Still not clear to me, could you show us the code? –  Crazenezz Jun 12 '12 at 2:05
2  
Two questions: a) Is this homework? b) In the Map, which is the key and which is the value? In <2, "Andy">, is "2" the key or the value? –  vz0 Jun 12 '12 at 2:13
1  
No its not a home work :) , I was able to serve the purpose of the requirement but felt there can a be better solution. Yes 2 here is the key Value on which I am sorting is String element –  KAPILP Jun 12 '12 at 2:45
    
WHy do not use TreeMap with wrapper object as a value. Still it will be nlogn, NOT O(n) –  Elbek Jun 12 '12 at 4:41

1 Answer 1

up vote 0 down vote accepted

You can use 1 loop to loop through all keys in the map, and search for the object in the List with indexOf(Object), then use set twice to swap the object to the correct position.

Pseudocode (that looks like Java):

Set<Map.Entry<Integer, String>> entrySet = map.entrySet();
for (Map.Entry<Integer, String> e: entrySet) {
    int index;
    if ((index = list.indexOf(e.getValue())) >= 0 && index != e.getKey()) {
        list.set(index, list.set(e.getKey(), e.getValue()));
    }
}

Well, complexity is not that good: O(nk) where n is the number of elements in the List and k is the number of elements in the Map.

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ya, using indexOf is a way of hiding a LOT of iterations through the List, but with the key/value being backwards for usefulness in this situation, I don't see a way around it. –  Bill James Jun 12 '12 at 3:15
    
Reconstructing a Map is another NlogN function, though. –  Bill James Jun 12 '12 at 4:35
    
@BillJames: The complexity is not everything. Many linear searches on the List may be even slower than a one time O(nlog n) reverse mapping plus one traversal through the List (this can be achieved by: if we swap with an element ahead of the current element, we will do the swapping, but we will not advance the "pointer"). Edit: Lol, I didn't even notice that you are not the OP. x_x –  nhahtdh Jun 12 '12 at 8:38
    
Ya, I'm a lurker on this one. Talking about algorithmic complexity lures me in. –  Bill James Jun 12 '12 at 15:03

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