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I was wondering if it is possible to split a HashMap into smaller sub-maps.

In my case I have a HashMap of 100 elements and I would like to create 2 (or more) smaller HashMaps from the original one, the first containing the Entries from 0 to 49, the second containing the Entries from 50 to 99.

Map <Integer, Integer> bigMap = new HashMap <Integer, Integer>();

//should contains entries from 0 to 49 of 'bigMap'
Map <Integer, Integer> smallMap1 = new HashMap <Integer, Integer>(); 


//should contains entries from 50 to 99 of 'bigMap'
Map <Integer, Integer> smallMap2 = new HashMap <Integer, Integer>();

Any suggestions? Many thanks!

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2  
What have you tried so far? Why didn't it work for you? –  sharakan Jan 31 '13 at 15:42

5 Answers 5

up vote 6 down vote accepted

Do you have to use HashMap? TreeMap is really good for this kind of thing. eg:

    TreeMap<Integer, Integer> sorted = new TreeMap<Integer, Integer>(bigMap);

    SortedMap<Integer, Integer> zeroToFortyNine = sorted.subMap(0, 50);
    SortedMap<Integer, Integer> fiftyToNinetyNine = sorted.subMap(50, 100);
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thanks I will try that –  RNO Jan 31 '13 at 15:53
    
downvoter care to comment on why this isn't a good answer? –  sharakan Jan 31 '13 at 16:04
    
I don't know why you received some downvote, I have chosen your answer because it does not waste much memory. The TreeMap enabled me to efficiently achieve what I wanted. P.S. I should have specified that the result should have been performing, and your suggestion it was. Thanks again –  RNO Jan 31 '13 at 23:02
    
In this answer's current state items 49 and 99 will not be included in either map, because the toKey argument of SortedMap's subMap method is exclusive. Why they didn't include an inclusive version I have no idea. –  Shane Feb 11 at 2:30
    
What you probably want is Java 6's NavigableMap, which includes subMap(K fromKey, boolean fromInclusive, K toKey, boolean toInclusive); –  Shane Feb 11 at 3:09

You'll basically need to iterate over the entries in bigMap, and make a decision as to whether they should be added to smallMap1 or smallMap2.

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or set a threshold and iterate to it, moving an entry from big to small each iteration –  amphibient Jan 31 '13 at 15:44
    
@foampile: A threshold? What do you mean? (Remember that a hash-map isn't sorted) –  Oli Charlesworth Jan 31 '13 at 15:44
    
iterate up to a certain number of iterations, e.g. 50% rounded up to the next int of the original size. but even if it is not sorted, he is moving entries, i.e. putting them in new, deleting from old, so it is safe. so when he iterates again, the moved entries won't be there in the old –  amphibient Jan 31 '13 at 15:45
    
@foampile: Oh, I see. I had misread the OP's question. I assumed that (s)he wanted to filter the entries based on their values. But it sounds like they actually just want 50% to go one way, and 50% the other. –  Oli Charlesworth Jan 31 '13 at 15:46

As the HashMap is unordered (entries may come in any order), it makes no sense to exactly split it. We can simply use the alternating boolean flag.

boolean b = false;
for (Map.Entry e: bigMap.entrySet()) {
  if (b)
    smallMap1.put(e.getKey(), e.getValue());
  else
    smallMap2.put(e.getKey(), e.getValue());
  b = !b;
}
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2  
huh? on a HashMap wouldn't this just arbitrarily pick every other entry? –  sharakan Jan 31 '13 at 15:46
    
There is no such thing as the order of entries in HashMap. If the order is important for your task, use LinkedHashMap and then of course it must be a different algorithm. –  Audrius Meškauskas Jan 31 '13 at 15:50
for (Map.Entry<Integer,Integer> entry : bigMap.entrySet()) {
   // ...
}

is the fastest way to iterate through your original map. You'd then use the Map.Entry key to decide which new map to populate.

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Iterate over the bigMap with for (Entry<Integer, Integer> entry : bigMap.entrySet()), and increment an i to check whether you have to add the entry in the first small map or in the second one.

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