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I have a large Set<String> that contains many words, say:

"aaa, cCc, dDD, AAA, bbB, BBB, AaA, CCc, ..."

I want to group all duplicate words from the Set ignoring the case sensitivity of the words then save them in a Vector<Vector<String>> or whatever, so each Vector<String> item will contain the group of similar words, like this :

Vector<String>: aaa, AAA, AaA, ...

Vector<String>: cCc, CCc, ...

Vector<String>: bbB, BBB, ...

I care about the performance as this Set contain many words.

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1/ Do you know the full list of target strings in advance? – Matthew Gilliard Jul 14 '11 at 11:57
1  
2/ Why are you using Vector instead of ArrayList or LinkedList? – Matthew Gilliard Jul 14 '11 at 11:58
    
Can you replace the "Set" implementation to sort the values into an internal structure when they're 'add'ed to the Set in the first place. I realize this isn't what you asked but seems like maybe switching your collection implementation may make this easier. – Trever Shick Jul 14 '11 at 12:04
2  
"I care about the performance as this Set contain many words." Do you care enough to have run a profiler on it, or are you just guessing? – Andrew Thompson Jul 14 '11 at 12:27
    
If you care about performance, don't use the thread-safe Vector; Use ArrayList or HashSet instead. – Peter Lawrey Jul 14 '11 at 12:43
up vote 0 down vote accepted

I would create a HashMap<String, Vector<String>> hashMap. Next, for each 'string' in your set

if (!hashMap.containsKey(string.toLowerCase()){
     Vector v = new Vector();
     v.add(string);
      hashMap.put(string.toLowerCase(), v);
} else { 
     hashMap.get(string.toLowerCase()).add(string);
}

At the end, create a Vector of vectors if needed, or work with the hashmap.valueSet()

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Thanks a lot ... I've made some changes, like in case some of the words in the Set have no duplicates, so no need to add them to the HashMap. – Brad Jul 15 '11 at 13:18

If you truly care about performance you would not use Vector. As for the sorting problem one solution would be to use the TreeMap or TreeSet object and create a Comparator that does the equality (sorting) you want.

The instantiation could be:

new TreeMap<String,LinkedList<String>>(new Comparator<String>() {

   // comparator here

});

Usage:

LinkedList<String> entry = map.get(nextKey);
if (entry == null) {
  entry = new LinkedList<String>()
  map.put(nextKey, entry);
}
entry.add(nextKey);
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If you can choose Set implementation you can use TreeSet with Comparator that compares strings ignoring case. Then you will be able to iterate over sorted list and easily group duplicates.

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This iterates over the input set once and I doubt you can get much faster than that. Swapping the ArrayLists for LinkedLists may trade locality for less copying, which may be an performance gain, but I doubt it. Here's the code:

Set<String> input = new HashSet<String>(Arrays.asList(
    "aaa", "cCc", "dDD", "AAA", "bbB", "BBB", "AaA", "CCc"));

Map<String, List<String>> tmp = new HashMap<String, List<String>>();

for (String s : input) {
    String low = s.toLowerCase();
    List<String> l = tmp.get(low);

    if (l == null) {
        l = new ArrayList<String>();
        tmp.put(low, l);
    }

    l.add(s);
}

final List<List<String>> result = new ArrayList<List<String>>(tmp.values());
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