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I want to search a hash map depending on the user input. Suppose a user give value 'A',I have to display starting with A company name and if user give value 'AB' I have to display starting with AB company name. I am storing company name in hash map

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4 Answers 4

  1. Use a NavigableSet.

    Example:

    NavigableSet<String> company=new TreeSet<String>(); 
    Set<String> filteredSet=company.tailSet(prefix);
    for(String str:filteredSet) {
     if(str.startsWith(prefix))
      //add to list
     else
      break;
    }
    
  2. Use a radix tree [wiki] or trie [wiki] if you are concerned about performance.The radix tree is more memory efficient compared to a trie.

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very nice answer (+1) –  Sean Patrick Floyd Nov 17 '10 at 10:00
    
@user426344 : Also check this blog on auto-completion –  Emil Nov 17 '10 at 10:16

Hash maps are only really good at finding exact matches based on some idea of equality which can be appropriately hashed.

Two options:

  • Just go with a list instead, and search it linearly. For relatively small amounts of data, this is likely to work absolutely fine.
  • Find or implement a trie (or prefix tree) which will basically start at a root node and descend for each character the user has typed - the results are all "valid endpoint" nodes below the node reached at the end of descending the user input.
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You can loop over the keyset and check each key. For example:

final String searchPrefix = "AB";
for(String key : map.keySet()){
    if(key.startsWith(searchPrefix)){
        System.out.println(map.get(key));
    }
}

Or, you can loop over the entries in the map.

final String searchPrefix = "AB";
for(Entry<String,String> e : map.entrySet()){
    if(e.getKey().startsWith(searchPrefix)){
        System.out.println(e.getValue());
    }
}
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you should look into regex (regular expressions)

http://download.oracle.com/javase/tutorial/essential/regex/

your company names are Strings then you can use

String regex = "A*";
myString.matches(regex);
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3  
Sounds like a bad idea to me. For a simple prefix search, regex is overkill... what's wrong with String.startsWith? –  Jon Skeet Nov 17 '10 at 9:35
    
Nothing, but the question was how to do LIKE, I suggest regex because he might want to do more complex test later. if its just to do :startwith test then yes and no its an overkill. ("yes" because there is a shorter way to write it, "no" because I think Java uses also regex to do this in the background). –  Jason Rogers Nov 17 '10 at 9:39
    
@user440336 No, java iterates over the underlying char arrays, which is a lot more efficient than regex. especially since if you use String.matches() multiple times, the same pattern is compiled over and over again (str.matches(pattern) is a shortcut for Pattern.compile(pattern).matcher(str).matches()) –  Sean Patrick Floyd Nov 17 '10 at 10:04
    
ok then I agree if your only looking for the beginning then String.startsWith i smore effecient. I never really use regex in Java and just assumed it would be as effecient as other languages. –  Jason Rogers Nov 18 '10 at 2:01

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