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class Expression{
   private final String expression; //can be 00* or 01* or 0101*

   public int hashCode(){
       //what should I put here
       //tried to use String hashCode but not useful
   }

   public boolean equals(Object obj){
       //Logic for testing of equality
       //Check if the obj is String check if expression matches
   }
}

//This is how map is initialized
map.put("00*",someObject);
map,put("0101*", someOtherObject);

Why the String hashCode implementation was not useful?

Because the String in the Expression class is 00* and the String that I am trying to lookup will be 00112233. So the hashCode() won't be same for those Strings.

Client code tries to lookup from the HashMap using String key

map.get("0011"); //should get someObject as `0011` matches expression `00*`

Is there any way to do this?

I know that hashCode() should contain values that are immutable and about the hashCode() and equals() contract.

But I am doubtful if there is any way to achieve this.

share|improve this question
    
inside the implementation you can validate what you want using regular expression and then add to the Hashmap if it satisfies your condition. –  AurA Sep 3 '13 at 11:33
    
@AurA map is already initialized with expressions. And now I want to check the entries based on which string satisfies a particular expression and use that value from map. –  Narendra Pathai Sep 3 '13 at 11:35
    
@mvw I have added the explanation for that. Check the updated answer. –  Narendra Pathai Sep 3 '13 at 11:39
    
@NarendraPathai I missed the word "regular expression" in your question. –  mvw Sep 3 '13 at 11:42
    
What if "0011" matches "00*" and "001*"? –  Luca Basso Ricci Sep 3 '13 at 11:42

3 Answers 3

There is a reason there is no implementation of such a data-structure. Lets reverse engineer it:

Requirements:

keyA = Expression.getInstance("00*");
keyB = Expression.getInstance("0011");

map.get(keyA) == map.get(keyB)

Now how does hashmap() work?

  • First, key's hash value is calculated, which is used to locate the hash bucket.
  • Now with that bucket key's equals() is used to find the Entry object and then Entry.value() is returned.

Anaysis

So that means, keyA and keyB should have same hashCode and should be equal as well.

so keyA.equals(keyB) == true

What about, keyC = Expression.getInstance("0010");

According to your logic keyC.equals(keyA) = true. But because equals is transitive that means keyB.equals(keyC) == true.

That means in your map, 0010 and 0011 map to the same value!? Infact anything starting with "00" will have the same value. So, its same as using 00 as the key for that value. You see where I am going?

In short, I don't see it working on an existing HashMap() implementation.

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If I have not misunderstood you too are suggesting that it ain't possible, right? –  Narendra Pathai Sep 3 '13 at 11:48
    
Not via standard hashCode() and equals() methods. –  rocketboy Sep 3 '13 at 11:51

I agree with RocketBoy .. this will not work with a Map. I'd suggest looking at the Trie datatype. It's not in the standard Java API, so you'll need to write your own implementation or find one online.

Another option would be keeping a List<Expression> in addition to your Map. You could loop through the list doing something like

for (final Expression e : myExpressions) {
    if (myLookup.startsWith(e)) {
        return myMap.get(e);
    }
}
share|improve this answer

Let me restate your problem:

You have n regular expressions over L={0,1}^*

re_1
re_2
..
re_n

and you have stored your objects in a hash map with the strings of the regular expressions (or number) as key.

map.put(re_1, obj_1)
map.put(re_2, obj_2)
..
map.put(re_n, obj_n)

Now you have a given string s matching (utmost) one of the regular expressions and you want a fast

map.get(s) -> s matching regexp re_k -> map.get(re_k) -> obj_k

This will need a way to identify which regular expression it is that your given string s matches.

The easiest way is a loop over the set of all n regular expressions, trying one after another, if your strings matches it.

Any more clever scheme would need to analyze the given regular expressions, most likely the graphs of their equivalent finite automata.

I don't know such a scheme.

It also depends on your regular expressions, maybe they have some easy shape, which can be exploited.

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