Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I require to get the list of keys where the values are equal for those keys from a HashMap. For example , my hashmap contains the below elements.

Key  Value
1    a,b
2    e,c
3    a,b
4    f
5    e,c
6    c

We need to evaluate as

1,3 contains value (a,b)  
2,5 contains value (e,c)  
4   contains value (f)  
6   contains value (c)

Thx

share|improve this question
    
post the code you have tried so far and where you're stuck –  Liviu T. Dec 18 '11 at 8:30

4 Answers 4

You could invert your hash: build a new hash with the key type being the type of your current map's value, and the value type being a list of your current map's key type.

Iterate over your current map's keys, and push them to the right slot in your new map. You'll then have exactly the mapping you are asking for.

If the values in your current map aren't directly comparable right now, you'll need to find a representation that is. This depends completely on the nature of the data.
One simple approach is to sort the list and use it's toString representation as your new key. This only works if the toString representation of the underlying objects is sane for this purpose.

share|improve this answer
    
Thx Mat .. I too thought of it but in this case , the key itself is a list so how it will work . The keys are treated as different even though it has same value ..can you please give code snippet ? –  JavaUser Dec 18 '11 at 8:28
    
Are the keys or values (of your current map) a list? –  Mat Dec 18 '11 at 8:32
    
The values of the current HashMap is a list –  JavaUser Dec 18 '11 at 8:38
2  
@JavaUser - you don't need a code snippet. Mat's answer is sufficiently detailed to be implemented directly. (SO is not a "write my code for me for free" service.) –  Stephen C Dec 18 '11 at 8:54

You can create other map where your keys a used as values and values as keys. If for example your source map is defined as Map<Integer, String> create map Map<String, List<Integer>>. The list of integers will contain keys (from your source map) that have certain values.

share|improve this answer
    
Yes Alex ..Mat also suggested the same idea. Can you give me code snippet . I guess it wont work as I mentioned for Mats comment. –  JavaUser Dec 18 '11 at 8:32

Building on Mat's answer, if you need to do this operation frequently, use one of the bidirectional map classes from Guava or Apache Commons Collections; e.g. HashBiMap<K,V> or DualHashBidiMap or DualTreeBidiMap. These data structures maintain a pair of maps that represent the forward and inverse mappings.

Alternatively, for a once off computation:

  1. Extract the Map.entries() collection into an array.
  2. Sort the array in order of the values.
  3. Iterate the array, and extract the entry keys for which subsequent entry values are equal.

(This should be O(NlogN) in time and require O(N) extra space ... depending on the sort algorithm used.)

share|improve this answer
    
I am restricted to use those APIS –  JavaUser Dec 18 '11 at 8:34
    
Stephen . this is one time operation . –  JavaUser Dec 18 '11 at 8:44
    
@JavaUser - in that case, here are a couple more hints. 1) There is a method in the Collection API to copy the elements to an array. 2) The Arrays class has a static method that will sort an array. 3) You will need to create and use a custom Comparator to sort the array. –  Stephen C Dec 18 '11 at 10:16

The most basic method will be to:

  1. Get the first key of the HashMap and iterate over the map checking for keys with the same value.
  2. If found, remove that key from the map and store the key in another collection (maybe a Vector).
  3. Then after all other keys are checked, add the current key to that collection.
  4. If no other keys are found, add the current key to that collection.
  5. Then add the keys in that collection to another map with the relevant value. Clear the collection.
  6. Proceed to the next key and do the same.

After doing this, you will end up with what you want.

EDIT: The Code:

    HashMap comp = new HashMap(); // Calculations Done
    Vector v = new Vector(); // Temporary List To Store Keys

    // Get The List Of Keys
    Vector<Integer> keys = new Vector<Integer>();
    Iterator<Integer> it = hm.keySet().iterator();
    while(it.hasNext()) keys.add(it.next());

    // For Every Key In Map...
    for(int i = 0; i < hm.size(); i++) {
        int key = keys.get(i);
        v.add(key);  // Add the Current Key To Temporary List

        // Check If Others Exist
        for(int j = i+1; j < hm.size(); j++) {
            int nkey = keys.get(j);
            if(hm.get(key).equals(hm.get(nkey))) {
                v.add(nkey);
            }
        }

        // Store The Value Of Current Key And The Keys In Temporary List In The Comp HashMap
        String val = hm.get(key);
        String cKey = "";
        for(int x = 0; x < v.size(); x++)
            cKey += v.get(x) + ",";

        // Remove The Comma From Last Key, Put The Keys As Value And Value As Key
        cKey = cKey.substring(0, cKey.length()-1);
        comp.put(cKey, val);

        // Clear The Temporary List
        v.clear();
    }

There is a little problem in this code: Duplicates occur and also the last duplicate seems to be correct.

The output using your example give. (You need to do a little formatting).

{3=a,b, 6=c, 5=e,c, 2,5=e,c, 4=f, 1,3=a,b}
share|improve this answer
    
Cool ..It should work ..Have code snippet? –  JavaUser Dec 18 '11 at 8:36
1  
This is O(N^2) and it destroys the original HashMap. –  Stephen C Dec 18 '11 at 8:42
    
@StephenC Umm, what exactly is O(N^2)? I think its something to with algorithms, but what exactly is it? –  Roshnal Dec 18 '11 at 9:22
    
It means that the time to process the map is proportional to N * N, where N is the number of entries in the map. –  Stephen C Dec 18 '11 at 10:17
    
@Roshnal - I should also point out that it is not in the long term interest of a student to provide him / her code that they can copy and paste as their homework solution. Now, we don't know that this is a homework problem, but there are (IMO) strong signs that it is. –  Stephen C Dec 18 '11 at 10:21

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.