Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →

I have a list of arrays of objects....Each array has 4 object in it.

I need to read complete list and put all the arrays which have same value at element[1] in seperate lists.

How to do it?

for instance I have a list 'data'

which has nth number of arrays of objects like

array[0]
array[1]
array[2]
⋮ 
array[n]

each array has 4 values

array[0] has 0,23,BD,100
array[1] has 1,23,FG,200
array[2] has 3,34,GH,400
array[3] has 8,87,UJ,600
⋮ 
array[n] has 98,23,KM,9000

now I need to put array[0], array[1] and array[n] in same list(List1) because they all have same value of 'element 2' i-e '23'

while array[2] in a seperate list(List2) and array[3] in a seperate list(List3)because there is no other array that have similar 'element 2' as of them.

All arrays are Object type.

share|improve this question
    
Why not are you using utility classes of java like ArrayList or any other ? – Vishal K Mar 27 '13 at 17:35
    
I don't know whats the problem here, a very crappy way to do this would be, take out one object from the list, then iterate over the list comparing the values against the one you took out, then add that object to the correspondent list, and repeat until the original list is empty – jsedano Mar 27 '13 at 17:37
    
Vishal I don't have any idea , I have never used List before. – HappyDev Mar 27 '13 at 17:42
    
So, long story short, you need to turn a list of arrays into multiple lists based on the second value? Why are you handling this structure on the first place? can you modify the original list to avoid this overhead? If you're going to turn a list of arrays into multple lists of filtered objects can you handle the possibility of changing your first structure?. – Gamb Mar 27 '13 at 17:44
    
@anakata yes I know this is one way to do it, but I want to know if there is any clean and easy way to do it using any utility classes. – HappyDev Mar 27 '13 at 17:44

I figured that you were getting the values like this because you were selecting a subset of attributes from one or more tables. Indeed, you end up with a list of arrays of type Object. This is because each attribute has its own type so the common supertype that can handle such an undefined situation is Object itself.

There are two approaches you can take here. One will require an enhanced interaction with the database and the other one will replace this query tuning with additional processing to prepare the data you just retrieved.

Option 1: Parametrize your query a little further

Add another condition to your query, where you define that second attribute (element 2 as you named it). The query will then have this extra condition:

AND element2 = :element2

This way, you can determine element 2 when querying for the data, obtaining each subset of related data directly. This approach will require a previous knowledge of the values you want to retrieve and as much queries as values.

The values can be retrieved with a simple query:

SELECT DISTINCT(element2) FROM <YOUR_TABLES_HERE>

Each time you execute the query, you'll still obtain a List of Object[] but this time, they'll all have the same value for element 2.

Option 2: Process the data you just obtained

If changing your query is not an option (or if by any reason there's not a simple way of knowhing the different values element 2 can take) you will have to process the raw data you just obtained from the database.

I recommend you mix a Map with some Lists. Assuming element 2 is located under the index 1 of your arrays, you'll have to iterate over that list, check the value and add it to a map:

Map<Long, List<Object[]>> queriedResultsMap = new HashMap<Long,List<Object[]>>();
//Iterate over the obtaines database values
for(Object[] currentArray : yourListOfObject) {
    if(!queriedResultsMap.containsKey(currentArray[1])) {
        //No element with that value for "element 2" is on the map yet,
        //so a new container (List) is created.
        queriedResultsMap.put(currentArray[1],new ArrayList<Object[]>());
    }
    //Adds the element to the associated list.
    queriedResultsMap.get(currentArray[1]).add(currentArray);
}

This simple piece of code iterates over your current list of arrays and adds each one of them to the list associated to the valye of element 2 which is the key of the map. In this map, the key is the value of element 2 and the associated value is a List containing all the found registries that have the corresponding value set for element 2.

The if statement creates a new list each time you encounter a new value for element 2 and associates it to that value.

Finally, to use the data, you just do this:

queriedResultsMap.get(element2Value);

Where element2Value contains the value you want to get the results for. The list returned by the map contains all of the results that have the particular value of element 2. If no list is returned (the get method returns null) you know that the query you just ran returned no results for that value of element 2.

The map allows a direct association between each found value for element 2 and also gives you a direct insight of all the obtained values while giving you the chance to instantly check if a particular value was retrieved. To know exactly which values of element 2 were found just obtain the keySet of your map and to know if a given value was retrieved use the containsKey method of the Map.

Use whichever approach suits you best.

share|improve this answer

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.