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I have a two ArrayList given below as sample. AccVO: compareKey,Amount fields

List 1:

AccVO[001,500]                                                   
AccVO[002,600]                                                   
AccVO[003,800]

List2:

AccVO[001,100]                                                                   
AccVO[001,100]                                                                   
AccVO[001,300] 
AccVO[003,300]  
AccVO[003,300]  
AccVO[003,200]
AccVO[005,300]  
AccVO[005,300]

I have sorted the two lists. I have to compare the two lists with the compare key and fetch the records of List2 to insert into database.

Sample Code:

for(AccVO accvo1 : List1){
    for(AccVO accvo2 : List2){
    if(accvo1.getCmpkey().equals(accvo2.getCmpkey())){	   
            //insert the recs into the table    		
           }    	
     }
}

Since my list size will be larger i.e handling millions of records, i need some optimistic logic in looping the records.

Thanking you in advance Prasanna

share|improve this question
1  
Maps aren't a option for both lists? – Thomas Jung Dec 8 '09 at 8:14
    
@Vinegar formatting? – Amarghosh Dec 8 '09 at 8:18
    
Not everyone is able to understand what "lakhs" really is? Its better to consent with the standard language, unless there is no other better substitute. But then a brief definition is necessary. – Adeel Ansari Dec 8 '09 at 8:20
    
yeah, but i was asking about the code formatting - your edit removed it. – Amarghosh Dec 8 '09 at 8:24
    
In English, "lakhs" sounds like "lax" which means "extremely negligent". Be careful :) – BalusC Dec 8 '09 at 19:13

Because your lists are sorted, you can use an index into both arrays and increment only the smaller key each time:

int i = 0,j = 0;

while (i < List1.size() && j < List2.size()){
  int x = List1.get(i).getCmpKey().CompareTo(List2.get(j).getCmpKey();
  if (x == 0){ 
    //add record
    j++;
  }else if(x < 0){
    i++;
  }else{
    j++;
  }
}
share|improve this answer
1  
+1 - given that the inputs are already sorted, this is O(N), compared with O(NlogN) for binary search and O(N) with O(N) extra space for HashSets. The only case where the other approaches might be better is when one of the lists is tiny compared with the other one. – Stephen C Dec 8 '09 at 8:33
1  
I think you forgot an extra check in the loop for j < list2.size(). I'd prefer a simple solution that uses some more memory over one that's "complicated" enough for such bugs to slip in... – Wouter Coekaerts Dec 8 '09 at 8:46
    
@Stephen - Wouldn't it be O(N+M), O(NlogM), O(N) and O(N+M) respectively? – steadfastbuck Dec 8 '09 at 8:59
    
@Wouter: Everything should be made as simple as possible, but not simpler – Adriaan Koster Dec 8 '09 at 9:30
1  
you should add j++; in the add record part – Zappi Dec 8 '09 at 9:31

If your equals (and hashCode) implementation are based on getCmpkey() you can use Sets.

set1 = new HashSet(list1)
set2 = new HashSet(list2)
set2.retainAll(set1);
for(AccVO a : set2) //insert

This will have O(1) for individual removes (O(n) for n elements in set1).

share|improve this answer
    
This will use a bit of extra memory for the hashsets. But unless this is really performance critical code, I prefer this solution over the one from steadfastbuck because it is a lot easier to read (and less tricky, and shorter). – Wouter Coekaerts Dec 8 '09 at 8:40
1  
Actually, the bit of extra memory will be a lot more. A HashSet is a fancy HashMap wrapper. So n entries will have n Entry objects, arrays for buckets etc. That's a lot of work for the garbage collector. – Thomas Jung Dec 8 '09 at 8:45
    
Dos HashSet work for the second list? We have multiple records for the same compareKey value. But I don't understand this AccVO object (array?) anyway. – Andreas_D Dec 8 '09 at 9:37
    
@Andreas_D I suppose this is a glitch in the question. The database will not be happy if you tried to insert a non-unique compound key anyway. – Thomas Jung Dec 8 '09 at 9:53

I would suggest using a HashMap for the second list.

share|improve this answer

If the type of the Lists is not specified you should use Iterators to traverse them. This will give you guaranteed O(n) (linear) performance even if you use a List implementation that's not backed by an Array (assuming it you can iterate in O(n) time).

For example, if you happened to be given a LinkedList as your list class, the following implementation is still O(n) but an implementation that used get() to index into the list would be O(n^2). So if you list sizes were each 1 million, this implementation would be 1 million times faster than an indexing implementation.

Iterator i1 = list1.iterator();
Iterator i2 = list2.iterator();
if (i1.hasNext() && i2.hasNext() {
   AccVO v1 = i1.next();
   AccVO v2 = i2.next();
   while (true) {
      int i = v1.getCmpKey().compareTo(v2.getCmpKey());
      if (i == 0) {

         // insert record into DB here

         if (i2.hasNext()) {
            v2 = i2.next()
         } else {
            break;
         } 
      } else if (i < 0) {
         if (i1.hasNext()) {
            v1 = i1.next();
         } else {
            break;   
         }
      } else {
         if (i2.hasNext()) {
            v2 = i2.next();
         } else {
            break;
         }
      }
   }
}
share|improve this answer

I think I'd do something along the lines of

Set<Integer> goodKeys = new HashSet<Integer>(); 
for (AccVO a : List1) 
    goodKeys.add(a.getCmpkey());
for (AccVO a : List2)
    if (goodKeys.contains(a.getCmpkey()))
    	// insert the recs into the table

I could then hang on to the list of good keys, if desired, extract the first chunk into getKeys(List<AccVO> list), extract the remainder into insertRecordsForKeys(Set<Integer> keys), etc. Easier to test, easier to debug, easier to reuse, easier to work with.

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