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I have a list of strings in my (Android) Java program, and I need to get the index of an object in the list. The problem is, I can only find documentation on how to find the first and last index of an object. What if I have 3 or more of the same object in my list? How can I find every index?

Thanks!

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what about: yourList.indefOf(yourObjectInList); I am using java.util.ArrayList and method indexOf(..) works just fine –  To Kra Apr 8 at 11:45

3 Answers 3

up vote 6 down vote accepted

You need to do a brute force search:

  static <T> List<Integer> indexesOf(List<T> source, T target)
  {
     final List<Integer> indexes = new ArrayList<Integer>();
     for (int i = 0; i < source.size(); i++) {
       if (source.get(i).equals(target)) { indexes.add(i); }
     }
     return indexes;
  } 

Note that this is not necessarily the most efficient approach. Depending on the context and the types/sizes of lists, you might need to do some serious optimizations. The point is, if you need every index (and know nothing about the structure of the list contents), then you need to do a deathmarch through every item for at best O(n) cost.

Depending on the type of the underlying list, get(i) may be O(1) (ArrayList) or O(n) (LinkedList), so this COULD blow up to a O(n2) implementation. You could copy to an ArrayList, or you could walk the LinkedList incrementing an index counter manually.

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How can I optimize? My list is around 8,000 items. This code would run in a thread, but still, I don't want to show a "Please wait..." dialog forever. –  strange quark Feb 27 '11 at 5:36
    
1) Don't optimize until you have a performance goal and can measure; 2) If you have an ArrayList, the above should work fine; 3) If not, suggest you either switch to using an ArrayList OR adjust as I suggest above... –  andersoj Feb 27 '11 at 5:38
    
if index of every matched element is required then every element of the list has to be checked. what could be a another way –  Javanator Feb 27 '11 at 5:39
    
Alternatively, maybe you need to maintain this list as a sorted/ordered list, in which case a more efficient solution is quite a bit easier. Say more about your application -- what is this a list OF? –  andersoj Feb 27 '11 at 5:40
    
Cool, thank's guys. I'll give this a go and see how it works out! –  strange quark Feb 27 '11 at 5:43

If documentation is not helping me in my logic in this situation i would have gone for a raw approach for Traversing the list in a loop and saving the index where i found a match

 ArrayList<String> obj = new ArrayList<String>();


 obj.add("Test Data"):  // fill the list with your data

 String dataToFind = "Hello";

 ArrayList<Integer> intArray = new ArrayList<Integer>();

 for(int i = 0 ; i<obj.size() ; i++)
 {
    if(obj.get(i).equals(dataToFind)) intArray.add(i);     
 } 

 now intArray would have contained all the index of matched element in the list
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If the size of list is big then this will need optimization to apply . else for small size list this wont create a problem –  Javanator Feb 27 '11 at 5:28

An alternative brute force approach that will also find all null indexes:

static List<Integer> indexesOf(List<?> list, Object target) {
    final List<Integer> indexes = new ArrayList<Integer>();
    int offset = 0;
    for (int i = list.indexOf(target); i != -1; i = list.indexOf(target)) {
        indexes.add(i + offset);
        list = list.subList(i + 1, list.size());
        offset += i + 1;
    }
    return indexes;
}
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