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I have a LinkedList that contains many objects. How can I find the number and frequency of the distinct elements in the LinkedList.

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1  
iterate through the list and count objects by their hash? –  Minras Mar 31 '12 at 22:46
    
How do you want to report the result? i.e. is System.out.println(node, frequency) acceptable? –  kasavbere Mar 31 '12 at 22:58
    
@kasavbere Yeah that would be acceptable –  rmp2150 Mar 31 '12 at 23:07

4 Answers 4

up vote 3 down vote accepted

You can iterate the list with a for-each loop while maintaining a histogram.

The histogram will actually be a Map<T,Integer> where T is the type of the elements in the linked list.

If you use a HashMap, this will get you O(n) average case algorithm for it - be sure you override equals() and hashCode() for your T elements. [if T is a built-in class [like Integer or String], you shouldn't be worried about this, they already override these methods].

The idea is simple: iterate the array, for each element: search for it in the histogram - if it is not there, insert it with value 1 [since you just saw it for the first time]. If it is in the histogram already, extract the value, and re-insert the element - with the same key and with value + 1.

should look something like this: [list is of type LinkedList<Integer>]

Map<Integer,Integer> histogram = new HashMap<Integer, Integer>();
for (Integer x : list) {
    Integer value = histogram.get(x);
    if (value == null) histogram.put(x,1);
    else histogram.put(x, value + 1);
}
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Thanks for your response. How do I iterate a list to a histogram? If you could point me to some documentation I would greatly appreciate it. –  rmp2150 Mar 31 '12 at 22:51
    
@rmp2150: Iterate the list using for-each loop. I added documentation for it in my answer [first line]. I also added a code snap how to build the histogram. –  amit Mar 31 '12 at 22:56
    
Thank you so much. I'm still fairly new to Java and I've never used hashmaps before. Thanks for thoroughly explaining the process. –  rmp2150 Mar 31 '12 at 23:05
    
@rmp2150: You are most welcome. I'd recommend you to read the links I provided - and get familiar with java.util package - there are some very useful things thers, that you will surely need to use many times. –  amit Mar 31 '12 at 23:07
    
I definitely will check out the documentation. Thanks again! –  rmp2150 Mar 31 '12 at 23:21

A simpler variation of the histogram solution with a Guava Multiset:

Multiset<Integer> multiset = HashMultiset.create();
multiset.addAll(linkedList);

int count = multiset.count(element); // number of occurrences of element
Set<Integer> distinctElements = multiset.elementSet();
  // set of all the unique elements seen

(Disclosure: I work on Guava.)

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@amit's answer is good, but I want to share a slight variation (and can't format a block of code in comment - otherwise this would just be a comment). I like to make two passes, one to create the histogram elements and the second to populate them. This feels cleaner to me, although it may be less efficient.

Map<Integer,Integer> histogram = new HashMap<Integer, Integer>();
for (Integer n : list)
    histogram.put(n, 0);
for (Integer n : list)
    histogram.put(n, histogram.get(n) + 1);
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The LambdaJ Library offers a few interesting methods to query collections very easily as well:

List<Jedi> jedis = asList(
        new Jedi("Luke"),  new Jedi("Obi-wan"), new Jedi("Luke"), 
        new Jedi("Yoda"), new Jedi("Mace-Windu"),new Jedi("Luke"), 
        new Jedi("Obi-wan")
        );

Group<Jedi> byName = with(jedis).group(Groups.by(on(Jedi.class).getName()));
System.out.println(byName.find("Luke").size()); //output 3
System.out.println(byName.find("Obi-wan").size()); //ouput 2
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