Find most appearing string in ArrayList

Question

If I have an ArrayList of these strings...

"String1, String1, String1, String2, String2, String2, String3, String3"

How can I find the most appearing string in this list? If there are any duplicates, I would want to put both into the same list and deal with that accordingly. How could I do this, assuming that the list of strings could be of any size.

This is about as far as I've gotten:

public String getVotedMap() {
        int[] votedMaps = new int[getAvailibleMaps().size()];


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

        int best = 0;

        for(int i = 0; i < votedMaps.length; i++) {
            if(best > i) {
                best = i;
            } else if(best == i) {

            } else {

            }
        }

    }

getAvailibleMaps() is a list of Maps that I would choose from (again, can get any size) Thanks!

Answer 1

Use HashMap

The basic Idea is loading all the values into a hashtable. Hash tables are nice because you can assign a value to a unique key. As we add all the keys to the hashtable we are checking to see if it already exists. If it does then we increment the value inside.

After we have inserted all the elements into the hashtable then we go through the hashtable one by one and find the string with the largest value. This whole process is O(n)

Map<String, Integer> map = new HashMap<String, Integer>();

for(int i = 0; i < array.length(); i++){
   if(map.get(array[i]) == null){
      map.put(array[i],1);
   }else{
      map.put(array[i], map.get(array[i]) + 1);
   }
}
int largest = 0;
String stringOfLargest;
for (Map.Entry<String, Object> entry : map.entrySet()) {
   String key = entry.getKey();
   int value = entry.getValue();
   if( value > largest){
      largest = value;
      stringOfLargest = key;
   }
}

if you want multiple largest strings then instead of just finding the largest and being done. You can add all the largest to a mutable list.

for example:

int largest = 0;
for (Map.Entry<String, Object> entry : map.entrySet()) {
   String key = entry.getKey();
   int value = entry.getValue();
   if( value > largest){
      largest = value;
   }
}
ArrayList<Object> arr = new ArrayList<Object>();
for (Map.Entry<String, Object> entry : map.entrySet()) {
   String key = entry.getKey();
   int value = entry.getValue();
   if( value == largest){
       arr.add(key);
   }
}

arr now stores all the most frequently appearing strings.

This process is still O(n)

Answer 2

Just iterate through the list and keep a HashMap<String,Integer> that counts how many times the string has appeared, eg.

Map<String,Integer> counts = new HashMap<String,Integer>();
for(String s : mostVoted) {
    if(counts.containsKey(s)) {
        counts.put(s,counts.get(s)+1);
    } else {
        counts.put(s,1);
    }
}
// get the biggest element from the list
Map.Entry<String,Integer> e = Collections.max(counts.entrySet(),new Comparator<Map.Entry<String,Integer>>() {

        @Override
        public int compare(Map.Entry<String,Integer> o1, Map.Entry<String,Integer> o2) {
            return o1.getValue().compareTo(o2.getValue());
        }

});
System.out.printf("%s appeared most frequently, %d times%n",e.getKey(),e.getValue());

Answer 3

If you can use java 8, this will give you a list of most frequent strings or throw an exception if the list is empty.

List<String> winners = strings.stream()
        .collect(groupingBy(x->x, counting()))  // make a map of string to count
        .entrySet().stream()
        .collect(groupingBy(                    // make it into a sorted map
                Map.Entry::getValue,            // of count to list of strings
                TreeMap::new, 
                mapping(Map.Entry::getKey, toList()))
        ).lastEntry().getValue();