2

I need a way to do the same operation with much less code. This will help me to understand Java in much better way. OUTPUT of the below code will be: new, boy, 3pm, to

public class substring {

public static void main(String[] args) {
    // TODO Auto-generated method stub
    String str= "a new, boy with new haircut boy, 3pm to boy 8pm margian 3pm to ghost";
    String concant = "";
    int occurance =0;
    str = str.replaceAll(",", "");
    System.out.println(str);
    String[] subStr = str.split("\\s");
    for(String sub:subStr)
    {
        for (String sub1:subStr) {
            if(sub.equals(sub1))
            { 
                 occurance++;
                    
                if(occurance>=2)
                {
                    if(!concant.contains(sub))
                    {
                        if(concant!= "")
                          concant = concant +", "+ sub;
                        else
                            concant = sub;
                              
                    }
                }
            }
            
        }   
        occurance = 0;  
    }
    System.out.println(concant);
    
}

}
5
  • You can use hashing for efficient checking. Loop through all the words and check if the word is present, if its not add it to the hashtable else add it to am empty string. – AKSingh Mar 12 at 19:48
  • We can use hashmap. However, in the output there is only words and not their frequency, so hashset should work too. – AKSingh Mar 12 at 20:10
  • It won't give you all words with a frequency of 2 or more, looks like that's what the code is doing. – Nikolai Dmitriev Mar 12 at 20:18
  • Need a better way to find repeated words in a string Then forget about frequency counts and use HashSets. – WJS Mar 12 at 20:59
  • Please except one of the answers – Chris Maggiulli May 20 at 13:18
6

Solution

Instead of using nested loops you can take advantage of the functionality provided by a set data structure. A set is a collection that cannot contain duplicates. So by checking the truthiness of the add method you can determine duplicates

String[] listContainingDuplicates = "a new, boy with new haircut boy, 3pm to boy 8pm margian 3pm to ghost".split("[,\\s]+");
    
final LinkedHashSet<String> duplicates = new LinkedHashSet<String>(); 
final Set<String> temp = new HashSet<>();
    
for (String current : listContainingDuplicates){
    if (!temp.add(current))
        duplicates.add(current);
}
    
System.out.println(duplicates.toString());

Treat this as pseudo code. There may be edge cases that you want to handle

4
  • Try it with a similar string as shown in the question. the new dog, dog new – WJS Mar 12 at 20:54
  • If it's important to keep the order of duplicate words, LinkedHashSet should be used for duplicates Also, non-word characters (e.g. commas) should be removed or treated as delimiters. – Alex Rudenko Mar 12 at 20:57
  • 2
    @NikolaiDmitriev It doesn't miss the point. The question asks for a better method. And this is it (once the string is correctly split). – WJS Mar 12 at 21:00
  • Thanks for feedback. I added a regex to better meet requirements, and used a LinkedHashSet. It is my opinion that this answer meets the requirements outlined by Suvidh and at least serves as counter to @m.antkowicz functional solution – Chris Maggiulli Mar 12 at 21:05
2

Just split by spaces and group using streams, tthen filter these having less occurrences than two

String str= "a new, boy with new haircut boy, 3pm to boy 8pm margian 3pm to ghost";
str = str.replaceAll(",", "");

List<String> duplicates = Arrays.stream(str.split(" "))
    .filter(s -> !s.isEmpty())
    .collect(Collectors.groupingBy(Function.identity(), Collectors.counting()))
    .entrySet()
    .stream()
    .filter(e -> e.getValue() > 1)
    .map(e -> e.getKey())
    .collect(Collectors.toList());
    
3
  • you nailed it, respect – Nikolai Dmitriev Mar 12 at 20:12
  • 1
    It's unnecessary to "delete" the commas. Just use this. List<String> duplicates = Arrays.stream(str.split("[,\\s]+")) – WJS Mar 12 at 20:55
  • Thaks all this is useful. – Suvidh Mar 13 at 5:47

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.