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Description | A Java program to read a text file and print each of the unique words in alphabetical order together with the number of times the word occurs in the text.

The program should declare a variable of type Map<String, Integer> to store the words and corresponding frequency of occurrence. Which concrete type, though? TreeMap<String, Number> or HashMap<String, Number> ?

The input should be converted to lower case.

A word does not contain any of these characters: \t\t\n]f.,!?:;\"()'

Example output |

 Word            Frequency
  a                 1
  and               5
  appearances       1
  as                1
         .
         .
         .

Remark | I know, I've seen elegant solutions to this in Perl with roughly two lines of code. However, I want to see it in Java.

Edit: Oh yeah, it be helpful to show an implementation using one of these structures (in Java).

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Wow, is this blatantly fishing for the answer to a homework question? –  Spencer Kormos Nov 19 '08 at 16:37
20  
Actually, the homework question was to actually implement the two versions--it asked nothing about which data structure is better. However, in effort to maintain the lost art of semi-sincere learning, I am beating around the bush...just trying to glean some insight here! –  jJack Nov 19 '08 at 17:03
    
How the heck did I get six points for that comment above. I know...question for meta.. –  jJack Aug 15 '12 at 3:33
    
I have similar problem, everything the same, I only want to sort by values, not keys... what would be best approach? –  ante.sabo Oct 1 '13 at 19:57

12 Answers 12

up vote 50 down vote accepted

TreeMap seems a no-brainer to me - simply because of the "in alphabetical order" requirement. HashMap has no ordering when you iterate through it; TreeMap iterates in the natural key order.

EDIT: I think Konrad's comment may have been suggesting "use HashMap, then sort." This is good because although we'll have N iterations initially, we'll have K <= N keys by the end due to duplicates. We might as well save the expensive bit (sorting) until the end when we've got fewer keys than take the small-but-non-constant hit of keeping it sorted as we go.

Having said that, I'm sticking to my answer for the moment: because it's the simplest way of achieving the goal. We don't really know that the OP is particularly worried about performance, but the question implies that he's concerned about the elegance and brevity. Using a TreeMap makes this incredibly brief, which appeals to me. I suspect that if performance is really an issue, there may be a better way of attacking it than either TreeMap or HashMap :)

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6  
Jon, don't overestimate sorting. In my experience, sorting even gigantic data sets can be neglected. O(1) insertion beats O(logn) hands down, given enough items. But as always, this is pure speculation without profiling. –  Konrad Rudolph Nov 19 '08 at 18:48
1  
If you can achieve O(1) insertion, then you've got O(n) total insertion time. If you're also suggesting there's no more work involved before you iterate through, you've somehow achieved O(n) sorting of n (relatively arbitrary) items. How does that work? –  Jon Skeet Nov 19 '08 at 22:33
    
Konrad: I think I now see your point. Editing... –  Jon Skeet Nov 20 '08 at 6:18
1  
Jon, I recognize this is ancient history ;P But here's the explanation. Hashtables actually do implement sorting in expected, amortized O(n) time. The proven lower bound of n log n on sort-related operations applies to the comparison model of computation. The hashtable defeats this by taking advantage of the sequential nature of random-access memory in a conventional computer. However! In practise, comparison-based sorting is almost always faster; anecdotally, a good hashtable implementation is a constant factor of 100 more expensive than a mediocre quicksort implementation. –  Mark McKenna Aug 11 '11 at 14:24
1  
@Mark: I'm not quite sure what you're explaining or how the sequential nature of memory can avoid N log N complexity... –  Jon Skeet Aug 11 '11 at 14:28

TreeMap beats HashMap because TreeMap is already sorted for you.

However, you might want to consider using a more appropriate data structure, a bag. See Commons Collections - and the TreeBag class:

This has a nice optimised internal structure and API:

bag.add("big")
bag.add("small")
bag.add("big")
int count = bag.getCount("big")

EDIT: The question of HashMap vs TreeMap performance was answered by Jon - HashMap and sort may be quicker (try it!), but TreeBag is easier. The same is true for bags. There is a HashBag as well as a TreeBag. Based on the implementation (uses a mutable integer) a bag should outperform the equivalent plain map of Integer. The only way to know for sure is to test, as with any performance question.

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2  
Yes, but would it be faster to sort once at the end instead of incurring the cost of keeping things sorted the whole time? –  Herms Nov 19 '08 at 17:19
    
Herms, it would depend on the efficiency of the datastructures involved. In-place sorting an array using random-pivot quicksort is a FAAAST n log n, but Java's TreeMap is an also pretty fast n log n. Java's HashMap works at a pretty slow n. Since we need random access to the elements we are choosing between a fast O(n log t) once, and a slow O(n) once plus a really fast O(t log t); where t < n. The latter would eventually surpass the former as n got large but I think n would have to get very large first. For Google, hash+sort would be better; for school, probably treemap. –  Mark McKenna Aug 11 '11 at 14:33

I see quite a few people saying "TreeMap look-up takes O(n log n)"!! How come?

I don't know how it has been implemented but in my head it takes O(log n).

This is because look-up in a tree can be done in O(log n). You don't sort the entire tree every time you insert an item in it. That's the whole idea of using a tree!

Hence, going back to the original question, the figures for comparison turn out to be:

HashMap approach: O(n + k log k) average case, worst case could be much larger

TreeMap approach: O(k + n log k) worst case

where n = number of words in the text , k = number of distinct words in the text.

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Hash map should be much faster. You should not choose a container based on how you want the items to be arranged eventually; Just sort the list of (word, frequency)-pairs at the end. There will usually be less such pairs to be sorted than words in the files, so asymptotic (and real) performance with a hash map will be better.

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Not necessarily. In the worst case, hash tables have O(n) access time. Whereas self-balancing binary search trees are always O(log n) even in worst case. –  newacct Apr 28 '09 at 17:53
1  
A hashtable really only experiences worst-case performance with poor loading factors and/or a poor hashing function. Good enough hashes and good enough factors are available by default in Java, so this isn't a realistic worry. –  Mark McKenna Aug 11 '11 at 14:35

You can't assign a TreeMap<String,Number> to a variable with the type Map<String,Integer>. Double, Long, etc. can be "put" into a TreeMap<String,Number>. When I "get" a value from a Map<String,Integer>, it must be an Integer.

Completely ignoring any i18n issues, memory constraints, and error handling, here goes:

class Counter {

  public static void main(String... argv)
    throws Exception
  {
    FileChannel fc = new FileInputStream(argv[0]).getChannel();
    ByteBuffer bb = fc.map(FileChannel.MapMode.READ_ONLY, 0, fc.size());
    CharBuffer cb = Charset.defaultCharset().decode(bb);
    Pattern p = Pattern.compile("[^ \t\r\n\f.,!?:;\"()']+");
    Map<String, Integer> counts = new TreeMap<String, Integer>();
    Matcher m = p.matcher(cb);
    while (m.find()) {
      String word = m.group();
      Integer count = counts.get(word);
      count = (count == null) ? 1 : count + 1;
      counts.put(word, count);
    }
    fc.close();
    for (Map.Entry<String, Integer> e : counts.entrySet()) {
      System.out.printf("%s: %d%n", e.getKey(), e.getValue());
    }
  }

}
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Yes, you're right--I'll go back and edit that. What I mean to say is declare it as type Map<String,Integer> instead of Map<String,Number>, then TreeMap<String,Integer> is a subtype of Map<String,Integer>. –  jJack Nov 19 '08 at 19:12

"When a key already exists it has the same performance as a HashMap." - That is just plain wrong. HashMap has O(1) insertion and TreeMap O(n log n). It'll take at least n log n checks to find out if it's in the table!

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import java.io.BufferedReader;
import java.io.DataInputStream;
import java.io.FileInputStream;
import java.io.FileNotFoundException;
import java.io.IOException;
import java.io.InputStreamReader;
import java.io.ObjectInputStream.GetField;
import java.util.Iterator;
import java.util.Map;
import java.util.StringTokenizer;
import java.util.TreeMap;

public class TreeMapExample {

    public static void main (String args[]){
        Map<String,Integer> tm = new TreeMap<String,Integer>();
        try {

            FileInputStream fis = new FileInputStream("Test.txt");
            DataInputStream in = new DataInputStream(fis);
            BufferedReader br = new BufferedReader(new InputStreamReader(in));
            String line;
            int countValue = 1;
            while((line = br.readLine())!= null ){
                line = line.replaceAll("[-+.^:;,()\"\\[\\]]","");
                StringTokenizer st = new StringTokenizer(line, " ");    
                while(st.hasMoreTokens()){
                    String nextElement = (String) st.nextElement();

                    if(tm.size()>0 && tm.containsKey(nextElement)){
                        int val = 0;
                        if(tm.get(nextElement)!= null){
                        val = (Integer) tm.get(nextElement);
                        val = val+1;
                        }
                        tm.put(nextElement, val);
                    }else{
                    tm.put(nextElement, 1);
                    }

                }
            }
            for(Map.Entry<String,Integer> entry : tm.entrySet()) {
            System.out.println(entry.getKey() + " : " + entry.getValue());
            }

        } catch (FileNotFoundException e) {
            // TODO Auto-generated catch block
            e.printStackTrace();
        } catch (IOException e) {
            // TODO Auto-generated catch block
            e.printStackTrace();
        }
    }

}
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I would definitely choose a TreeMap:

  • TreeMap automatically sorts new keys on insertion, no sorting afterwards is needed.
  • When a key already exists it has the same performance as a HashMap.

A TreeSet internally uses a TreeMap so why not use TreeMap directly.

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Depending on what the speed requirements are, you could also use a Trie. But there's no point in implementing one of those if a TreeMap is quick enough.

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consider the frequency of addition or deletion to the data structure. TreeMap would not be ideal if it is high. Apart from the search for existing entry nLn it also undergoes frequent rebalancing.

on the other hand Hash structures are bit flamboyant on memory (over allocates). If you can bite that bullet then go for hash structure and sort when required.

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Why not use TreeSet?

Same ordering concept as a TreeMap, except it's a Set - which, by definition, is "A collection that contains no duplicate elements".

From your problem description, it sounds as if you need a Set, I don't see what keys and values you are mapping together.

This class implements the Set interface, backed by a TreeMap instance. This class guarantees that the sorted set will be in ascending element order, sorted according to the natural order of the elements (see Comparable), or by the comparator provided at set creation time, depending on which constructor is used.

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The word maps to the count. –  erickson Nov 19 '08 at 16:18
    
Also a Java TreeSet is a Java TreeMap, so performance considerations are identical. –  Mark McKenna Aug 11 '11 at 14:39

Basically it depend on the requirement. Sometimes hash map is good sometimes treemap. but hash map is better to use only their is some constraint for overhead to sort it.

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