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I have a Map in java that has strings for both .

Data is like following: <"question1", "1">, <"question9", "1">, <"question2", "4">, <"question5", "2">

I want to sort the map based on its keys. So In the end I will have question1, question2, question3....an so on.

Eventually I am trying to get two strings out of this Map. First String: Questions ( in order 1 ..10) and Second String: Answers (in same order as question).

Right now I have the following:

Iterator it = paramMap.entrySet().iterator();
while (it.hasNext()) {
Map.Entry pairs = (Map.Entry)it.next();
 questionAnswers += pairs.getKey()+",";
}

This gets me the questions in a string but they are not in order...

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1  
what is your target java platform? 1.4? –  dfa May 28 '09 at 18:46

8 Answers 8

Short answer

Use a TreeMap. This is precisely what its for.

If this map is passed to you and you cannot determine the type, then you can do the following:

SortedSet<String> keys = new TreeSet<String>(map.keySet());
for (String key : keys) { 
   String value = map.get(key);
   // do something
}

This will iterate across the map in natural order of the keys.


Longer answer

Technically, you can use anything that implements SortedMap, but except for rare cases this amounts to TreeMap, just as using a Map implementation typically amounts to HashMap.

For cases where your keys are a complex type that doesn't implement Comparable or you don't want to use the natural order then TreeMap and TreeSet have additional constructors that let you pass in a Comparator:

// placed inline for the demonstration, but doesn't have to be an anonymous class
Comparator<Foo> comparator = new Comparator<Foo>() {
  public int compare(Foo o1, Foo o2) {
    ...
  }
}
SortedSet<Foo> keys = new TreeSet<Foo>(comparator);
keys.addAll(map.keySet());

Remember when using a TreeMap or TreeSet that it will have different performance characteristics than HashMap or HashSet. Roughly speaking operations that find or insert an element will go from O(1) to O(Log(N)).

In a HashMap, moving from 1000 items to 10,000 doesn't really affect your time to lookup an element, but for a TreeMap the lookup time will be about 3 times slower (assuming Log2). Moving from 1000 to 100,000 will be about 6 times slower for every element lookup.

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I'm trying to use Treemap and sort String keys based on length. I find I'm getting inconsistent retrieval results. Apparently because TreeMap considers a compareTo result of 0 as "equals"? Not sure how to use it in this case. –  Marc Aug 16 '13 at 16:35
1  
compareTo() result of 0 is 'equals'. If you're writing a comparator that sorts by string length, then you need to return a positive or negative value based on which string is longer, and only return 0 if both strings are the same length. if a and b are strings you can do this like so `return a.length() - b.length()' (or reverse the values if you want them sorted in the other direction). –  Jherico Aug 16 '13 at 20:15
    
Very good answer(s), thumbs up –  Andrea Ligios Nov 19 '14 at 11:34
    
Hello guys, if he/she would to the Map to be orderd by keys, which here is 1,2,3,4 , what is the insertation order.... why not we using LinkedHashSet ? We just put the questions one by one, and it is getting ordered by the order of the insertation. Can some help me out with this ? –  Karoly Jun 19 at 13:15

Assuming TreeMap is not good for you (and assuming you can't use generics):

List sortedKeys=new ArrayList(yourMap.keySet());
Collections.sort(sortedKeys);
// Do what you need with sortedKeys.
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2  
Thanks! I needed to do something like this since my keys were a complex type. –  Ross Hambrick Jul 26 '11 at 16:24

Use a TreeMap!

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14  
+1 - Not agile enough to beat Jherico, Jon, but still pretty good. 8) –  duffymo May 28 '09 at 21:45

Using the TreeMap you can sort the Map.

Map<String, String> map = new HashMap<String, String>();        
Map<String, String> treeMap = new TreeMap<String, String>(map);
for (String str : treeMap.keySet()) {
    System.out.println(str);
}
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If you already have a map and would like to sort it on keys, simply use :

Map<String, String> treeMap = new TreeMap<String, String>(yourMap);

A complete working example :

import java.util.HashMap;
import java.util.Set;
import java.util.Map;
import java.util.TreeMap;
import java.util.Iterator;

class SortOnKey {

public static void main(String[] args) {
   HashMap<String,String> hm = new HashMap<String,String>();
   hm.put("3","three");
   hm.put("1","one");
   hm.put("4","four");
   hm.put("2","two");
   printMap(hm);
   Map<String, String> treeMap = new TreeMap<String, String>(hm);
   printMap(treeMap);
}//main

public static void printMap(Map<String,String> map) {
    Set s = map.entrySet();
    Iterator it = s.iterator();
    while ( it.hasNext() ) {
       Map.Entry entry = (Map.Entry) it.next();
       String key = (String) entry.getKey();
       String value = (String) entry.getValue();
       System.out.println(key + " => " + value);
    }//while
    System.out.println("========================");
}//printMap

}//class
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List<String> list = new ArrayList<String>();
Map<String, String> map = new HashMap<String, String>();
for (String str : map.keySet()) {
 list.add(str);
}
Collections.sort(list);
for (String str : list) {
 System.out.println(str);
}
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We can also sort the key by using Arrays.sort method.

Map<String, String> map = new HashMap<String, String>();
Object[] objArr = new Object[map.size()];
for (int i = 0; i < map.size(); i++) {
objArr[i] = map.get(i);
}
Arrays.sort(objArr);
for (Object str : objArr) {
System.out.println(str);
}
share|improve this answer
    
This is sorting by value and not key. –  raaj Dec 24 '13 at 20:52

Just use TreeMap

new TreeMap<String, String>(unsortMap);
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protected by Gilbert Le Blanc Aug 21 '13 at 8:19

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