Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let see these codes:

HashMap<String, List<String>> testTree = new HashMap<String, List<String>>();                
String k = new String("1");
String v = new String("2");
List<String> children = new ArrayList<String>();
children.add(v);
testTree.put(k, children);
if (testTree.containsKey("1")){
    System.out.println("found!!");
}
else
    System.out.println("No found!!");

Output1: found!!

HashMap<String[], List<String[]>> testTree2 = new HashMap<String[], List<String[]>>();                    
String[] k2 = {"1","2"};
String[] v2 = {"2","3"};
List<String[]> children2 = new ArrayList<String[]>();
children2.add(v2);
testTree2.put(k2, children2);

String[] k3 = {"1","2"};
if (testTree.containsKey(k3)){
    System.out.println("found!!");
}
else
    System.out.println("No found!!");

Output2: No found!!

Why does output1 is "found" & output2 is "No found"? It means HashMap doesn't recognize its key if the key is a String array, but if the key is a String then it will be fine.

I have a need to put a String array into the key of HashMap, so how can we let HashMap to recognize the String array key?

share|improve this question
3  
Shouldn't it be if (testTree2.containsKey(k2)){ –  Ajay George May 16 '13 at 5:26
    
@Ajay : Good catch +1 –  Himanshu Bhardwaj May 16 '13 at 5:30
    
I am very sorry , pls check the code again as i have just modified it. –  Tum May 16 '13 at 5:31
    
I believe this falls under the category of a typo question? –  greedybuddha May 16 '13 at 5:32
    
Hi people, pls check again. –  Tum May 16 '13 at 5:34

3 Answers 3

up vote 3 down vote accepted

The problem is that an array is a new instance of Object and even if two arrays has the same number of elements, their hashcodes will be different.

In short, using an array as key of a Map (HashMap, LinkedHashMap, etc) is a bad idea. Use a different key instead.

share|improve this answer
    
Thax you for u comments –  Tum May 16 '13 at 5:50
    
@downvoter care to explain your downvote? –  Luiggi Mendoza May 21 '13 at 5:30

HashMap uses equals(Object obj) and hashCode() method to save and retrieve objects from HashMap, String class overrides these methods while String[] is an object and it wont so after putting it in HashMap, for String[] hashCode() and equals(Object obj) defualt's implementation by Object class is ran, which cause un predictable results

share|improve this answer
    
for String[] hashCode() and equals(Object obj) defualt's implementation by Object class is ran, which cause un predictable results Your explanation is all over the place. As long as you pass in the same reference to the array, it will work. Of course, in practice, since array's hashCode is based on the reference, using array as key makes it impossible to retrieve the value by key unless you have the same reference to the array. –  nhahtdh May 16 '13 at 5:35
    
so we should notuse String[] as key in HashMap right? –  Tum May 16 '13 at 5:37
    
String and Wrapper Classes are good to use as key because they are immutable. –  Yahya Arshad May 16 '13 at 5:40
    
@MinhHai: Practically, I don't know whether there is any use case with array as key in HashMap. If you want to retrieve the value, whose content of the key is the same as the one your provide, then plain array should not be used. –  nhahtdh May 16 '13 at 5:41

Variable name is wrong. Change testTree to testTree2 in the if condition

            HashMap<String[], List<String[]>> testTree2 = new HashMap<String[], List<String[]>>();                  
            String[] k2 = {"1","2"};
            String[] v2 = {"2","3"};
            List<String[]> children2 = new ArrayList<String[]>();
            children2.add(v2);
            testTree2.put(k2, children2);

            if (testTree2.containsKey(k2)){
                System.out.println("found!!");
            }
            else
                System.out.println("No found!!");
share|improve this answer
    
Hi Craign, i am vey sorry, pls check the code again as I modified it –  Tum May 16 '13 at 5:32

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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