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.

I have an ArrayList in my program and some part of the program I'm parsin an soap object and every item is one tempArraylist.After the item iteration is finished I'm adding this ArrayList into another Arraylist my problem is it's not adding the content it is adding the reference of the tempArray.How can I add the value of array not reference of it.

Here is my code.

for (int i = 0; i < count; i++) 
   {
       tempContents.clear();

       Log.i(TAG , String.valueOf(count));

       Object property = response2.getProperty(i);


       if (property instanceof SoapObject)
       {
           SoapObject category_list = (SoapObject) property;



           for(int j = 0 ; j<tags.size() ; j++)
           {
               if(category_list.getProperty(tags.get(j)).toString().contains("Resim"))
               {
                   String tempResim = "htttp://www.balikesir.bel.tr/";
                   tempResim += category_list.getProperty(tags.get(j)).toString();
                   tempContents.add(tempResim);  
               }
               else
               {
                   if(category_list.getProperty(tags.get(j)).toString().equals("anyType{}"))
                   {continue;}
                   tempContents.add(category_list.getProperty(tags.get(j)).toString());

               }
           }
           for(int k = 0 ;k < tempContents.size() ; k++ )
               Log.i("For ici 5 minare",tempContents.get(k));
           Log.i("For disi 4 minare","Asdas asdas");
           contents.add(tempContents);
       }

    }
share|improve this question
    
Please have a look at my answer Important Notes part, for getting more clearity.It will help you –  Prateek Feb 3 at 13:49
    
Ok I will and thanks for your effort and help. –  Esat Taha Feb 3 at 13:51

2 Answers 2

up vote 2 down vote accepted

Use something like this instead:

contents.add(new ArrayList(tempContents));

Alternative:

contents.add(tempContents.clone());

Alternative 2:

contents.addAll(tempContents);

Choose 1 or 2 for inserting the whole ArrayList as one item and 3 for adding all the items as separate items to the list.

share|improve this answer
    
It works perfectly.Thanks for the help. –  Esat Taha Feb 3 at 13:25
1  
Happy to help ;). Please accept this answer by clicking the check mark to the left if it helped you. –  FD_ Feb 3 at 13:27
    
contents.add(tempContents.clone()); this one is not working on me but new ArrayList is working. –  Esat Taha Feb 3 at 13:28
1  
10 min rules.But I will. –  Esat Taha Feb 3 at 13:29
1  
Output of contents.add and contents.addAll will be different.One adds list and other add elements of list –  Prateek Feb 3 at 13:32

Use public boolean addAll(Collection<? extends E> c)

contents.addAll(tempContents);

What addAll(Collection c) does ?

From Java docs,

/**
 * Appends all of the elements in the specified collection to the end of
 * this list, in the order that they are returned by the
 * specified collection's Iterator.  The behavior of this operation is
 * undefined if the specified collection is modified while the operation
 * is in progress.  (This implies that the behavior of this call is
 * undefined if the specified collection is this list, and this
 * list is nonempty.)
 *
 * @param c collection containing elements to be added to this list
 * @return <tt>true</tt> if this list changed as a result of the call
 * @throws NullPointerException if the specified collection is null
 */

EXAMPLE

List test = new ArrayList();
test.add("A");
test.add("B");
test.add("C");
test.add("D");
List test1 = new ArrayList();
test1.add("E");
test1.add("F");
test1.add("G");
test1.add("H");
test1.add("I");

//test.add(new ArrayList(test1));  // Dont use this if u want to add content and not entire arrayList as its output will be [A, B, C, D, [E, F, G, H, I]]



test.addAll(test1);
System.out.println(test);

Output

[A, B, C, D, E, F, G, H, I]

Important Notes

1. Use test.add(test1.clone()); Only if test1 reference is of ArrayList type and not of List type as List does not implements Cloneable Interface

2. Dont Use test.add(new ArrayList(test1)); ,if u want to add content and not entire arrayList as its output will be [A, B, C, D, [E, F, G, H, I]].

share|improve this answer

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.