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I have an declared an ArrayList a = [1,2,3]. I created another ArrayLList b using the loop below:

for(int i = 0; i<a.size(); i++)
{
      for(int j=i+1; j<a.size();j++)
      {
              b.add("{" + a.get(i)+ "," + a.get(j) + "}");
      }
}

Now the ArrayList b will contain elements [{1,2},{1,3},{2,3}]. Now if I print the statement using System.out.println(b.get(0)), then the output will be {1,2}.

Now I want to to further explore the array such that I can extract 1 and 2 separately. How can I achieve this?

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1  
System.out.println(a.get(0)), then the output will be {1,2}. I do not get this part, it was a typo, and you would write b.get(0) ? –  Quirin Jun 14 '13 at 8:05
    
instead of declaring ArrayList b as a string type you can use array type..... –  pinkpanther Jun 14 '13 at 8:10

5 Answers 5

up vote 1 down vote accepted

create class pair

class Pair{
String a 
String b
....
///setters and getters
} 

now let b will be List<Pair> so instead calling b.add("{" + a.get(i)+ "," + a.get(j) + "}"); you can do simple b.add(new Pair(a.get(i),a.get(j)); then you don't need to play with splitting string and stuff like that, you can easly access your values by doing ie b.get(0).getA() or b.get(0).get()

you can also override method to string in pair

public String toString() {

    return "{" + a+ "," + b + "}";
}

so when you do System.out.println(a.get(0)) you will get exactly same output like before

***EDIT if you want to have a groups of more than 2 elements as you say in comment you can construct your class little bit different

class MyClass{ 
List<Integer> fields = new ArrayList<Integer>();
//two constructors
MyClass(int singleVal)
{
fields.add(singleVal);
}


MyClass(MyClass a, MyClass b)
{
fields.addAll(a.fields);
fields.addAll(b.fields);
}
//getters setters depends what you need


}

both of your list will be list of MyClass, when you populate list a, you create objects by using first constructor, when you want to add elements to your b list you can do b.add(new MyClass(a.(i),a.(j))) but you can also do b.add(new MyClass(a.(i),b.(j))) or b.add(new MyClass(b.(i),b.(j)))

share|improve this answer
    
acutally its a great idea. But like i created element two set from 1-element set....i need to use that 2- element set to create 3-element set and from 3-element set to 4-element set as much as i can. So, defining new strings in class pair will be tough. Is there any solution to it? –  Kris Jun 14 '13 at 8:23
    
when i add it as you say....it gives as error that : "(actual and formal argument lists differ in length)" –  Kris Jun 15 '13 at 12:03
    
that is strange, i just tried this code, i it is working fine for me, try to make class and constructors public, maybe this will help, if not tell me exactly what yo've done, so i tried to replicate this –  user902383 Jun 17 '13 at 8:24

I understand that your array b holds just strings. Use any String tokenizing mechanism to achieve this - either String.split or StringTokenizer

Hint : StringTokenizer performs better

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I am using it...but i m facing problems...will u please read the answer below who have given same reply as yours but there is problem in the code implementation –  Kris Jun 14 '13 at 8:38
"{12,34}".replace("}", "").replace("{", "").split(",");
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You should decompose the presentation from logic.

In your loop you create a pair of element. So create a some type to represent it.

class Pair {

 private int left;
 private int right

 Pair(int left, int right) {
   this.left  = left;
   this.right = right;
 }

 public int getLeft() {
   return this.left;
 } 

 public int getRight() {
   return this.right;
 }

 @Override
 public void toString() {

     return String.format("{%d , %d}",getLeft(),getRight());
 }
}

List list = new ArrayList();

for(int i = 0; i<a.size(); i++)
{
      for(int j=i+1; j<a.size();j++)
      {
              list.add(new Pair(i,j));
      }
}

Then to access (extract) items

int l = list.get(0).getLeft();
int r = list.get(0).getRith();

If you want to display on console the result.

for(Pair p : list) {
  System.out.println(p);
}

About output format


EDIT

AS the OP mentioned in the comment. He would like to have flexible data structure that allow him to store the data.

List<List<Integer> parent = new ArrayList<List<Integer>()

for(int i = 0; i<a.size(); i++)
{

 List<Integer> child = new ArrayList<Integer>();

      for(int j=i+1; j<a.size();j++)
      {
              child.add(a.get(i));
              child.add(a.get(j));
      }

  parent.add(child);
}
share|improve this answer
    
but the problem is that i need to created 3-element sets from the two element set and from 3-elements set i need to create 4-element sets till it is possible. I like your style but how can i achieve this? I mean since i do not know how many k-element sets will be created, i cannot declare parameterised constructors in the class Pair. So, can you give me a good idea please? –  Kris Jun 15 '13 at 10:05
    
There is none information in the question about set creation. So your problem is that you have to create from k-element set a k+1-element set. This mean that your structure should be depend on any array or collection. So instead of having items left and right You create a list of lists. –  Damian Leszczyński - Vash Jun 17 '13 at 8:38
    
I've edited the answer. But if that do not meet your expectation. You should create a new question with better example and scenario use case explanation. –  Damian Leszczyński - Vash Jun 17 '13 at 8:44
String ele = b.get(0);
ele = ele.replace("{", "");
ele = ele.replace("}", "");
StringTokenizer tokens = new StringTokenizer(ele, ",");
while(tokens.hasMoreTokens()) {

    int val = Integer.parseInt(tokens.nextToken());
}
share|improve this answer
    
Thanks for the reply. let me try it –  Kris Jun 14 '13 at 8:15
    
The step two of above code does not work. It generates following error: incompatible types required: java.util.ArrayList found: boolean –  Kris Jun 14 '13 at 8:25
    
Its corrected now –  Mubin Jun 14 '13 at 8:26
    
it generated Exception in thread "main" java.lang.NumberFormatException: For input string: "1,2" eroor –  Kris Jun 14 '13 at 8:35
    
As the numbers are separated by commas, you will have to use comma as the delimiter in StringTokenizer. The default delimiter is semicolon. Update the answer again. –  Mubin Jun 14 '13 at 8:36

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