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 need to split array of string and then save it into smaller string. Plz help me....what i am doing wrong.....

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

       String temp = suburl.get(i);
   String[] data = temp.split(" ");

   Log.i("DATA 0", data[0]);
   Log.i("DATA 1", data[1]);
   Log.i("DATA 2", data[2]);
 }

here

 public static ArrayList<String> suburl = new ArrayList<String>();

where,

   suburl.get(0) = "alex 21 engineer"
   suburl.get(1) = "mike 22 lawyer"
   suburl.get(2) = "sunny 26 deisnger"
   suburl.get(3) = "kim 24 painter"

and

   String[] data;

But what i am getting error when splitting is .......

  01-19 20:35:09.820: E/AndroidRuntime(1672): Caused by:    java.lang.ArrayIndexOutOfBoundsException
  01-19 20:35:09.820: E/AndroidRuntime(1672):   at  flash.com.MainActivity.onCreate(MainActivity.java:119)
  01-19 20:35:09.820: E/AndroidRuntime(1672):   at android.app.Instrumentation.callActivityOnCreate(Instrumentation.java:1047)
  01-19 20:35:09.820: E/AndroidRuntime(1672):   at android.app.ActivityThread.performLaunchActivity(ActivityThread.java:1615)
share|improve this question
    
put it in a unit test and debug. No guesswork needed. –  kostja Jan 19 '12 at 15:19
1  
what's the line causing the "index out of bound"? –  Savino Sguera Jan 19 '12 at 15:19
    
at this point, Log.i("DATA 0", data[0]); Log.i("DATA 1", data[1]); –  Programmer Jan 19 '12 at 15:21
    
It is working fine for me. Are you sure you are getting error at String[] data? –  Nambari Jan 19 '12 at 15:22
    
yes...if we have this data, its causing me the error, suburl.add("alex 21 engineer"); suburl.add("xyz 21 engineer"); suburl.add("tim 21 engineer"); suburl.add("gary 21 engineer"); –  Programmer Jan 19 '12 at 15:26
show 2 more comments

5 Answers 5

What I think is that problably, not all your strings have two spaces. Just do not do things like data[x]. Use another loop to use those strings.

share|improve this answer
add comment

This works for me, I am not sure what's wrong. You can cross check the input data again.

 List<String> suburl = new ArrayList<String>();
 suburl.add("alex 21 engineer");     
 suburl.add("xyz 21 engineer");      
 suburl.add("tim 21 engineer"); 
 suburl.add("gary 21 engineer");
 for(String temp : suburl) {
    String[] data = temp.split(" ");
    System.out.println("DATA 0 " +  data[0]);
    System.out.println("DATA 1 " + data[1]);
    System.out.println("DATA 2 " + data[2]);
}
share|improve this answer
    
single isntace woudl work fine...but multiple wont, suburl.add("alex 21 engineer"); suburl.add("xyz 21 engineer"); suburl.add("tim 21 engineer"); suburl.add("gary 21 engineer"); –  Programmer Jan 19 '12 at 15:25
    
I tried with more data, it works for me. –  Vaandu Jan 19 '12 at 15:29
add comment

If you set your data in the ArrayList like this:

   suburl.get(0) = "alex 21 engineer"
   suburl.get(1) = "mike 22 lawyer"
   suburl.get(2) = "sunny 26 deisnger"
   suburl.get(3) = "kim 24 painter"

I think you may want to change it and do suburl.add("alex 21 engineer");

share|improve this answer
    
no its just for illustration....i wanted to show that it contains this value... –  Programmer Jan 19 '12 at 15:22
add comment

It is working fine for me:

 public class TestClass {

        public static void main(String args[]) {
        ArrayList<String> suburl = new ArrayList<String>();


      suburl.add("alex 21 engineer");
   suburl.add("xyz 21 engineer"); 
   suburl.add("tim 21 engineer"); 
   suburl.add("gary 21 engineer");

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

           String temp = suburl.get(i);
       String[] data = temp.split(" ");

         System.out.println(data[0]);
         System.out.println(data[1]);
         System.out.println(data[2]);
     }

Results:

   alex
21
engineer
xyz
21
engineer
tim
21
engineer
gary
21
engineer
share|improve this answer
add comment

Yuo must replace i<suburl.size(); to i<suburl.size() - 1;

share|improve this answer
add comment

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.