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I have an array which has been initialised with another.

a1 = a2; //right hand side is actually a method returning an array

I can append the returned array elements to a JTextArea but printing them out produces null in the console.

for (int i = 0; i < a1.lenght; i++) {
    outputTextArea.append(a1[i]);
    System.out.println(a1[i]);
}

Why is this? Thank you.

This is the method:

public String[] searchString(ArrayList<String> content, String string){
    stringArray = new String[content.size()];

    for(int i = 0; i < content.size(); i++){
        if(string.equals(content.get(i))){
            if(content.indexOf(string) == 0) {
                stringArray[i] = content.get(i) + " " + content.get(i+1) + "\n";
            } else if ((content.indexOf(string) > 0) && (content.indexOf(string) < (content.size()-1))) {
                stringArray[i] = content.get(i-1) + " " + content.get(i) + " " + content.get(i + 1) + "\n";
            } else if ((content.indexOf(string)) == (content.size()-1)) {
                stringArray[i] = content.get(i -1) + " " + content.get(i);
            }
        }
    }
    return stringArray;
}
share|improve this question
    
Please construct a minimal test-case. –  Oli Charlesworth Feb 2 '13 at 16:23
3  
show us the method which returns the array and assigns it to a1 –  PermGenError Feb 2 '13 at 16:23
    
Need to see all your code, but a couple of problems. The code sample wouldn't actually work as you've put a1.lenght when it would need to be a1.length. Are you also sure that the RHS is actually returning anything from the method? Do you have the code sample of that method? –  imrichardcole Feb 2 '13 at 16:26
1  
Hint: new Object[SIZE] create a new array of Objects, of size SIZE, with all elements as null. –  amit Feb 2 '13 at 16:26
    
a1.lenght is most certainly a typo in his sample code (not in OP's original code). –  PermGenError Feb 2 '13 at 16:26
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1 Answer

The Output NULL not from a1 but from a2

you have if statement :

if (string.equals(content.get(i))) {
   .....
}   

without else , so if the string != content.get(i) , so it will return null in this index at (a2)

so you may need to initialize a2 with values , or make check like this : if(a1[i] != null)

for(int i = 0; i < a1.lenght; i++){
       if(a1[i]!=null){///////////to avoid the null values
        outputTextArea.append(a1[i]);
        System.out.println(a1[i]);
        }
   }

the second problem you will face in this code (When you repeated your string in content array):

stringArray[i] = content.get(i) + " " + content.get(i + 1) + "\n";

if i = content.size() ,so ( i+1 ) will IndexOutOfBoundsException

share|improve this answer
    
Even when the string is equal to content.get(i) I get null. Also there is no out of bounds exception here as as its being checked to make sure the line you refer to only executes if the string is at index 0 of the array list, the array list is never < 2 in length. –  user1763170 Feb 2 '13 at 19:06
    
in case of your string repeated in content array , for ex: you have in content array ("L", "b" , "L") and the string is "L" , when you in index "2" and you do this: if(content.indexOf(string)==0),it will return True , but actually you in index =2 , in this case it will return out of bounds , that's what i mean –  Alya'a Gamal Feb 2 '13 at 19:24
    
and i try your code , it gave me null but when i enter string in content array , i get at least one value and the rest of content array (a1) and (a2) is null –  Alya'a Gamal Feb 2 '13 at 19:31
    
if string index is 2 then it's != 0 therefore won't return true... –  user1763170 Feb 2 '13 at 20:33
    
in index 2 ,your check is : if(content.indexOf(string)==0) which return true , because according to my above example (content array ("L", "b" , "L") ) ,you check on the index in where the string = "L" and the answer will be index 0 , so please try this example and you will see what i mean –  Alya'a Gamal Feb 2 '13 at 21:20
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