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I'm receiving a null pointer exception from some code I've wrote, I cannot see the reason for the exception. This is my code:

import java.util.Scanner;

public class SearchingFilesMain {

public static void main(String[] arg) {

    int checker4 = 0;
    String checker3 = "";
    String checker2 = "";
    String checker1 = "";
    String checker = "";

    try {
        Scanner scan = new Scanner(new BufferedReader(new FileReader(

        while (checker != null) {

            String pattern = "Array Start";
            checker = scan.findWithinHorizon(pattern, 0);

            if(checker.equals("Array Start")){

                String pattern2 = "Array Size";
                checker3 = scan.findWithinHorizon(pattern2, 300);

                if(checker3.equals("Array Size")){                      
                    checker4 = Integer.parseInt(scan.findInLine("(10000|\\d{1,4})"));

                }else{System.out.println("no array size");}
    }else{System.out.println("no array size");}}}catch (FileNotFoundException e) {}}}

This is the error i get on the console:

Exception in thread "main" java.lang.NullPointerException
at SearchingFilesMain.main(

This error occurs at this line of the code:

if(checker3.equals("Array Size")){

This makes no sense to me, as surely if checker3 is not equal to the text it will simply move onto the else statement and go from there, rather than just throw null pointer exception and stop the program? Am i wrong in thinking this?

Anyone got any ideas on why this is happening?

share|improve this question
Please check with "checker3" its get null value from checker3 = scan.findWithinHorizon(pattern2, 300); – Janny Sep 10 '13 at 11:13

4 Answers 4

up vote 6 down vote accepted

Though you have initialized checker3 with empty string, it is overrited by checker = scan.findWithinHorizon(pattern, 0); which seems to be returning null.

To avoid NullPointerException you should add null check in your if statement -

if(checker!=null && checker.equals("Array Start")){
share|improve this answer
okay thank you, yeah i realised it was returning null because that's precisely what it should return, but i couldn't see how it was managing to throw the null pointer exception. Thank you for clarifying :D – user2682570 Sep 10 '13 at 11:15
"Array Start".equals(checker) is more concise as there's no need to explicitly check for null. – Qwerky Sep 10 '13 at 11:23

scan.findWithinHorizon(pattern, 0) may returning null into checker3 and
calling equals() on it gives you NullPointerException.

If you want you ignore this exception,change your condition to

 if("Array Size".equals(checker3)){

here the condition is false when checker3 is not equals to "Array Size" and also when checker3 is null, otherwise it is true

share|improve this answer

In your case, checker3 = scan.findWithinHorizon(pattern2, 300); causes it to be null

If checker3 is not initalized, it will be null, and calling a method on reference variable that refer to null will result into NullPointerException.

share|improve this answer
okay but why isn't checker3 initialized then? It should be initialized before the entire while statement. – user2682570 Sep 10 '13 at 11:12
it is initialized to a blank string before while loop, but in while loop the call to findWithinHorizon is returning null – Prasad Kharkar Sep 10 '13 at 11:13
cheers, sorted it now :3 – user2682570 Sep 10 '13 at 11:19
@user2682570 happy learning – Prasad Kharkar Sep 10 '13 at 11:20
checker3 = scan.findWithinHorizon(pattern2, 300); 

I can only assume that the above line of code is assigning a null value to checker3.

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