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What is wrong with the below code? It will throw NullPointerException while execution time.

public class Test
{
  public String method1()
  {
    return null;
  }
  public Integer method2()
  {
    return null;
  }
  public static void main(String args[])throws Exception
  {
    Test m1 = new Test();
    Integer v1 = (m1.method1() == null) ? m1.method2() : Integer.parseInt(m1.method1());
  }
}
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Integer.parseInt(m1.method1()); - error – Zagorulkin Dmitry Jan 25 '13 at 9:56
8  
What is MyTest? – Warwick Masson Jan 25 '13 at 9:56
    
@AndrewThompson hah:) – Zagorulkin Dmitry Jan 25 '13 at 9:56
    
@WarwickMasson yes. MyTest m1 = new Test(); – Zagorulkin Dmitry Jan 25 '13 at 9:57
    
For better help sooner, post an SSCCE. – Andrew Thompson Jan 25 '13 at 9:58

parseInt returns int. That makes the compiler to unbox m1.method2() but it is null so it throws:

Integer v1 = (m1.method1() == null) ? m1.method2() : (Integer)Integer.parseInt(m1.method1());
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The type of a a ? b : c is the type of the last value c. In this case it's an int. This means that even though b is being chosen it is being unboxed and then re-boxed into an Integer. As the value is null, this fails.

Here is a similar example which may help (or be more confusing)

Integer i = 1000;

// same as Integer j = Integer.valueOf(i == 1000 ? i.intValue() : 1000);
Integer j = i == 1000 ? i : 1000;
System.out.println(i == j);

Integer k = i == 1000 ? i : (Integer) 1000;
System.out.println(i == k);

prints

false
true

The reason the first result is false, is that expression has a type of int (the last argument) which means i is unboxed to be an int and reboxed so it can be assigned to the Integer. This results in a different object (There are command line args which would increase the cache size and change this) In the second example the type is Integer so it is not unboxed and the object is the same.

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1  
Nice answer. I didn't know: This means that even though b is being chosen it is being unboxed and then re-boxed into an Integer. Never stop to learn! – ThanksForAllTheFish Jan 25 '13 at 10:02
    
+1 Nice explanation. – Subhrajyoti Majumder Jan 25 '13 at 10:04
1  
@mardavi Added an example which shows it is being unboxed and reboxed. – Peter Lawrey Jan 25 '13 at 10:05
    
@PeterLawrey.. +1 Learnt something new today. Nice :) didn't knew that the result type is the type of C. Great answer, specially the code illustration. – Rohit Jain Jan 25 '13 at 10:09
1  
@PeterLawrey clearly understand your explanation.thank you so much:-) – sprabhakaran Jan 25 '13 at 10:13

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