-1

I have the following code: my new code here

try{
   int a=10, b=0;
   if(a<b) {
      throw new Exception("false");
   }
   String n = "30.0";
   float ff = (float) 0.0;
   if (Float.parseFloat(n) < ff) {
       throw new Exception("big");
   } else {
       throw new Exception("add");
   }
   System.out.println("hai"); //unreachable code
} catch(Exception e){
    e.printStackTrace(System.err);
}

Could someone please help me understand why the last statement is unreachable and how to solve this?

1
  • Are you asking why is that code unreachable?
    – Eran
    Jun 11, 2015 at 7:48

4 Answers 4

2

What's important to understand here is that when you throw an exception, the rest of the code is skipped. In this case this means that System.out.println("hai"); is always skipped, since you throw an exception in both branches of the if-statement. If it's always skipped, it's unreachable!

Here's an illustration:

try {
   int a=10, b=0;
   if(a<b) {
      throw new Exception("false");
   }
   String n = "30.0";
   float ff = (float) 0.0;
   if (Float.parseFloat(n) < ff) {
       throw new Exception("big");  ----------------------.
   } else {                                               |
       throw new Exception("add");  ------------------.   |
   }                                                  |   |
   System.out.println("hai"); //unreachable code      |   |
} catch(Exception e){                                 |   |
    /* execution continues here */   <----------------+---'
    e.printStackTrace(System.err);
}

If you want the "hai" to be reachable, you'll have to move it to a place where it's not always skipped. For instance to below the catch block:

try {
   int a=10, b=0;
   if(a<b) {
      throw new Exception("false");
   }
   String n = "30.0";
   float ff = (float) 0.0;
   if (Float.parseFloat(n) < ff) {
       throw new Exception("big");
   } else {
       throw new Exception("add");
   }
} catch(Exception e){
    e.printStackTrace(System.err);
}
System.out.println("hai"); // reachable!
7
  • But if i will get exception .. then "Hai" statement is not execute.. thats is my concept..
    – Arjun
    Jun 11, 2015 at 9:53
  • Right. This is because the exception makes the code "terminate" before reaching the "Hai" line. The ASCII arrow in my answer indivates the control flow.
    – aioobe
    Jun 11, 2015 at 9:59
  • could you please explain me...i am not understood.. i am new for java developing..
    – Arjun
    Jun 11, 2015 at 10:02
  • If you're stuck on something particular, and have a specific follow-up question, feel free to write it here.
    – aioobe
    Jun 11, 2015 at 10:29
  • First of all: It's impossible to force the compiler to accept this program. As it stands it's simply not valid Java code. So, to "solve" the issue (i.e. make sure "Hai" is printed) you can wrap the throw-code in a try/catch block as I've shown in the second code snippet in my answer. (If this doesn't solve your issue in a desirable way, then please clarify how you want the program to work.)
    – aioobe
    Jun 11, 2015 at 11:15
1

You throw an exception, therefore you will never reach the print

0

You are throwing the Exeption, so method execution will stop there itself and return from that point.

To solve you cab use try-catch to catch the Exception.

0

Your code always throws one exception or the other, which is why the code following is never reached.

how to solve this issues

Don't throw an exception in one of your cases, or don't have code after code that always throws exceptions.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.