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I have following try catch:

try
{
   while(run)
   {
      try
      {
         // try something 
      }
      catch
      {
        // error catch 1
      }
   }
}
catch()
{
   // error catch 2
}
finally 
{
   // DONE
}

As per my under standing after throwing error in error catch 1 it will again continue in while loop till run is true, which some times my code is not doing it goes in finally DONE code. I really don't know how it is happening?

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What exceptions are being caught by the two catches? If one occurs in the inner try-catch that isn't caught there, it will drop to the outer try-catch. –  thegrinner Jun 28 '13 at 12:32
    
catch 1 breaks the loop and exception will caught by its enclosing try block and executes finally block –  Aswin Jun 28 '13 at 12:35
    
It will continue to run the while loop until run is false! –  David Karlsson Jun 28 '13 at 18:44
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2 Answers

The while loop will continue until:

  • run is false, or
  • an exception is thrown in the try block that is not caught in the catch block.

For example:

while(true) {
    try {
        throw new AnException();
    } catch (SomeOtherException e) {}
}

will exit immediately because you don't catch AnException in the catch block (assuming SomeOtherException is not a superclass of AnException).

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As per my under standing after throwing error in error catch 1 it will again continue in while loop till run is true

If you throw any Throwable from catch1 , it goes to the next enclosing catch which can handle that type of Throwable. In that case the loop breaks. If there are no other catch which can catch that type of Throwable , then finally will execute and the control goes to the calling method.

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