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Why does the following line execute the ArrayIndexOutOfBoundsException without showing the precedent string? Test.java

// executing the java file with: java Test one

System.out.println("Indeed!"+args[1]);

So basically "Indeed" does not get printed out before the Exception as I thought it would. Maybe because all the statements are executed atomically by the JVM? Do you confirm it? If so, do you know why it's been designed in that way?

Thanks in advance.

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PS: I am super aware that it gives an Exception as it's args[1] and there is only 1 arg instead of 2. –  Rollerball Feb 28 '13 at 20:00
    
try args[0]. And in any case you should always check the number of args... if (args.length < 1) { /* error! */ } –  vikingsteve Feb 28 '13 at 20:01

4 Answers 4

up vote 3 down vote accepted

The entire expression is evaluated before being passed to System.out.println, and the ArrayIndexOutOfBoundsException happens before the evaluation can finish. Also, indexes are 0-based in Java, and there is only one argument, "one", at index 0.

To get "Indeed!" to show up, separate your print statements.

System.out.print("Indeed!");
System.out.println(args[1]);

Of course, that would still throw the ArrayIndexOutOfBoundsException until you replace args[1] with args[0].

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Note that this is different from languages like C where args[0] would be the name of the program and args[1] onwards would be the actual program arguments. This is sometimes a stumbling block for programmers coming from those languages. –  nneonneo Feb 28 '13 at 20:11

Java is rigorously specified. The Java Language Specification, section 15.12.4 covers runtime evaluation of method invocations.

In particular, arguments are fully evaluated, in left-to-right order(*), before the method is called. Therefore, the evaluation of "Indeed!" + args[1] must complete before System.out.println can be called. Since args[1] throws an exception, the evaluation does not complete and System.out.println will not be called.

If you did

System.out.print("Indeed!");
System.out.println(args[1]);

instead, you would get

Indeed!
Exception ArrayIndexOutOfBoundsException...

(*): The actual text of the JLS says "each argument expression appears to be fully evaluated before any part of any argument expression to its right.". The "appears" means that the JVM is free to physically evaluate the argument list in some other order provided the program behaves in every way as if the arguments were evaluated left-to-right. This enables some optimizations, but to the programmer it always appears well-defined. (This is in contrast to languages like C, which place no constraint on argument evaluation order).

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You see the exception and not your trace because:

  1. Java index the arrays from 0 so args[1] throw ArrayIndexOutOfBoundsException.
  2. System.out is buffered and the exception stack was printed on System.err which is not buffered.
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The problem is args[] does not contain 2 arguments, possibly only one. You are grabbing the second element, element 1, (0,1,2,etc), which does not exist, so you get an exception.

Edit

I misunderstood the question: you are asking why it is getting an exception before printing something.

The reason why is the value you are passing to println is evaluated before actually printing anything, and returning an error. Thus, nothing is printed.

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... and why the -1? –  Christian Stewart Feb 28 '13 at 20:01

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