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Consider this

boolean askIfNotAvail = (...)
String p = locationManager.getBestProvider(c, true);
if ((p == null || p.equals("passive")) && askIfNotAvail) {
   askUserToEnableGps(false);
   return false;
}
  1. Can I be absolutely certain that if p == null, p.equals("") will never be called (calling it would give a NPE)? I suppose whatever 'reads' this expression will jump out of the first expression (p == null || p.equals("passive") as soon as the first condition is met.

  2. Sounds stupid, but what part of the Java language checks this expression at runtime?

  3. Is there some documentation on how Java 'reads' boolean expressions like this?

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You are looking for operator precedence and evaluation order in Java. Google it. –  Michael Härtl Aug 13 '13 at 15:45

4 Answers 4

up vote 2 down vote accepted
  1. Yes you can be sure that second part of or expression will not be evaluated because Java evaluates boolean expressions lazily.
  2. It is called boolean expression evaluation, see language specification.
  3. Read Java Language Specification.
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You can avoid these NPEs by consequently using this syntax:

if ("passive".equals(p) && askIfNotAvail) {
    askUserToEnableGps(false);
    return false;
}
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  1. YES you can be sure if it is not called. if the first expression of an || is true the second one isn't called. if you explicitly want to call it use |

    (same way with the && expression: first expression is false, the second is not excuted. & will also execute the second expression)

  2. I don't know yet

  3. java language specification

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1  
@Grzegorz docs.oracle.com/javase/specs/jls/se7/html/… read it ;-) –  Philipp Sander Aug 13 '13 at 9:46
  1. p == null is always called. If p == null evaluates to true, p.equals("") will not be evaluated, since true || anything evaluates to true.

  2. No idea what the question is asking about.

  3. Java language Spec: http://docs.oracle.com/javase/specs/

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