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I know this is probably a really simple question, but I ran across this in some code on a project today. How does the return statement work? What kind of operation is this? Is it similar to a tertiary operator?

The variable access is an int.

return access != IACL.RS_NOACCESS && documentVersion >= 0;
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2  
No; those are regular logical operators. That is not fundamentally different from 1*2+3*4 –  SLaks May 22 '13 at 19:23
3  
It returns a boolean saying whether or not that logical expression is true. –  Louis Wasserman May 22 '13 at 19:23
    
If in doubt, enclose the expression in parentheses. It's just return (some expression), not more complex than return (1+2). –  9000 May 22 '13 at 19:24
    
docs.oracle.com/javase/tutorial/java/javaOO/returnvalue.html - see the example; things after the return are evaluated and returned. –  Brian Roach May 22 '13 at 19:25
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On the contrary, I highly recommend this as more readable than introducing yet another useless local variable. –  Marko Topolnik May 22 '13 at 19:26

3 Answers 3

up vote 8 down vote accepted

Let's break it down, using parentheses to make the logical groupings explicit:

return ((access != IACL.RS_NOACCESS) && (documentVersion >= 0));

So, the method returns a boolean value, the result of the comparisons being performed. The entire expression is evaluated before the expression's value is returned.

Let's pretend that access is equal to IACL.RS_NOACCESS and documentVersion is equal to 1. Then the statement reduces to:

return ((IACL.RS_NOACCESS != IACL.RS_NOACCESS) && (1 >= 0));

and that evaluates to:

return ((false) && (true));

and that evaluates to:

return false;

One important note, pointed out by Ryan in a comment: logical operators like && and || are "short-circuiting" in most languages, in most scenarios. They are in Java. This means that evaluation proceeds from left to right. If there's no point in evaluating the second part of the expression, then it won't be evaluated.

In the case above, since the first part of the expression evaluates to false, it doesn't matter what the second part of the expression evaluates to - given the AND truth table, the full expression will always evaluate to false. In fact, you could have an expression that generates a run-time error on the right side - it doesn't matter. With these values, the right side never be run.

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4  
Something that may be important to note is that if the first statement is false, the operation will short-circuit and return false, because false && a is always false. So false && a() will not call a(). If you want to force calling a() regardless, use false & a() –  Ryan Amos May 22 '13 at 19:41
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Good call, @Ryan. Added a discussion. –  Michael Petrotta May 22 '13 at 19:48
    
@RyanAmos can you give an example of a circumstance where you would want to force calling a()? –  Trevor May 23 '13 at 15:27
    
If a() changes the state. You need both actions to be performed, but if either action fails, you want to return false. I remember having to deal with this in the past, but I can't come up with any good examples off the top of my head. –  Ryan Amos May 23 '13 at 16:18
    
@Trevor Used one today if(finder.isDirectoryExSTraCS(finder.chooser.getCurrentDirectory())|| JOptionPane.showConfirmDialog(finder, "It doesn't appear that this directory is an ExSTraCS directory. Proceed anyways?", "Wrong Directory", JOptionPane.OK_CANCEL_OPTION) == JOptionPane.OK_OPTION) –  Ryan Amos Jun 25 '13 at 21:20

The whole expression to the right of return evaluates to a boolean value, which is what's returned.

return access != IACL.RS_NOACCESS && documentVersion >= 0;

Is equivalent to:

boolean result = (access != IACL.RS_NOACCESS);
result = result && (documentVersion >= 0);
return result;
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This is equivalent to:

boolean valid = access != IACL.RS_NOACCESS && documentVersion >= 0;
return valid;

It just eliminates the variable since it's not necessary to store the result of access != IACL.RS_NOACCESS && documentVersion >= 0. It's just to save space, basically.

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