6
if 1 | []
    disp('1 | []');
end

if [] | 1
    disp('[] | 1');
end

results in 1 | []. The first if is executed.

How come this behaviour? I would assume both have the same result.

  • Do a quick search on Yoda Conditions, you may find some of the behavioural differences on the wiki page :-) – Callum. May 5 '15 at 9:19
  • 3
    Interesting, since on the command line, both conditions evaluate to [] – Jonas May 5 '15 at 9:22
  • 2
    I was going to ask the same question, but you are faster! – Ander Biguri May 5 '15 at 9:31
  • 1
    Origin of the question: stackoverflow.com/questions/30047471/… – Ander Biguri May 5 '15 at 9:35
4

I'd say that this is most likely a interpreter-induced bug, although MathWorks might claim it's undefined behavior.

On the command line, both cond1 = 1|[]; and cond2 = []|1; evaluate to [], because all operations involving [] return []. Since [] evaluates to false if used in a condition, one would therefore expect both cases to behave the same way if used in an if-clause.

Aside from the array-wise logical operators, Matlab also offers short-circuit operators, where the evaluation of conditions is stopped if the result is clear from looking at parts of the condition only. Evaluated on the command line, the array-wise operation 1|[] returns [], while the short-circuit operation 1||[] returns 1. Note that []||1 throws an error, since the short-circuit operator only works with scalar conditions, unless it never has to evaluate them.

So far, everything is as expected. What I suspect happens in our unexpected case is that the interpreter implicitly replaces 1|[] by 1||[] inside the if-clause, possibly because the operation starts with a scalar, and [] is not an array.

If at all possible, you should avoid calculating with [], and catch potential such cases with isempty.

  • 2
    The fun thing is that is not interpreted as false until the end. Which means that ` ([ ] | 1)| 1` is false. – Ander Biguri May 5 '15 at 9:30
1

As Matlab interprets logical operations in if statements only when the result does depend on it. Interpreting 1 | X is usually true no matter what the second expression is, so the interpreter will take the shortcut (wrongly in case X = [].
[] | X is false no matter what the second expression is, so the result is false.

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