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Ruby: difference between || and 'or'

In ruby, isn't 'or' and '||' the same thing? I get different results when I execute the code.

line =""
if (line.start_with? "[" || line.strip.empty?)
  puts "yes"
end




line =""
if (line.start_with? "[" or line.strip.empty?)
  puts "yes"
end
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marked as duplicate by Andrew Marshall, Marc-André Lafortune, Andrew Grimm, Jörg W Mittag, Graviton Mar 9 '12 at 1:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3 Answers 3

up vote 6 down vote accepted

No, the two operators have the same effect but different precedence.

The || operator has very high precedence, so it binds very tightly to the previous value. The or operator has very low precedence, so it binds less tightly than the other operator.

The reason for having two versions is exactly that one has high precedence and the other has low precedence, since that is convenient.

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so if the first statement will evaluate to something like ("[" || line.strip.empty?) = "[" and then (line.start_with? "["). –  surajz Mar 8 '12 at 18:36
1  
Exactly so. Precedence is a way of guessing what you meant when you leave out, eg, brackets. Just like math precedence works. –  Daniel Pittman Mar 8 '12 at 18:38

In the first case you used || wich is evaluated prior than anything else in the statement due to the precedence well stated by other answeres, making it clearer with some parenthesis added, your first statement is like:

(line.start_with? ("[" || line.strip.empty?))

wich translates to

(line.start_with? ("["))

resulting FALSE

In the other hand, your second statement translates to

((line.start_with? "[") or line.strip.empty?)

wich translates to

(FALSE or TRUE)

resulting true

That´s why I try to use parenthesis everytime I call a function. :-)

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Daniel is right, more clearly:

if (line.start_with?("[") || line.strip.empty?)
  puts "yes"
end

will produce yes

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