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I am not quite clear about the operator defined?.

For example:

 defined? var

Why not:

defined? :var
defined? 'var'  ## i think these two ways maybe make more sense

But this operator can also be followed by an expression.

At what stage does this operator execute? At the compile stage, similarly to sizeof(int) in C?

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Ruby doesn't have a compile-time. Did you mean the parse time? –  Jan Dvorak Jun 25 '13 at 2:29
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Why would those two ways make more sense? Why would you give it a :symbol or a string when you can give it the actual symbol you're interested in? –  meagar Jun 25 '13 at 2:31
    
Also, no, it's nothing like sizeof(int) in C, as the languages a fundamentally different, and defined? and sizeof have absolutely nothing in common in their purpose or implementation. –  meagar Jun 25 '13 at 2:33
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defined? :var actually couldn't work. If defined? was a function, then it would have no access to your local variables by name. It has to be an operator. –  Jan Dvorak Jun 25 '13 at 2:34
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@meagar it doesn't, but if if it's an operator, then there's not much reason to use a symbol instead of the variable itself. attr_xxx need symbols because they are actually functions running in the class definition scope. –  Jan Dvorak Jun 25 '13 at 2:38

1 Answer 1

up vote 7 down vote accepted

In different contexts, you want to check things at different levels of expansion. defined? is for checking verbatim expression. If you do defined? :var or defined? "var", they will always give a truthy value because :var and "var" are valid Ruby expressions (symbol and string).

If you want to check one-level expansion of expressions, then there are specific methods. In this case, if you want to check if such method exists, you can do respond_to? :var or respond_to? "var". If you want to check if such variable exists, then you can do local_variables.key?(:var).

Also, defined? is not just for checking a single token. It is also for checking complex expressions like [1, 2, 3].each{|x| puts x}. It would be inconvenient if you had to express that in a symbol.


The last part of this question is very interesting. Usually, when a method is to be executed, all of its arguments are evaluated in advance (but not the block). For defined?, its argument is not evaluated; it is just parsed. It behaves as if it is taking a block. RDoc says: Note that the expression is not executed. I cannot answer how this is done.

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Local variables are not methods despite being in the same namespace (\w+) –  Jan Dvorak Jun 25 '13 at 2:42
    
@JanDvorak How is that relevant? –  sawa Jun 25 '13 at 2:42
    
" In this case, if you want to check if such method exists " -- OP seems to be checking for a local variable, not a method. –  Jan Dvorak Jun 25 '13 at 2:43
    
@JanDvorak That may be the case, but how do you know that? –  sawa Jun 25 '13 at 2:44
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@sawa if defined? :var, since :var is a symbol, reflection can be used to check this variable, and it is more like meta programming. But if we use defined? var, ( 123 is assigned to var, for example ), i think in runtime, it will be like defined? 123, so i guess this process should be done in parse stage and defined? must be an operator. i don't know if my understanding is right –  ruanhao Jun 25 '13 at 2:47

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