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This is a solution to an exercise in Codeacademy. Why does symbols.push precede (s.to_sym)? Why do the two methods appear in this order?

symbols = []

strings.each { |s| symbols.push s.to_sym }
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It's not required. It's probably just showing you a basic way to transform the array of strings to a new array of symbols. –  naomik Sep 27 '13 at 14:51
    
Which exercise? Provide the formula for what? –  sawa Sep 27 '13 at 14:56
3  
Quick quiz: What does symbols.push(x) do? –  tadman Sep 27 '13 at 15:00
    
@tadman (x)is how many times to push i.e how many strings to push? –  Abraham Sep 27 '13 at 15:12
1  
You need a better reference on what push does, then. In Ruby, since everything's an object, it's usually easy to find the documentation for a particular method, especially common ones like Array or Hash. It's a big toolbox, so spend a little time here and there familiarizing yourself with the various methods at your disposal. There's a tool for pretty much any job you could think of. –  tadman Sep 27 '13 at 15:20

1 Answer 1

up vote 3 down vote accepted

It only "precedes" syntactically. The order of operations is not strict left-to-right. Sub-expressions are evaluated as required. In this case s.to_sym is a sub-expression that becomes the parameter to the method symbols.push.

The parameters to a method have to be evaluated before the method is called, and the Ruby parser knows how to resolve this. So s.to_sym is called, and the result of that sent to symbols.push.

Ruby will also check precedence of operators such as + versus * to decide which sub-expressions to evaluate first in e.g. a maths formula.

Ruby method calling convention allows you to write function calls without parentheses, and this is quite common in Ruby code. It may help to understand that

symbols.push s.to_sym

is the same as

symbols.push( s.to_sym )

which is a syntax you will much more often see in other languages.

Importantly, the following is not the same:

symbols.push
s.to_sym

in that case Ruby will evaluate both expressions separately, and it will, quite happily do nothing useful for either line (specific to this case unfortunately because push is happy with no parameters).

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2  
You can read this as "push into symbols the value s transformed "to symbol"`. –  tadman Sep 27 '13 at 14:59
    
@NeilSlater i see. Very clear explanation, thanks. –  Abraham Sep 27 '13 at 15:06

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