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I came across some results in a program I was writing that confused me. It is my understanding parens are not normally needed (i.e. obj.method1.method2 is as good as (obj.method1).method2). In addition all operators are really method calls so I expected them to behave similarly.

So imagine my surprise that "S"+"R".downcase resulted in Sr as did "S".+"R".downcase however "S".send(:+, "R").downcase finally gave me the expected output sr

Is this because the operator shortcuts are treated differently or is there some other mechanic at work here that I am missing?


Edit: The question isn't about the order of operations that resulted in the answer, that's obvious. The question was WHY the expression was resolved in that order.

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2 Answers 2

up vote 4 down vote accepted

. has higher precedence than + and is evaluated first. ("S"+"R").downcase works too.

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No "S"+"R".downcase in not equal to "S".+"R".downcase cause "R".downcase is an argument. –  hauleth May 29 '12 at 11:43
    
I assume that all (arithmetic?) operators share this lower precedence? –  Matt Jun 4 '12 at 18:35

You can inspect how this is parsed with Ripper, if you have Ruby >= 1.9:

require 'ripper'
require 'pp'

src = '"A"+"B".downcase'
pp Ripper::SexpBuilder.new(src).parse

You will see that the method call (from the '.') has a higher precedence than the binary plus:

[:program,
 [:stmts_add,
  [:stmts_new],
  [:binary,
   [:string_literal,
    [:string_add, [:string_content], [:@tstring_content, "A", [1, 1]]]],
   :+,
   [:call,
    [:string_literal,
     [:string_add, [:string_content], [:@tstring_content, "B", [1, 5]]]],
    :".",
    [:@ident, "downcase", [1, 8]]]]]]

The precedence of operators can also be directly derived from Ruby's parse.y, if you are familiar with bison/yacc.

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