1

I understand that this code

options = arguments[-1].is_a?(Hash) ? arguments.pop : {}

translates to

if arguments[-1].is_a?(Hash)
    options = arguments.pop
else
    options = {}
end

When I try

10 > 5 ? puts "greater" : puts "less"

I get an error. However

puts 10 > 5 ? "greater" : "less"

returns "greater" What is the difference between the two codes?

  • When posting questions that concern exceptions raised by your code, please give the complete error message and, if it's not obvious, the line that raised it. Error messages contain valuable information; you need to study them carefully. – Cary Swoveland Sep 24 '14 at 22:24
4

It is a syntax error and a matter of precedence of keywords/operators. The ? of the ternary operator has higher precedence than the argument passing to puts, and therefore ruby parses

10 > 5 ? puts "greater" : puts "less"

as

(10 > 5) ? (puts) ("greater")

which is invalid syntax, as : would be expected after puts.

10 > 5 ? puts("greater") : puts("less")

would work as expected.

2

It's simply a syntax error (my IRB says syntax error, unexpected tSTRING_BEG, expecting keyword_do or '{' or '('). This will work as your expect it to:

10 > 5 ? (puts "greater") : (puts "less")
-1

With Ternary Operators you are putting your action first in the first example you are doing options = which is correct. In your second example you are putting the puts after checking if 10 > 5. Its basically just a syntax error.

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