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I accidentally created following check, that works fine, but I'm curious why :)

  1. First of all, I know I can assign :a instead of 'a' ;)
  2. I know the right formula for this check, I'm just curious why this works
  3. I don't care about optimizing this (read 2)
if params['a'] < 0 || params['a'] > params['b || params[:b] < 1]

Why this works, if there is no closing after ['b.

Apart from this everything works fine, until I remove last ], or change it to something else.

UPDATE:

Here is output from ruby:

irb> params

 => {"a"=>3, "id2"=>"2", "b"=>2, "id"=>"1", :id=>"2"}

irb> if params['a'] < 0 || params['a'] > params['b' || params[:b] < 1]
irb>   puts 'strange...'
irb> end

strange...

=> nil
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Have you tried to write a simple ruby file containing the line above? –  Adiel Mittmann Apr 30 '12 at 20:40
2  
Err, that code definitely doesn't work. Are you positive that's what you have? Perhaps you have a ' later that it's matching? –  Andrew Marshall Apr 30 '12 at 20:41
    
you're right, something went wrong while pasting, here is originall code that I use ( ' was missing after 'b): if params['a'] < 0 || params['a'] > params['b' || params[:b] < 1] –  meso_2600 Apr 30 '12 at 21:17
    
@adiel-mittmann Yes I did try: params > => {"a"=>3, "id2"=>"2", "b"=>2, "id"=>"1", :id=>"2"} > if params['a'] < 0 || params['a'] > params['b' || params[:b] < 1] > puts 'strange...' > end > strange... > => nil –  meso_2600 Apr 30 '12 at 21:49

1 Answer 1

up vote 1 down vote accepted

Well, it certainly looks like you have an open quote which gets closed somewhere else, later down the road, on some other line.

Fun fact:

ruby_hash = {}
ruby_hash['class Atom
def initialize
end
end'] = 0

Works. Because it's just a string key. So you're just evaluating a huge long string as a key to to the 'params' hash which is most certainly going to evaluate to nil because it's not an existing key in the hash.


Edit! You edited the question and gave more information. Let's break this down.

params = {"a"=>3, "id2"=>"2", "b"=>2, "id"=>"1", :id=>"2"}
# Simple enough, nothing strange here.
if params['a'] < 0 || params['a'] > params['b' || params[:b] < 1]
    puts 'strange...'
end
The plot thickens, or does it?

If!

params['a'] < 0

That means, of course: if the value of " a " in params is less than 0

|| 

... That means 'or'

params['a'] >

Stopping here for a sec - if the value of 'a' is greater than....

params['b' || params[:b] < 1]

Wait, what? Let's look deeper.

params[ => We look inside the hash
'b' || params[:b] < 1 ## HERE IS THE 'MAGIC' => 'b' || params[:b] < 1
] # end of the key

So the magic is : We want the result of the OR statement between :

  • the string 'b'
  • the evaluation of 'params[:b] < 1

So what is really happening? Well, in truth, since 'b' is not false, it will just return the value of params['b'], so this is what your if statement really is:

if params['a'] < 0 || params['a'] > params['b']

If 'b' evaluated to false for whatever reason, you would end up with "params[params[b:] < 1]" which in your case would be false and would then means "params[false].

Does this make sense?

share|improve this answer
    
exactly it ends at the end of the whole line, I have pasted that too. and I'm sorry there is a typo, now I will paste the whole line again as it didn't paste properly. there is ' closing the 'b: if params['a'] < 0 || params['a'] > params['b' || params[:b] < 1] so why this works? –  meso_2600 Apr 30 '12 at 21:15
    
Edited my answer to give deeper explanation. –  Trevoke May 1 '12 at 0:59
    
Yes. it's perfect. thank you –  meso_2600 May 1 '12 at 11:28

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