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Following this SO I am trying to compare two arrays of hashes:

db = [
{:foo => "bar", :stack => "overflow", :num => 0.5},
{:foo => "bar", :stack => "underlow", :num => 0.5},
{:foo => "bar", :stack => "overflow", :num => 0.1}
]

csv = [
{:foo => "bar", :stack => "overflow", :num => 0.5},
{:foo => "bar", :stack => "underlow", :num => 0.1},
]

I am trying to use a Ruby Set (db_set = Set[db], csv_set = Set[csv]) to compare the two using - (db_set - csv_set) and & (db_set & csv_set) but these do not appear to be performing the compare operations.

Have i misunderstood the use of Set? How can i compare these two arrays of hashes?

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do you want to compare (this array is less than that array) or perform set operations? –  Sergio Tulentsev Aug 3 '12 at 13:01
    
I would like to perform set operations, ie return which hahses are common to both, which are not in one or the other etc –  Ryan Aug 3 '12 at 13:02
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1 Answer

up vote 1 down vote accepted

No need to use sets here. Seems that you'll be good with Array operators.

db = [
  {:foo => "bar", :stack => "overflow", :num => 0.5},
  {:foo => "bar", :stack => "underlow", :num => 0.5},
  {:foo => "bar", :stack => "overflow", :num => 0.1}
]

csv = [
  {:foo => "bar", :stack => "overflow", :num => 0.5},
  {:foo => "bar", :stack => "underlow", :num => 0.1},
]

db - csv # => [{:foo=>"bar", :stack=>"underlow", :num=>0.5}, {:foo=>"bar", :stack=>"overflow", :num=>0.1}]
db & csv # => [{:foo=>"bar", :stack=>"overflow", :num=>0.5}]
share|improve this answer
    
Hmm - i tried this originally on my data (db = 339 hashes and csv = 10) and (db - csv).count = 339 (when i know the 10 csv hashes are in db. I will check my data more closely... –  Ryan Aug 3 '12 at 13:08
    
Maybe in some hashes keys are symbols and in others - strings. They won't be equal. (just a guess). –  Sergio Tulentsev Aug 3 '12 at 13:11
    
Ive been testing with db[0] == csv[0] which is true, odd –  Ryan Aug 3 '12 at 13:11
    
Turns out my db[0][:num].class = BigDecimal while csv[0][:num].class = Float - fixing that allows me to use - and & –  Ryan Aug 3 '12 at 14:41
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