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Ruby 1.9.2 introduced order into hashes. How can I test two hashes for equality, not only at the key-value level, but also by order?

Neither of the following work.

h1 = {"a"=>1, "b"=>2, "c"=>3} # => {"a"=>1, "b"=>2, "c"=>3}
h2 = {"a"=>1, "c"=>3, "b"=>2} # => {"a"=>1, "c"=>3, "b"=>2}

h1 == h2 # => true
h1.eql? h2 # => true
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1  
It's not a dupe of that question. That question does not consider comparing the order of sorted hashes. –  Sparhawk Mar 6 '13 at 5:31
1  
Ruby 1.9.2 didn't introduce sorted hashes, it introduced ordered hashes. The hash remembers the insertion order. keys returns an array in insertion order as does values. If you need to have a sorted hash either sort the entries before creating the hash, or sort the hash as you extract the values. You gain nothing by having a hash that is sorted except some cosmetic attractiveness. It will not allow faster accesses. –  the Tin Man Mar 6 '13 at 6:00
    
I edited the question because I think the OP meant ordered hashes, not sorted hashes, and that caused controversy in the interpretation of the question. Please reedit to something else (but not as before) if my interpretation is wrong. –  sawa Mar 6 '13 at 7:10
    
Your edit is not wrong, but I don't understand the distinction between sorted and ordered. –  Sparhawk Mar 6 '13 at 9:43
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Ordered means what you intended. Sorted means that the keys are ordered by (for example) alphabetically so the key "a" comes before "b", etc. –  sawa Mar 6 '13 at 9:51

2 Answers 2

up vote 2 down vote accepted

It's not a single builtin method on Hash, but you could compare the output of their keys methods:

1.9.3-p327 :001 > h1 = {one: 1, two: 2, three: 3}
 => {:one=>1, :two=>2, :three=>3} 
1.9.3-p327 :002 > h2 = {three: 3, one: 1, two: 2}
 => {:three=>3, :one=>1, :two=>2} 
1.9.3-p327 :003 > h1
 => {:one=>1, :two=>2, :three=>3} 
1.9.3-p327 :004 > h2
 => {:three=>3, :one=>1, :two=>2} 
1.9.3-p327 :005 > h1.keys
 => [:one, :two, :three] 
1.9.3-p327 :006 > h2.keys
 => [:three, :one, :two] 
1.9.3-p327 :007 > h1 == h2
 => true 
1.9.3-p327 :008 > h1.keys == h2.keys
 => false 
1.9.3-p327 :009 > h1.keys.sort == h2.keys.sort
 => true 

But, comparing Hashes based on key insertion order is kind of strange -- depending on what exactly you're trying to do, you may want to reconsider your underlying data structure.

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I think I'm doing the right thing. I'm using it like a sorted array, testing each element in order. I'm using a hash instead, so that I can store a key (ID) for each element as well. If I understand correctly, the introduction of sorted hashes is to allow treating hashes like arrays (but with keys instead of ordinals), and hence this kind of usage is possibly expected? –  Sparhawk Mar 6 '13 at 5:35
2  
@Sparhawk IMO it's less about treating a hash like an array and more about iterating the keys in the same order they were inserted, for Enumerable methods like each. It's a subtle difference. –  Mark Rushakoff Mar 6 '13 at 5:43
    
Yes, sorry, that's actually what I meant, but I phrased it less eloquently and more vaguely. :) –  Sparhawk Mar 6 '13 at 5:49
    
+1 for pointing out that relying on this behavior is a sign that the choice of underlying data structure may not be optimal. @Sparhawk In my opinion (which is probably biased by my Python background and by the fact that I once spent months trying to debug a problem that I suspected but could never prove was due to an improper reliance on hash-ordering), even though Ruby 1.9 guarantees hash ordering, if your code logic depends on this feature, you're on thin ice and are probably making your code unnecessarily confusing. –  Kyle Strand Mar 26 '14 at 19:08
    
@KyleStrand It certainly is confusing, but I'm not sure how else to do it. I'm dealing with biological sequencing data, so I have tens of thousands of entries across a genome. I'm comparing features that overlap in the genome, from two data sources. Rather than having to scan the entire hash for overlapping genes on every iteration, I'm using incrementing my genomic position across the sorted hash to minimise the amount of genes I have to look at. I agree the code becomes confusing, but it's more about optimising for large data sets in this case. –  Sparhawk Mar 27 '14 at 0:31

Probably the easiest is to compare the corresponding arrays.

h1.to_a == h2.to_a
share|improve this answer
    
Did you try that? Based on the OP's hash definitions: h1.to_a == h2.to_a => false. –  the Tin Man Mar 6 '13 at 6:59
    
@theTinMan Yes. I think that is the expected result. You may be misinterpreting the question. –  sawa Mar 6 '13 at 7:04
    
I think I am. Never mind. :-) –  the Tin Man Mar 6 '13 at 7:10
    
Thanks, this also works well. –  Sparhawk Mar 6 '13 at 9:44
1  
This is IMO preferable to the accepted answer since it also checks for equivalence of values. –  Kyle Strand Mar 26 '14 at 19:03

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