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such as hash a is {:name=>'mike',:age=>27,:gender=>'male'} and hash b is {:name=>'mike'}

I am wondering is there a better way to judge if b hash is within a hash instead of compare every keys one by one?

I 've found a way to do this, is this more effecient than compare keys?

a.merge(b)==a

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Given it is a hash, comparing keys is very efficient, you don't have to care about it. –  Maurício Linhares Nov 28 '11 at 3:13
    
Also, the merge is inefficient as it is going to generate a new hash in memory, you should compare keys. –  Maurício Linhares Nov 28 '11 at 3:49
    
thanks Mauricio, guru you are! –  Mike Li Nov 28 '11 at 4:33

2 Answers 2

up vote 5 down vote accepted

I like the approach of calculating the intersection, which is what you're trying to do:

a = { :a => :b, :c => :d }
b = { :e => :f, :a => :b }
c = { :a => :f, :e => :c }

(a.to_a & b.to_a).any? # => true
(a.to_a & c.to_a).any? # => false
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b.all? do |key, value|
  a.include? key &&
  a[key] == value   
end

This loop is linear in the size of b, because both steps inside the loop take (on average) constant time.

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Calling include? and then a[key] makes this code very inefficient, as it tries to find the key twice. –  Maurício Linhares Nov 28 '11 at 3:48
1  
@MaurícioLinhares: access to hashes is O(1) so I don't see why this would be inefficient. In fact I think this is the most conceptually efficient code (although converting to arrays and intersecting them may be faster because this intersection is implemented in C). I'd change include? to has_key?, it's a bit more clear. And why create a new (unindented) line for the second condition? –  tokland Nov 28 '11 at 9:45

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