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How do I replace age with 31?

[{"name"=>"Bob"}, {"age"=>"30"}]
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4 Answers 4

up vote 2 down vote accepted

Another way, using find

1.9.3p194 :007 > array1 = [{"name"=>"Bob"}, {"age"=>"30"}]
 => [{"name"=>"Bob"}, {"age"=>"30"}] 
1.9.3p194 :008 > hash1 = array1.find { |h| h['age'] == "30" }
 => {"age"=>"30"} 
1.9.3p194 :009 > hash1['age'] = 31
 => 31 
1.9.3p194 :010 > array1
 => [{"name"=>"Bob"}, {"age"=>31}]
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Why not convert the array into something easier and more flexible to work with? Your array is crying out to be a value object:

class Person
  attr_accessor :name, :age
  def initialize arr
    arr.each { |h| h.each { |k,v| instance_variable_set("@#{k}", v) } }
  end
  def to_hash_array
    instance_variables.each_with_object([]) do |iv, arr|
      arr << {iv.to_s.sub('@','') => instance_variable_get(iv)}
    end
  end
end

def hash_array_to_person arr
  person = Person.new
  arr.each { |h| h.each { |k,v| person.send("#{k}=", v) } }
  person
end

example = [{"name"=>"Bob"}, {"age"=>"30"}]
bob = Person.new(example)

p bob
p bob.to_hash_array
bob.age = 31
p bob.to_hash_array

Output:

#<Person:0x00000000fe8418 @name="Bob", @age="30">
[{"name"=>"Bob"}, {"age"=>"30"}]
[{"name"=>"Bob"}, {"age"=>31}]

Ruby isn't C, you have so much more available to you than the basic primitive data types.

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Since what you really have is an array of hashes, you can index the array to get the second hash and then update the value by passing "age" as the key:

1.9.3p194 :001 > h = [{"name"=>"Bob"}, {"age"=>"30"}]
 => [{"name"=>"Bob"}, {"age"=>"30"}] 
1.9.3p194 :002 > h[1]["age"] = 31
 => 31 
1.9.3p194 :003 > h
 => [{"name"=>"Bob"}, {"age"=>31}] 
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This will do:

[{"name"=>"Bob"}, {"age"=>"30"}][1]["age"] = 31
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