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I have a hash of arrays in ruby as :

 @people = { "a" => ["john", "mark", "tony"], "b"=> ["tom","tim"], 
            "c" =>["jane"], "others"=>["rob", "ryan"] }

I would like to merge all key value pairs where there are less than 3 items in the array for a particular keys values. They should be merged into the key called "others" to give roughly the result of

 @people = { "a" => ["john", "mark", "tony"], 
           "others"=> ["rob", "ryan", "tom", "tim", "jane"] }

Using the following code is problematic as duplicate key values in a hash cannot exist:

 @people = Hash[@people.map{|k,v| v.count<3 ? ["others",v] : [k,v]} ] %>

Whats the best way to elegantly solve this?

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6 Answers 6

up vote 2 down vote accepted

You almost have it, the problem is, as you notice, that you can't build the Hash's key/value pairs on the fly because of duplicates. One way around the problem is to start out with the skeleton of what you're trying to build:

@people = @people.each_with_object({ 'others' => [ ] }) do |(k,v), h|
    if(v.length >= 3)
        h[k] = v
    else
        h['others'] += v
    end
end

Or, if you don't like each_with_object, you could:

h = { 'others' => [ ] }
@people.each do |k, v|
    # as above
end
@people = h

Or you could use pretty much the same structure with inject (taking care, as usual, to return the right thing from the block).

There are certainly other ways to do this but these approaches are pretty clear and easy to understand; IMO clarity should be your first goal.

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thanks first solution using each_with_object worked well and solved it ! great thanks –  Ryan Perera Mar 22 '13 at 16:45
    
interestingly this worked in development but not when put into production - any thoughts? –  Ryan Perera Mar 23 '13 at 17:29
    
Are you sure that you have length > 3 arrays in production? –  mu is too short Mar 23 '13 at 18:53
    
yes have many arrays greater than 3 in length.... –  Ryan Perera Mar 23 '13 at 18:57
    
That doesn't make sense to me. The only logic is a simple v.length >= 3 test and I don't see how that could possibly fail. Have you added a few Rails.logger.info calls so that you can watch what's going on? –  mu is too short Mar 23 '13 at 19:25

try:

>> @people = { "a" => ["john", "mark", "tony"], "b"=> ["tom","tim"], 
        "c" =>["jane"], "others"=>["rob", "ryan"] }

>> @new_people = {"others" => []}

>> @people.each_pair {|k,v| (v.size >= 3 && k!="others") ? @new_people.merge!(k=>v) : @new_people['others']+= v}    

>> @new_people
=> {"others"=>["rob", "ryan", "jane", "tom", "tim"], "a"=>["john", "mark", "tony"]}
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thanks this also works ! –  Ryan Perera Mar 22 '13 at 16:58
    
this worked in production thank you –  Ryan Perera Mar 23 '13 at 17:48
Hash[ @people.group_by { |k,v| v.size < 3 ? 'others' : k }.
              map { |k,v| [k, v.flat_map(&:last)] } ]

=> {"a"=>["john", "mark", "tony"],
    "others"=>["tom", "tim", "jane", "rob", "ryan"]}
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What about this:

> less_than_three, others = @people.partition {|(key, values)| values.size >= 3 }
> Hash[less_than_three]
# => {"a"=>["john", "mark", "tony"]}
> Hash["others" => others.map {|o| o.last}.flatten]
# => {"others"=>["tom", "tim", "jane", "rob", "ryan"]}
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@people[:others] = []
@people.each do |k, v|
  @people[:others] |= @people.delete(k) if v.size < 3
end
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@people.inject({}) do |m, (k, v)|
  m[i = v.size >= 3 ? k : 'others'] = m[i].to_a + v
  m
end
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you can remove a line using each_with_object –  oldergod Mar 22 '13 at 4:53

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