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I have four sizes, each are in a hash by their square feet:

# The sizes. Sizes are in sq ft (min, max)
size_hash = {
  'Large'  => [70,139],
  'Medium' => [15,69],
  'Small'  => [1,14]
}

If I'm given the number 40, how can I return Medium as the size from the array?

Do I need to do something like this?:

# The sizes. Sizes are in sq ft (min, max)
size_hash = {
  [70..139]  => 'Large',
  #... etc
}
share|improve this question
    
Where is the fourth size? –  sawa Nov 25 '12 at 4:33
    
In the future, if you have a data structure but are open to changing it, you might make that clear. :) –  Phrogz Nov 25 '12 at 4:58

4 Answers 4

up vote 5 down vote accepted

You could use a proc:

size_store = proc{ |n|
  case n
  when 70..139
    'Large'
  when 15..69
    'Medium'
  when 1..14
    'Small'
  end
}
# USAGE: size_store[40]
share|improve this answer
    
Genius. That works perfectly. Thanks –  Wes Foster Nov 25 '12 at 4:21
2  
Why use a proc instead of a basic method ? –  oldergod Nov 25 '12 at 5:56
    
Depends on the circumstances. It's got no method dispatch and is used with [],like a hash. E.g. if it gets called often, I would probably initialize an array with the data or use Hash.new with a default proc. If it's part of the behavior of an object, I would put it in a method as well. –  J-_-L Nov 25 '12 at 15:24
size_hash.find{|_, (min, max)| (min..max) === 40}[0]
# => "Medium"

But I think it is a better idea to store ranges instead of min and max in the first place.

size_hash = {
    'Large'  => 70..139,
    'Medium' => 15..69,
    'Small'  => 1..14,
}

size_hash.find{|_, r| r === 40}[0]
# => "Medium"
share|improve this answer

Yet another solution taking care of edge cases ...

@size_hash = {
  'Large'  => 70..139,
  'Medium' => 15..69,
  'Small'  => 1..14,
}

some_value = @size_hash["Small"]
@min = some_value.first
@max = some_value.last
@size_hash.each_pair do |k, v|
    @min = [@min, v.first].min
    @max = [@max, v.last].max
end

puts "size_hash goes from #{@min} to #{@max}"

    # Given a number, return the name of the range which it belongs to.
def whichSize(p_number)
    @size_hash.each_pair do |k, v|
        return k if v.include?(p_number)
    end

    return "below minimum" if p_number < @min
    "above maximum" if p_number > @max
end

# test
[-10, 0, 1, 10, 14, 15, 20, 69, 70, 80, 139, 140, 1000].each do |e|
    puts "size of #{sprintf("%4s", e)} is #{whichSize(e)}"
end

$ ruby -w t.rb 
size_hash goes from 1 to 139
size of  -10 is below minimum
size of    0 is below minimum
size of    1 is Small
size of   10 is Small
size of   14 is Small
size of   15 is Medium
size of   20 is Medium
size of   69 is Medium
size of   70 is Large
size of   80 is Large
size of  139 is Large
size of  140 is above maximum
size of 1000 is above maximum
share|improve this answer

If you stored ranges as keys, you could do this:

size_hash = Hash.new {|hash, key| hash.find {|range,_| range.cover?(key) }.last }.merge({
  (1..14)   => 'Small',
  (15..69)  => 'Medium',
  (70..139) => 'Large'
})

This sets a default proc in the hash, so when you look up a value, like size_hash[9], the first range covering that value is returned. Bear in mind that this doesn't handle out-of-range errors.

share|improve this answer
    
This works as well, however it's a little more complex. –  Wes Foster Nov 25 '12 at 4:21

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