Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a hash of strings

navigable_objects = { 'Dashboard' => root_path,
                      'Timesheets' => timesheets_path,
                      'Clients' => clients_path,
                      'Projects' => projects_path, 
                    }

I want to convert them into another hash where the key is again the key, but the value is either the string 'active' or empty string depending on whether the current controller name contains the key.

For example, lets say that the current controller name is "ClientsController". The result I should get is:

{ 'Dashboard' => '',
  'Timesheets' => '',
  'Clients' => 'active',
  'Projects' => ''
}

Here is how I am currently doing it:

active = {}

navigable_objects.each do |name, path|
  active[name] = (controller.controller_name.include?(name)) ? 'active' : '')
end 

I feel that while this works, there is a better way to do this in Ruby, possibly using inject or each_with_objects?

share|improve this question
    
I would like to point out that while there are other solutions (all the posted ones so far are good), there's nothing particularly wrong with the way you did it originally. –  Ben Lee Mar 14 '12 at 1:06
    
I think the thing that irks me the most is the hash declaration at the top, and your each_with_objects solution pretty much solves that! –  link664 Mar 14 '12 at 1:12

3 Answers 3

up vote 2 down vote accepted

NOTE: I already answered but I'm posting this as a separate answer because it's better for your specific situation, but my other answer still has merit on its own.

Since you're not using the values of the hash at all, you can use each_with_object:

navigable_objects.keys.each_with_object({}) { |k,h| h[k] = controller.controller_name.include?(k) ? 'active' : '' }

Or more verbosely:

new_hash = navigable_objects.keys.each_with_object({}) do |key, hash|
   hash[key] = controller.controller_name.include?(key) ? 'active' : ''
end

If your result was based on the values too, then my other solution would work whereas this one wouldn't.

share|improve this answer

UPDATE: I posted another answer that I think is better for your situation. I'm leaving this one un-edited though because it has merit on its own for similar problems.

Here's the way I'd do it:

Hash[*navigable_objects.map{ |k,v| [k, controller.controller_name.include?(k) ? 'active' : ''] }.flatten]

You can run map on a hash that gets key and value pairs as input to the block. Then you can construct pairs of key/values into arrays as the output. Finally, Running Hash[*key_value_pairs.flatten] is a nice trick to turn it back into a hash. This works because you can pass an array of arguments to the Hash[] constructor to generate a hash (Hash[1, 2, 3, 4] => { 1 => 2, 3 => 4 }). And flatten turns the key value pairs into an array, and * operator turns an array into a list of arguments.

Here's a verbose version in case you want to see more clearly what's going on:

key_value_pairs = navigable_objects.map do |key, value|
    new_value = controller.controller_name.include?(k) ? 'active' : ''
    [key, new_value]
end

new_hash = Hash[*key_value_pairs.flatten]

Update: This above is compatible with ruby 1.8. As Andrew pointed out in the comments:

In 1.9 you don't need the * or flatten as Hash[] takes key-value array pairs

share|improve this answer
3  
In 1.9 you don't need the * or flatten as Hash[] takes key-value array pairs. –  Andrew Marshall Mar 14 '12 at 0:50

There are many many ways to accomplish this. This is just the way I'd do it.

With inject

active = navigable_objects.inject({}) do |h, obj|
  h[obj[0]] = controller.controller_name.include?(obj[0]) ? 'active' : ''
  h
end

When you call inject on a hash, the block is passed the thing you are injecting into (in this case a hash) and an array with the first element being the key and the last element being the value.

share|improve this answer
    
each_with_object is better here as you don't have to erroneously return the same hash reference every time :) –  Andrew Marshall Mar 14 '12 at 0:58
    
never used each_with_object, I could just h.merge({key => val}) –  Kyle Mar 14 '12 at 0:59
    
Nah; each_with_object is more typing and slower than inject (or tap). –  Phrogz Mar 14 '12 at 1:12

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.