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I have a map which either changes a value or sets it to nil. I then want to remove the nil entries from the list. The list doesn't need to be kept.

This is what I currently have:

items.map! { |x| process_x url } # [1, 2, 3, 4, 5] => [1, nil, 3, nil, nil]
items.select! { |x| !x.nil? } # [1, nil, 3, nil, nil] => [1, 3]

I'm aware I could just do a loop and conditionally collect in another array like this:

new_items = []
items.each do |x|
    x = process_x x
    new_items.append(x) unless x.nil?
end
items = new_items

But it doesn't seem that ruby-esque. Is there a nice way to run a function over a list removing/excluding the nils as you go?

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3 Answers 3

up vote 147 down vote accepted

Why not use compact?

[1, nil, 3, nil, nil].compact
=> [1, 3] 
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1  
Doh! Thanks, just having a late-night moment... –  Peter Hamilton Nov 21 '12 at 2:32
5  
Now that's ruby-esque! –  Christophe Marois May 16 '13 at 20:56
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In your example

items.map! { |x| process_x url } # [1, 2, 3, 4, 5] => [1, nil, 3, nil, nil]

it does not look like the values have changed other than being replaced with nil. If that is the case, then

items.select{ |x| process_x url }

will suffice.

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No idea why I didn't use this in the first place. A perfect example of why coding while half asleep is a terrible idea. Also I used items.select! since my array doesn't need to be kept. –  Peter Hamilton Nov 21 '12 at 12:05
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@the Tin Man, nice - I din't know this method. Well, definitely compact is the best way, but still can be also done with simple substraction:

[1, nil, 3, nil, nil] - [nil]
 => [1, 3]
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Yes, set subtraction will work, but it's about half as fast due to its overhead. –  the Tin Man Jan 16 at 18:44
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