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I have an array with different IDs going from 1 to 4000. I need to add some elements in a database with an ID that would go in that array. Since the biggest ID possible is 4000 (wich is not that much in my case), I'd like to be able to find the lowest unused ID possible I could use for my new element.

I would know how to do that in C++, but since I'm pretty new in Ruby, I'm asking for help. in C++, I would write a loop in wich I would check if array[i] == array[i+1] - 1. If not the case, then the new id would be array[i] + 1.

I have juste no idea how to write that in Ruby.

Thank you very much for your help.

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This leads to id 1 referring to apples in january, but maybe to bananas in february. Normal procedure is letting the database manage the id collumn. The fact that you have a maximum of 4000 makes it look like the id's have a meaning (like 0-4000 is category food, 4001-5000 is toys) - a bad idea. –  steenslag Jan 9 '12 at 20:41

5 Answers 5

up vote 5 down vote accepted
array = [1, 2, 3, 5, 6]
(1..4000).to_a.-(array).min
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+1 @sawa, very nice and concise. Should run very quickly also. –  the Tin Man Jan 9 '12 at 22:12
    
@theTinMan Thanks, Tin Man. –  sawa Jan 9 '12 at 22:27
    
this is indeed very, very clever –  maprihoda Jan 9 '12 at 23:25
    
I used this one and it is working perfectly, thank you very much for your help! –  Cocotton Jan 10 '12 at 13:39

Using a range, you can find the first element that is not part of your array:

array = [1,2,3,5,6]
(1..4000).find { |i| !array.include?(i) }
# => 4
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1  
this might be very inefficient because the include? method could be called many thousand times (it's quadratic complexity) –  maprihoda Jan 9 '12 at 23:19
    
Yeah, there definitely is some slowness the higher the first available id is (when it' 3999, there's a noticeable delay). Other answers address this. –  Dylan Markow Jan 10 '12 at 1:47
def first_unused_id(ids)
  index = ids.each_index.find{|i| ids[i] + 1 != ids[i+1] }
  ids[index] + 1
end

Some explanation:

  • each_index will transform the array into an Enumerator giving the arrays indices.
  • find will return the first element that returns true from the block passed to it.
share|improve this answer

how about this one:

(1..4000).find { |i| array[i-1] != i }

similar to Dylan's answer but in this case, it simply checks whether the [n-1]th member of the array is n. If not, that index is "open" and is returned. This solution only requires one check per index, not 4000...

so for

array = [1,2,3,5,6]

this would find that array[4-1] != 4 (because array[3] = 5) and return 4 as the first available id.

(this requires a sorted array of indices but that has been assumed so far)

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1  
That would be off by one -- array[0] would be 1, not 0; it should be array[i-1]. Also, the code you posted doesn't work at all as is, since !array[i] will always be false. It should be array[i-1] != i –  Dylan Markow Jan 9 '12 at 20:41
    
thanks Dylan! edited. –  elijah Jan 9 '12 at 21:01
array = [1, 2, 3, 5, 6]

def lowest_unused(ids)
  ids.find { |e| ids.index(e) + 1 != e } - 1
end

p lowest_unused(array) # 4
share|improve this answer
    
similar to Jakub Hampl's answer but a bit simpler –  maprihoda Jan 9 '12 at 21:12

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