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Give an array, how to find next unused number?

["10", "2", "3", "5", "6", "7"], it should return "4"

["1", "2", "3"], it should return "4".

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closed as too localized by the Tin Man, sawa, Eitan T, Jeremiah Willcock, Nikhil Oct 28 '12 at 5:56

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2  
Looks like we are doing your homework? An idea is to 1) sort your array and 2) populate a new array with help of a Range object starting with the first array element and with the same lenght. Then substract array 1 from array 2. The first element in array 2 is your number. –  Jochem Schulenklopper Oct 27 '12 at 15:01
4  
why wouldn't the first example return "1"? –  Prakash Murthy Oct 27 '12 at 15:06
    
@jschulenklopper Sorry for my question, and thanks for your tips. I will try myself. –  qichunren Oct 27 '12 at 15:06
    
@PrakashMurthy Just use the smallest element in array as start point. –  qichunren Oct 27 '12 at 15:08
    
Minor remark - I didn't edit the question because then some answers would contain an inexplicable to_i - is that your arrays don't contain numbers but strings (with numeric characters). The second array should be [1, 2, 3] with 4 being the answer. –  Jochem Schulenklopper Oct 27 '12 at 17:33

3 Answers 3

up vote 2 down vote accepted

Here you go:

def next_unused(ary)
    sary = ary.collect(&:to_i).sort
    i = 0
    s = sary[0]
    # puts "ary: #{sary.inspect}, s: #{s}"
    while (i<sary.size && (s == sary[i])) do
        # puts "s:#{s}, sary:#{sary[i]}"
        s += 1
        i += 1
    end
    s.to_s
end
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uncomment to understand how it works –  AnandVeeramani Oct 27 '12 at 15:18
    
I think your first answer is easy to understand, and more simple. I like that one. Thank you. –  qichunren Oct 27 '12 at 15:19
    
i just captured it inside a function: next_unused(["10", "2", "3", "5", "6", "7"]) => 4 and 1.9.3p194 :181 > next_unused(["1","2","3"]) => 4 –  AnandVeeramani Oct 27 '12 at 15:21
    
Both of them are same logic, let me know what you find dificult I might help you, after all am a ruby pro ;) –  AnandVeeramani Oct 27 '12 at 15:27

Using higher-order functions generally leads to more concise and elegant solutions than explicit loops and accumulator variables...

require 'set'
used = ["1","2","3"].map(&:to_i).to_set
1.upto(Float::INFINITY).detect { |n| not used.include?(n) }

Using a Set makes this solution run quickly even in cases where you have very many "used" numbers. If you know that there will never be many "used" numbers, you can skip converting the array of used numbers into a set. #include? works on arrays too.

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+1, definitely the most elegant and concise. Note that you can use Float::INFINITY instead of obtaining it by hand. Also ! should be used instead of not, as it's boolean logic, not control flow. –  Andrew Marshall Oct 27 '12 at 15:37
    
Thanks for the suggestion about Float::INFINITY (answer updated). I personally don't differentiate between boolean logic/control flow when deciding to whether use not or ! -- I use whatever (subjectively) seems more readable. ! tacked on front of an even moderately complex expression hurts my eyes. –  Alex D Oct 27 '12 at 17:07

perhaps like this?

a = ["10", "2", "3", "5", "6", "7"]
actual = a.map(&:to_i)
full = ((actual.min)..(actual.max)).to_a

p (full - actual).first
#=> 4

a = ["1", "2", "3"]
p a.map(&:to_i).max + 1
#=> 4    
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