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Ok started over, apologies for my verbose and poorly structured original post.

My question is basically this: is it possible to take an array of arrays and divide it into three equal-ish parts, sending each part to a hash where there are three key value pairs as described below?

Sample input: an array of arrays like:

orig_array = [[13, 11, 19, 17, 12, 5, 3], [3, 9, 2, 20], [5, 21, 15, 4], 
[18, 14, 16, 10], [6, 1, 8, 7], [15, 4, 17, 6], [3, 19, 13, 14], [9, 21, 12, 7], 
[20, 11, 2, 18], [8, 10, 1, 16], [10, 6, 21, 17], [15, 11, 14, 19], [13, 2, 9, 18], 
[5, 12, 16, 7], [20, 4, 1,8]]

Desired output: a hash where each key is a number starting with 1 and counting up, and each value is one third of the array, like:

hash = { 1=>[[array of arrays containing first 1/3rd elements from orig_array]], 
         2=>[[array of arrays containing next 1/3rd elements from orig_array]]
         3=>[[array of arrays containing next 1/3rd remaining elements from orig_array]]}

To be clear, this is part of an exercise for a class. The exercise is not to find a way to divide an array of arrays like this, I just feel like doing so could be part of one potential solution and am looking for guidance. Thanks!

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I'm having a hard time wrapping my head around the exercise. Is it an array of strings or an array of arrays? What would determine the grouping and keys when you transform it into a hash? –  Chuck May 14 at 23:59
    
show us what you have tried sample input and expected output –  bjhaid May 15 at 0:02
    
I initially posted by mistake as I wasn't finished writing, you must have found this right away. Anyway - I started with an array of strings, then I used the code above to create an array of arrays of strings. –  jrwalker14 May 15 at 0:08
1  
If you're going to downvote, leave a comment as to why. Anonymous downvoting doesn't help me learn how to properly use this forum. –  jrwalker14 May 15 at 0:15
    
@Chuck The grouping would be determined by the requirement that there be 3 lists. The keys can just be numbers starting with 0 or 1 and counting up to 3. I imagine there's an easy way I am missing to split an array into three parts, and send each part to a hash where the key = 1 (or "part one" - whatever) and the value is one third of the array I am splitting up. –  jrwalker14 May 15 at 0:21

1 Answer 1

up vote 4 down vote accepted
def unique_group_of_three(array)    
    multiple = array.size / 3
    return "Your collection is too small" if multiple < 5
    multiples = [multiple, multiple *2]
    array = array.shuffle

    {
        :first => array[0...multiple].uniq,
        :second => array[multiple...multiples[1]].uniq, 
        :third => array[multiples[1]..-1]].uniq
    }
end
share|improve this answer
    
this is cool, thanks! i just had to rearrange how line 2 is written to be multiple = array.size/3 to get it to run without an error, and i took out the array = array.shuffle because i have code that shuffles earlier in the method. Have to admit, I don't understand quite how this works yet but I'm working on it. Thanks! –  jrwalker14 May 15 at 16:44
    
You are correct, line 2 was backwards. array[0...multiple].uniq takes the first element of the array up to the element before the "multiple" element of the array and creates a new array out of those elements while Array#uniq removes any duplicates that may be within the array. –  mgidea May 15 at 17:56
    
I think this has a bug where it drops elements for arrays whose length is not an even multiple of three, though that case isn't well-specified in the OP. Also, a version of this that doesn't drop elements but instead just has one bucket that's smaller than the others can concisely be expressed as Hash[ array.shuffle.each_slice((array.length/3.0).ceil).map.with_index {|e, i| [i+1, e] } ]. –  Chuck May 15 at 18:24
    
modified for those dropped elements. Thanks –  mgidea May 15 at 18:31

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