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Below is my code to solve the following problem:

Write a function, nearest_larger(arr, i) which takes an array and an index. The function should return another index, j: this should satisfy:

(a) arr[i] < arr[j], AND (b) there is no j2 closer to i than j where arr[i] < arr[j].

In case of ties choose the earliest (left-most) of the two indices. If no number in arr is larger than arr[i], return nil.

This was my attempt:

def nearest_larger(arr, i)
k = 1
loop do 
    jleft = i - k
    jright = i + k
    if (arr[i] < arr[jleft]) && (jleft >= 0)
        return jleft
    elsif (arr[i] < arr[jright]) && (jright < arr.length)
        return jright
    elsif (jleft < 0) && (jright >= arr.length)
        return nil
    end
    k += 1
end
end

This is the actual correct answer

def nearest_larger(arr, idx)
  diff = 1
  loop do
    left = idx - diff
    right = idx + diff

    if (left >= 0) && (arr[left] > arr[idx])
      return left
    elsif (right < arr.length) && (arr[right] > arr[idx])
      return right
    elsif (left < 0) && (right >= arr.length)
      return nil
    end

    diff += 1
  end
end

While my code works well for many of the values I tested when I use certain combinations like this:

x = [1,6,9,4,5]
puts nealest_larger(x, 4)

I get this error

calc.rb:8:in `<': comparison of Fixnum with nil failed (ArgumentError)
        from calc.rb:8:in `block in nealest_larger'
        from calc.rb:3:in `loop'
        from calc.rb:3:in `nealest_larger'
        from calc.rb:40:in `<main>'

Can someone tell me how my code differs from the actual answer, to me it seems like it should behave exactly the same but I must have missed some syntax or overlooked a piece of logic. I need another pair of eyes as I am unable to see the difference, thanks!

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2  
How is j2 relevant to condition (b)? –  sawa May 2 at 23:35
    
I don't understand your question –  user3597950 May 3 at 0:44

2 Answers 2

up vote 2 down vote accepted

Your version uses array indices before you've checked that they're in-bounds, i.e., on the left-hand side of the &&. The working version checks for in-bounds first, then uses the index if it's legal. Because Ruby && short circuits, test && use approach avoids the problem you ran into with your implementation.

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The 8th line of code in your solution compares the values in the array before first checking the bounds of the array. Notice the correct solution does those comparisons in the reverse order, and the && operator short circuits, avoiding the second (invalid) comparison.

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