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Need help with this homework problem. How do I write a function, nearest_larger(arr, i) which takes an array and an index. The function should return another index. The conditions are below. Thanks.

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 (see example beow), choose the earliest (left-most) of the two indices. If no number in arr is largr than arr[i], return nil.

example:

nearest_larger([2,3,4,8], 2).should == 3 end

My code is:

def nearest_larger(arr, idx)

  greater_nums = []

  arr.each {|element| greater_nums << element if element>idx}

    sorted_greater_nums= greater_nums.sort

    nearest_larger = sorted_greater_nums[0]

    arr.index(nearest_larger)

end

THANKS a lot guys. See post below for solution

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4  
It'd be good for you to learn how to format your questions. As you write them you can use the "?" button above the entry text box to bring up help for all aspects of formatting the content. –  the Tin Man May 16 '13 at 18:44
    
Can you post what you are testing your code against and what do you get in return? –  PNY May 16 '13 at 19:24
    
Why are you trying to do it "without the left/right way"? Are you aware this approach is significantly less efficient? (I'm not saying that it necessarily really matters—just curious why this would be your preference and also whether or not you're at least aware of the inefficiency.) –  Dan Tao May 16 '13 at 19:41
    
Also, as I pointed out in another comment, your sorting approach will not return correct results for unsorted arrays. Try: nearest_larger([1, 2, 0], 2) –  Dan Tao May 16 '13 at 19:44
    
I don't get the question. Can someone explain what this question is asking? A makes sense. B not so much. At first I thought it was trying to find the nearest number larger than idx in the array, but that's not true given the second rspec test where 2 should yield 1.. –  Peege151 May 10 '14 at 1:00

1 Answer 1

up vote 3 down vote accepted

I see at least two mistakes here.

First, your code seems to assume the array is sorted. (Otherwise why would taking the least of greater_nums give you the closest index?) But from your requirements (choose the left-most index in case of a tie), that is clearly not guaranteed.

More importantly, in your each loop you're comparing element to idx (the index passed in) rather than arr[idx].

I think what you really want to do is something like this:

def nearest_larger(arr, idx)
  value = arr[idx]

  # Ensure idx is actually valid.
  return nil if idx < 0 || idx >= arr.length

  left, right = [idx - 1, idx + 1]
  while (left >= 0 || right < arr.length)
    # Always check left first, per the requirement.
    return left if left >= 0 && arr[left] > value
    return right if right < arr.length && arr[right] > value

    # Incrementally move farther and farther left/right from the specified index
    # looking for a larger value.
    left, right = [left - 1, right + 1]
  end

  # This will return nil if no values were larger than arr[idx].
end
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This will fail for small arrays of size: 0, 1 and 2. Also if index is 0 and array.length -1! –  mbj May 16 '13 at 19:15
    
@mbj: It would originally only have failed if idx was outside of the array entirely. I've added a check for that case. You're wrong about the other scenarios, though (load up irb and try it). –  Dan Tao May 16 '13 at 19:22
    
Thanks a lot guys! –  JaTo May 16 '13 at 19:26
    
def nearest_larger(arr, idx) greater_nums = [] arr.each {|element| greater_nums << element if element>arr[idx]} sorted_greater_nums= greater_nums.sort nearest_larger = sorted_greater_nums[0] answer =arr.index(nearest_larger) puts answer end –  JaTo May 16 '13 at 19:27
    
@user2391263: That's not going to work if the array isn't sorted. Try it on this input: nearest_larger([1, 2, 0], 2). It will output 0 even though the element at index 1 is still larger, and closer. –  Dan Tao May 16 '13 at 19:30

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