TADM2E 4.2

(a) Iterate over the array once, keeping track of the max and min values respectively for x and y. This will have $$ O(n) $$ worst-case time.

(b) The answer is straight forward: $$ S[1] $$ and $$ S[n], $$ since they are the two extreme values.

(c) Sort the array with any $n\log(n)$ method. Then scan through the sorted array to find the smallest gap, thus the desired pair.