Difference between revisions of "TADM2E 4.2"

Revision as of 22:33, 14 January 2018

(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.

(d) Same as above.

Revision as of 16:50, 11 October 2016 (view source) Letientai299 (talk \| contribs) ← Older edit		Revision as of 22:33, 14 January 2018 (view source) Rdc5174 (talk \| contribs) Newer edit →
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−	(a) ~~Check the first 3 integers in~~ the array, ~~and get rid~~ of the ~~middle one~~. ~~Repeat this with the next integer from the array and continue until we are left with the desired pair of integers, leading to an algorithm that runs in~~ <math>O(n)</math> worst-case time.	+	(a) Iterate over the array once, keeping track of the max and min values respectively for x and y. This will have <math>O(n)</math> worst-case time.

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