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back to boardO(n^3) accepted fairly easy I coded O(n^3) that was accepted fairly easy... But I know there is O(n^2) algo but I don't know how to implement it.. Any Ideas? Re: O(n^3) accepted fairly easy Posted by Madhav 15 Jun 2008 15:04 Yaa i have the idea of O(n^2).First you can can calculate the slopes of all lines in O(n^2).Create a class which contains the 2 points and the slope of the line joining two points.Note that there will be n(n+1)/2 nodes and define operator == as: slopes are equal and one point must be common to both the lines. Re: O(n^3) accepted fairly easy Posted by majorro 13 Oct 2020 05:00 I have tl with long double and wa with double on that O(n^2) solution Edited by author 13.10.2020 05:01 |
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