A city's skyline is the outer contour of the silhouette formed by all the buildings in that city when viewed from a distance. Now suppose you are given the locations and height of all the buildings as shown on a cityscape photo (Figure A), write a program to output the skyline formed by these buildings collectively (Figure B).
The geometric information of each building is represented by a triplet of integers [Li, Ri, Hi]
, where Li
and Ri
are the x coordinates of the left and right edge of the ith building, respectively, and Hi
is its height. It is guaranteed that 0 ≤ Li, Ri ≤ INT_MAX
, 0 < Hi ≤ INT_MAX
, and Ri - Li > 0
. You may assume all buildings are perfect rectangles grounded on an absolutely flat surface at height 0.
For instance, the dimensions of all buildings in Figure A are recorded as: [ [2 9 10], [3 7 15], [5 12 12], [15 20 10], [19 24 8] ]
.
The output is a list of "key points" (red dots in Figure B) in the format of [ [x1,y1], [x2, y2], [x3, y3], ... ]
that uniquely defines a skyline. A key point is the left endpoint of a horizontal line segment. Note that the last key point, where the rightmost building ends, is merely used to mark the termination of the skyline, and always has zero height. Also, the ground in between any two adjacent buildings should be considered part of the skyline contour.
For instance, the skyline in Figure B should be represented as:[ [2 10], [3 15], [7 12], [12 0], [15 10], [20 8], [24, 0] ]
.
Notes:
- The number of buildings in any input list is guaranteed to be in the range
[0, 10000]
. - The input list is already sorted in ascending order by the left x position
Li
. - The output list must be sorted by the x position.
- There must be no consecutive horizontal lines of equal height in the output skyline. For instance,
[...[2 3], [4 5], [7 5], [11 5], [12 7]...]
is not acceptable; the three lines of height 5 should be merged into one in the final output as such:[...[2 3], [4 5], [12 7], ...]
把每一个building拆成两个edge,一个入一个出。所有的edge加入到一个list中。再对这个list进行排序,排序顺序为:如果两个边的position不一样,那么按pos排,否则根据edge是入还是出来排。根据position从前到后扫描每一个edge,将edge根据是入还是出来将当前height加入或者移除heap。再得到当前最高点来决定是否加入最终结果。
vector<pair<int, int>> getSkyline(vector<vector<int>>& buildings) { vector<pair<int,int>> height, skyline; for(auto& b:buildings) { height.push_back({b[0], -b[2]}); height.push_back({b[1], b[2]}); } sort(height.begin(), height.end()); multiset<int> m; int prev = 0; m.insert(0); for(auto& h:height) { if (h.second < 0) { m.insert(-h.second); } else { m.erase(m.find(h.second)); } int cur = *m.rbegin(); if(cur != prev) { skyline.push_back({h.first, cur}); prev = cur; } } return skyline; }
Java代码就要麻烦一些了:
public List<int[]> getSkyline(int[][] buildings) { List<int[]> result = new ArrayList<>(); List<int[]> height = new ArrayList<>(); for(int[] b:buildings) { height.add(new int[]{b[0], -b[2]}); height.add(new int[]{b[1], b[2]}); } Collections.sort(height, new Comparator<int[]>(){ public int compare(int[] a, int[] b) { if(a[0] != b[0]) return a[0] - b[0]; return a[1] - b[1]; } }); Queue<Integer> pq = new PriorityQueue<>(new Comparator<Integer>(){ public int compare(Integer a, Integer b) { return b - a; } }); pq.offer(0); int prev = 0; for(int[] h:height) { if(h[1] < 0) { pq.offer(-h[1]); } else { pq.remove(h[1]); } int cur = pq.peek(); if(prev != cur) { result.add(new int[]{h[0], cur}); prev = cur; } } return result; }
Reference:
http://www.cnblogs.com/easonliu/p/4531020.html
http://www.shuatiblog.com/blog/2014/07/01/The-Skyline-Problem/