Leetcode: Perfect Rectangle

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Given N axis-aligned rectangles where N > 0, determine if they all together form an exact cover of a rectangular region.

Each rectangle is represented as a bottom-left point and a top-right point. For example, a unit square is represented as [1,1,2,2]. (coordinate of bottom-left point is (1, 1) and top-right point is (2, 2)).


Example 1:
技术分享 rectangles
= [ [1,1,3,3], [3,1,4,2], [3,2,4,4], [1,3,2,4], [2,3,3,4] ] Return true. All 5 rectangles together form an exact cover of a rectangular region. Example 2:
技术分享
rectangles = [
  [1,1,2,3],
  [1,3,2,4],
  [3,1,4,2],
  [3,2,4,4]
]

Return false. Because there is a gap between the two rectangular regions.

Example 3:
技术分享
rectangles = [
  [1,1,3,3],
  [3,1,4,2],
  [1,3,2,4],
  [3,2,4,4]
]

Return false. Because there is a gap in the top center.

Example 4:
技术分享

rectangles = [
  [1,1,3,3],
  [3,1,4,2],
  [1,3,2,4],
  [2,2,4,4]
]

Return false. Because two of the rectangles overlap with each other.

Refer to https://discuss.leetcode.com/topic/56052/really-easy-understanding-solution-o-n-java

and   https://discuss.leetcode.com/topic/55923/o-n-solution-by-counting-corners-with-detailed-explaination

Idea

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Consider how the corners of all rectangles appear in the large rectangle if there‘s a perfect rectangular cover.
Rule1: The local shape of the corner has to follow one of the three following patterns

    • Corner of the large rectangle (blue): it occurs only once among all rectangles
    • T-junctions (green): it occurs twice among all rectangles
    • Cross (red): it occurs four times among all rectangles

For each point being a corner of any rectangle, it should appear even times except the 4 corners of the large rectangle. So we can put those points into a hash map and remove them if they appear one more time.

At the end, we should only get 4 points. 

Rule2:  the large rectangle area should be equal to the sum of small rectangles

 1 public class Solution {
 2     public boolean isRectangleCover(int[][] rectangles) {
 3         if (rectangles==null || rectangles.length==0 || rectangles[0].length==0) return false;
 4         int subrecAreaSum = 0;  //sum of subrectangle‘s area
 5         int x1 = Integer.MAX_VALUE; //large rectangle bottom left x-axis
 6         int y1 = Integer.MAX_VALUE; //large rectangle bottom left y-axis
 7         int x2 = Integer.MIN_VALUE; //large rectangle top right x-axis
 8         int y2 = Integer.MIN_VALUE; //large rectangle top right y-axis
 9         
10         HashSet<String> set = new HashSet<String>(); // store points
11         
12         for(int[] rec : rectangles) {
13             //check if it has large rectangle‘s 4 points
14             x1 = Math.min(x1, rec[0]);
15             y1 = Math.min(y1, rec[1]);
16             x2 = Math.max(x2, rec[2]);
17             y2 = Math.max(y2, rec[3]);
18             
19             //calculate sum of subrectangles
20             subrecAreaSum += (rec[2]-rec[0]) * (rec[3] - rec[1]);
21             
22             //store this rectangle‘s 4 points into hashSet
23             String p1 = Integer.toString(rec[0]) + "" + Integer.toString(rec[1]);
24             String p2 = Integer.toString(rec[0]) + "" + Integer.toString(rec[3]);
25             String p3 = Integer.toString(rec[2]) + "" + Integer.toString(rec[1]);
26             String p4 = Integer.toString(rec[2]) + "" + Integer.toString(rec[3]);
27             
28             if (!set.add(p1)) set.remove(p1);
29             if (!set.add(p2)) set.remove(p2);
30             if (!set.add(p3)) set.remove(p3);
31             if (!set.add(p4)) set.remove(p4);
32         }
33         
34         if (set.size()!=4 || !set.contains(x1+""+y1) || !set.contains(x1+""+y2) || !set.contains(x2+""+y1) || !set.contains(x2+""+y2))
35             return false;
36         return subrecAreaSum == (x2-x1) * (y2-y1);
37     }
38 }

 




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