Find the total area covered by two rectilinear rectangles in a 2D plane.
Each rectangle is defined by its bottom left corner and top right corner as shown in the figure.
Example:
Input: A = -3, B = 0, C = 3, D = 4, E = 0, F = -1, G = 9, H = 2 Output: 45
Note:
Assume that the total area is never beyond the maximum possible value of int.
思路:
我们只需要将重叠的区域的面积计算出来,然后让两个矩形的面积相加减去重叠的矩形的面积就可以了。
class Solution {
public:
int computeArea(int A, int B, int C, int D, int E, int F, int G, int H) {
double total = double(C - A)*(D - B) + (G - E)*(H - F);
int x1, y1, x2, y2;
if (A <= E && E <= C) x1 = E;
else if (E <= A && A <= G) x1 = A;
else return total;
if (F <= B && B <= H) y1 = B;
else if (B <= F && F <= D) y1 = F;
else return total;
if (E <= C && C <= G) x2 = C;
else if (A <= G && G <= C) x2 = G;
else return total;
if (B <= H && H <= D) y2 = H;
else if (F <= D && D <= H) y2 = D;
else return total;
return total - (x2 - x1) * (y2 - y1);
}
};