In this guide, you will get 223. Rectangle Area LeetCode Solution with the best time and space complexity. The solution to Rectangle Area problem is provided in various programming languages like C++, Java, and Python. This will be helpful for you if you are preparing for placements, hackathons, interviews, or practice purposes. The solutions provided here are very easy to follow and include detailed explanations.
Given the coordinates of two rectilinear rectangles in a 2D plane, return the total area covered by the two rectangles.
The first rectangle is defined by its bottom-left corner (ax1, ay1) and its top-right corner (ax2, ay2).
The second rectangle is defined by its bottom-left corner (bx1, by1) and its top-right corner (bx2, by2).
class Solution {
public:
int computeArea(long A, long B, long C, long D, //
long E, long F, long G, long H) {
const long x = max(A, E) < min(C, G) ? (min(C, G) - max(A, E)) : 0;
const long y = max(B, F) < min(D, H) ? (min(D, H) - max(B, F)) : 0;
return (C - A) * (D - B) + (G - E) * (H - F) - x * y;
}
};
/* code provided by PROGIEZ */
223. Rectangle Area LeetCode Solution in Java
class Solution {
public int computeArea(long A, long B, long C, long D, long E, long F, long G, long H) {
final long x = Math.max(A, E) < Math.min(C, G) ? (Math.min(C, G) - Math.max(A, E)) : 0;
final long y = Math.max(B, F) < Math.min(D, H) ? (Math.min(D, H) - Math.max(B, F)) : 0;
return (int) ((C - A) * (D - B) + (G - E) * (H - F) - x * y);
}
}
// code provided by PROGIEZ
223. Rectangle Area LeetCode Solution in Python
class Solution:
def computeArea(self,
A: int, B: int, C: int, D: int,
E: int, F: int, G: int, H: int) -> int:
x = min(C, G) - max(A, E) if max(A, E) < min(C, G) else 0
y = min(D, H) - max(B, F) if max(B, F) < min(D, H) else 0
return (C - A) * (D - B) + (G - E) * (H - F) - x * y
# code by PROGIEZ
