172 lines
4.4 KiB
Java
172 lines
4.4 KiB
Java
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import java.util.*;
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public class LineGeometry {
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static final double EPS = 1e-10;
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public static int sign(double a) {
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return a < -EPS ? -1 : a > EPS ? 1 : 0;
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}
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public static class Point implements Comparable<Point> {
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public double x, y;
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public Point(double x, double y) {
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this.x = x;
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this.y = y;
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}
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public Point minus(Point b) {
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return new Point(x - b.x, y - b.y);
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}
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public double cross(Point b) {
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return x * b.y - y * b.x;
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}
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public double dot(Point b) {
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return x * b.x + y * b.y;
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}
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public Point rotateCCW(double angle) {
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return new Point(x * Math.cos(angle) - y * Math.sin(angle), x * Math.sin(angle) + y * Math.cos(angle));
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}
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@Override
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public int compareTo(Point o) {
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// return Double.compare(Math.atan2(y, x), Math.atan2(o.y, o.x));
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return Double.compare(x, o.x) != 0 ? Double.compare(x, o.x) : Double.compare(y, o.y);
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}
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}
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public static class Line {
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public double a, b, c;
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public Line(double a, double b, double c) {
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this.a = a;
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this.b = b;
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this.c = c;
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}
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public Line(Point p1, Point p2) {
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a = +(p1.y - p2.y);
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b = -(p1.x - p2.x);
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c = p1.x * p2.y - p2.x * p1.y;
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}
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public Point intersect(Line line) {
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double d = a * line.b - line.a * b;
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if (sign(d) == 0) {
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return null;
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}
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double x = -(c * line.b - line.c * b) / d;
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double y = -(a * line.c - line.a * c) / d;
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return new Point(x, y);
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}
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}
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// Returns -1 for clockwise, 0 for straight line, 1 for counterclockwise order
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public static int orientation(Point a, Point b, Point c) {
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Point AB = b.minus(a);
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Point AC = c.minus(a);
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return sign(AB.cross(AC));
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}
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public static boolean cw(Point a, Point b, Point c) {
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return orientation(a, b, c) < 0;
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}
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public static boolean ccw(Point a, Point b, Point c) {
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return orientation(a, b, c) > 0;
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}
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public static boolean isCrossIntersect(Point a, Point b, Point c, Point d) {
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return orientation(a, b, c) * orientation(a, b, d) < 0 && orientation(c, d, a) * orientation(c, d, b) < 0;
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}
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public static boolean isCrossOrTouchIntersect(Point a, Point b, Point c, Point d) {
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if (Math.max(a.x, b.x) < Math.min(c.x, d.x) - EPS || Math.max(c.x, d.x) < Math.min(a.x, b.x) - EPS
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|| Math.max(a.y, b.y) < Math.min(c.y, d.y) - EPS || Math.max(c.y, d.y) < Math.min(a.y, b.y) - EPS) {
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return false;
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}
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return orientation(a, b, c) * orientation(a, b, d) <= 0 && orientation(c, d, a) * orientation(c, d, b) <= 0;
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}
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public static double pointToLineDistance(Point p, Line line) {
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return Math.abs(line.a * p.x + line.b * p.y + line.c) / fastHypot(line.a, line.b);
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}
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public static double fastHypot(double x, double y) {
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return Math.sqrt(x * x + y * y);
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}
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public static double sqr(double x) {
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return x * x;
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}
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public static double angleBetween(Point a, Point b) {
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return Math.atan2(a.cross(b), a.dot(b));
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}
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public static double angle(Line line) {
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return Math.atan2(-line.a, line.b);
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}
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public static double signedArea(Point[] points) {
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int n = points.length;
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double area = 0;
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for (int i = 0, j = n - 1; i < n; j = i++) {
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area += (points[i].x - points[j].x) * (points[i].y + points[j].y);
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// area += points[i].x * points[j].y - points[j].x * points[i].y;
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}
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return area / 2;
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}
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public static enum Position {
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LEFT, RIGHT, BEHIND, BEYOND, ORIGIN, DESTINATION, BETWEEN
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}
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// Classifies position of point p against vector a
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public static Position classify(Point p, Point a) {
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int s = sign(a.cross(p));
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if (s > 0) {
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return Position.LEFT;
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}
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if (s < 0) {
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return Position.RIGHT;
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}
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if (sign(p.x) == 0 && sign(p.y) == 0) {
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return Position.ORIGIN;
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}
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if (sign(p.x - a.x) == 0 && sign(p.y - a.y) == 0) {
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return Position.DESTINATION;
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}
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if (a.x * p.x < 0 || a.y * p.y < 0) {
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return Position.BEYOND;
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}
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if (a.x * a.x + a.y * a.y < p.x * p.x + p.y * p.y) {
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return Position.BEHIND;
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}
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return Position.BETWEEN;
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}
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// cuts right part of poly (returns left part)
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public static Point[] convexCut(Point[] poly, Point p1, Point p2) {
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int n = poly.length;
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List<Point> res = new ArrayList<>();
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for (int i = 0, j = n - 1; i < n; j = i++) {
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int d1 = orientation(p1, p2, poly[j]);
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int d2 = orientation(p1, p2, poly[i]);
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if (d1 >= 0)
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res.add(poly[j]);
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if (d1 * d2 < 0)
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res.add(new Line(p1, p2).intersect(new Line(poly[j], poly[i])));
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}
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return res.toArray(new Point[res.size()]);
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}
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// Usage example
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public static void main(String[] args) {
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}
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}
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