2023-03-14 08:02:43 +03:00
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/*
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recast4j copyright (c) 2021 Piotr Piastucki piotr@jtilia.org
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This software is provided 'as-is', without any express or implied
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warranty. In no event will the authors be held liable for any damages
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arising from the use of this software.
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Permission is granted to anyone to use this software for any purpose,
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including commercial applications, and to alter it and redistribute it
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freely, subject to the following restrictions:
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1. The origin of this software must not be misrepresented; you must not
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claim that you wrote the original software. If you use this software
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in a product, an acknowledgment in the product documentation would be
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appreciated but is not required.
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2. Altered source versions must be plainly marked as such, and must not be
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misrepresented as being the original software.
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3. This notice may not be removed or altered from any source distribution.
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*/
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using System;
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2023-03-16 19:09:10 +03:00
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namespace DotRecast.Detour
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{
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using static DetourCommon;
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2023-03-16 19:48:49 +03:00
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/**
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2023-03-14 08:02:43 +03:00
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* Convex-convex intersection based on "Computational Geometry in C" by Joseph O'Rourke
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*/
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2023-03-16 19:48:49 +03:00
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public static class ConvexConvexIntersection
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{
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private static readonly float EPSILON = 0.0001f;
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private enum InFlag
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{
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Pin,
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Qin,
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Unknown,
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}
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private enum Intersection
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{
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None,
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Single,
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Overlap,
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}
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public static float[] intersect(float[] p, float[] q)
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{
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int n = p.Length / 3;
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int m = q.Length / 3;
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float[] inters = new float[Math.Max(m, n) * 3 * 3];
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int ii = 0;
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/* Initialize variables. */
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float[] a = new float[3];
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float[] b = new float[3];
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float[] a1 = new float[3];
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float[] b1 = new float[3];
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int aa = 0;
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int ba = 0;
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int ai = 0;
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int bi = 0;
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InFlag f = InFlag.Unknown;
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bool FirstPoint = true;
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float[] ip = new float[3];
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float[] iq = new float[3];
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do
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{
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vCopy(a, p, 3 * (ai % n));
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vCopy(b, q, 3 * (bi % m));
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vCopy(a1, p, 3 * ((ai + n - 1) % n)); // prev a
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vCopy(b1, q, 3 * ((bi + m - 1) % m)); // prev b
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float[] A = vSub(a, a1);
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float[] B = vSub(b, b1);
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float cross = B[0] * A[2] - A[0] * B[2]; // triArea2D({0, 0}, A, B);
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float aHB = triArea2D(b1, b, a);
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float bHA = triArea2D(a1, a, b);
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if (Math.Abs(cross) < EPSILON)
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{
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cross = 0f;
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}
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bool parallel = cross == 0f;
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Intersection code = parallel ? parallelInt(a1, a, b1, b, ip, iq) : segSegInt(a1, a, b1, b, ip, iq);
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if (code == Intersection.Single)
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{
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if (FirstPoint)
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{
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FirstPoint = false;
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aa = ba = 0;
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}
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ii = addVertex(inters, ii, ip);
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f = inOut(f, aHB, bHA);
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}
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/*-----Advance rules-----*/
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/* Special case: A & B overlap and oppositely oriented. */
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if (code == Intersection.Overlap && vDot2D(A, B) < 0)
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{
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ii = addVertex(inters, ii, ip);
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ii = addVertex(inters, ii, iq);
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break;
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}
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/* Special case: A & B parallel and separated. */
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if (parallel && aHB < 0f && bHA < 0f)
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{
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return null;
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}
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/* Special case: A & B collinear. */
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else if (parallel && Math.Abs(aHB) < EPSILON && Math.Abs(bHA) < EPSILON)
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{
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/* Advance but do not output point. */
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if (f == InFlag.Pin)
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{
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ba++;
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bi++;
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}
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else
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{
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aa++;
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ai++;
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}
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}
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/* Generic cases. */
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else if (cross >= 0)
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{
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if (bHA > 0)
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{
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if (f == InFlag.Pin)
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{
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ii = addVertex(inters, ii, a);
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}
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aa++;
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ai++;
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}
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else
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{
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if (f == InFlag.Qin)
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{
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ii = addVertex(inters, ii, b);
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}
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ba++;
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bi++;
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}
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}
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else
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{
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if (aHB > 0)
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{
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if (f == InFlag.Qin)
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{
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ii = addVertex(inters, ii, b);
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}
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ba++;
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bi++;
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}
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else
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{
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if (f == InFlag.Pin)
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{
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ii = addVertex(inters, ii, a);
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}
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aa++;
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ai++;
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}
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}
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/* Quit when both adv. indices have cycled, or one has cycled twice. */
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} while ((aa < n || ba < m) && aa < 2 * n && ba < 2 * m);
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/* Deal with special cases: not implemented. */
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if (f == InFlag.Unknown)
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{
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return null;
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}
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float[] copied = new float[ii];
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Array.Copy(inters, copied, ii);
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return copied;
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}
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private static int addVertex(float[] inters, int ii, float[] p)
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{
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if (ii > 0)
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{
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if (inters[ii - 3] == p[0] && inters[ii - 2] == p[1] && inters[ii - 1] == p[2])
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{
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return ii;
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}
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if (inters[0] == p[0] && inters[1] == p[1] && inters[2] == p[2])
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{
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return ii;
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}
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}
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inters[ii] = p[0];
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inters[ii + 1] = p[1];
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inters[ii + 2] = p[2];
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return ii + 3;
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}
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private static InFlag inOut(InFlag inflag, float aHB, float bHA)
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{
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if (aHB > 0)
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{
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return InFlag.Pin;
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}
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else if (bHA > 0)
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{
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return InFlag.Qin;
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}
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return inflag;
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}
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private static Intersection segSegInt(float[] a, float[] b, float[] c, float[] d, float[] p, float[] q)
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{
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var isec = intersectSegSeg2D(a, b, c, d);
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if (null != isec)
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{
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float s = isec.Item1;
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float t = isec.Item2;
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if (s >= 0.0f && s <= 1.0f && t >= 0.0f && t <= 1.0f)
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{
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p[0] = a[0] + (b[0] - a[0]) * s;
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p[1] = a[1] + (b[1] - a[1]) * s;
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p[2] = a[2] + (b[2] - a[2]) * s;
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return Intersection.Single;
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}
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}
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return Intersection.None;
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}
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private static Intersection parallelInt(float[] a, float[] b, float[] c, float[] d, float[] p, float[] q)
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{
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if (between(a, b, c) && between(a, b, d))
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{
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vCopy(p, c);
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vCopy(q, d);
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return Intersection.Overlap;
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}
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if (between(c, d, a) && between(c, d, b))
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{
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vCopy(p, a);
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vCopy(q, b);
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return Intersection.Overlap;
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}
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if (between(a, b, c) && between(c, d, b))
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{
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vCopy(p, c);
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vCopy(q, b);
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return Intersection.Overlap;
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}
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if (between(a, b, c) && between(c, d, a))
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{
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vCopy(p, c);
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vCopy(q, a);
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return Intersection.Overlap;
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}
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if (between(a, b, d) && between(c, d, b))
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{
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vCopy(p, d);
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vCopy(q, b);
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return Intersection.Overlap;
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}
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if (between(a, b, d) && between(c, d, a))
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{
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vCopy(p, d);
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vCopy(q, a);
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return Intersection.Overlap;
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}
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return Intersection.None;
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}
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private static bool between(float[] a, float[] b, float[] c)
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{
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if (Math.Abs(a[0] - b[0]) > Math.Abs(a[2] - b[2]))
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{
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return ((a[0] <= c[0]) && (c[0] <= b[0])) || ((a[0] >= c[0]) && (c[0] >= b[0]));
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}
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else
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{
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return ((a[2] <= c[2]) && (c[2] <= b[2])) || ((a[2] >= c[2]) && (c[2] >= b[2]));
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}
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}
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}
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}
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