291 lines
9.8 KiB
C++
291 lines
9.8 KiB
C++
#include <algorithm>
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#include "Collision/Collision.h"
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#include "Engine/GLM.h"
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#include "Core/World.h"
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#include "Rendering/Model.h"
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namespace Collision
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{
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//note: this one hasnt been delta adjusted like RayVsAABB has
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bool RayAABBIntr(const Ray& ray, const AABB& box)
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{
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glm::vec3 w = 75.0f * ray.Direction();
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glm::vec3 v = glm::abs(w);
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glm::vec3 c = ray.Origin() - box.Origin() + w;
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glm::vec3 half = box.HalfSize();
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if (abs(c.x) > v.x + half.x) {
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return false;
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}
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if (abs(c.y) > v.y + half.y) {
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return false;
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}
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if (abs(c.z) > v.z + half.z) {
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return false;
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}
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if (abs(c.y*w.z - c.z*w.y) > half.y*v.z + half.z*v.y) {
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return false;
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}
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if (abs(c.x*w.z - c.z*w.x) > half.x*v.z + half.z*v.x) {
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return false;
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}
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return !(abs(c.x*w.y - c.y*w.x) > half.x*v.y + half.y*v.x);
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}
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bool RayVsAABB(const Ray& ray, const AABB& box)
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{
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float dummy;
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return RayVsAABB(ray, box, dummy);
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}
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bool RayVsAABB(const Ray& ray, const AABB& box, float& outDistance)
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{
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glm::vec3 invdir = 1.0f / ray.Direction();
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glm::vec3 origin = ray.Origin();
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float t1 = (box.MinCorner().x - origin.x)*invdir.x;
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float t2 = (box.MaxCorner().x - origin.x)*invdir.x;
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float t3 = (box.MinCorner().y - origin.y)*invdir.y;
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float t4 = (box.MaxCorner().y - origin.y)*invdir.y;
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float t5 = (box.MinCorner().z - origin.z)*invdir.z;
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float t6 = (box.MaxCorner().z - origin.z)*invdir.z;
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float tmin = std::max(std::max(std::min(t1, t2), std::min(t3, t4)), std::min(t5, t6));
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float tmax = std::min(std::min(std::max(t1, t2), std::max(t3, t4)), std::max(t5, t6));
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//if (tmax < 0 || tmin > tmax)
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//if tmin,tmax are almost the same (i.e. hitting exactly in the corner) then tmin might be slightly
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//greater than tmax becuase of floating-precision problems. fixed by adding a small delta to tmax
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if (tmax < 0 || tmin>(tmax + 0.0001f))
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return false;
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outDistance = (tmin > 0) ? tmin : tmax;
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return true;
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}
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bool AABBVsAABB(const AABB& a, const AABB& b)
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{
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const glm::vec3& aCenter = a.Origin();
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const glm::vec3& bCenter = b.Origin();
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const glm::vec3& aHSize = a.HalfSize();
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const glm::vec3& bHSize = b.HalfSize();
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//Test will probably exit because of the X and Z axes more often, so test them first.
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if (abs(aCenter[0] - bCenter[0]) > (aHSize[0] + bHSize[0])) {
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return false;
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}
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if (abs(aCenter[2] - bCenter[2]) > (aHSize[2] + bHSize[2])) {
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return false;
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}
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return (abs(aCenter[1] - bCenter[1]) <= (aHSize[1] + bHSize[1]));
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}
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bool AABBVsAABB(const AABB& a, const AABB& b, glm::vec3& minimumTranslation)
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{
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minimumTranslation = glm::vec3(0, 0, 0);
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const glm::vec3& aMax = a.MaxCorner();
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const glm::vec3& bMax = b.MaxCorner();
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const glm::vec3& aMin = a.MinCorner();
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const glm::vec3& bMin = b.MinCorner();
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const glm::vec3& bSize = b.Size();
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const glm::vec3& aSize = a.Size();
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float minOffset = INFINITY;
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float off;
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auto axisesIntersecting = glm::tvec3<bool, glm::highp>(false, false, false);
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for (int i = 0; i < 3; ++i) {
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off = bMax[i] - aMin[i];
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if (off > 0 && off < bSize[i] + aSize[i]) {
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if (off < minOffset) {
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minimumTranslation = glm::vec3();
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minimumTranslation[i] = minOffset = off;
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}
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axisesIntersecting[i] = true;
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}
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off = aMax[i] - bMin[i];
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if (off > 0 && off < bSize[i] + aSize[i]) {
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if (off < minOffset) {
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minOffset = off;
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minimumTranslation = glm::vec3();
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minimumTranslation[i] = -off;
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}
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axisesIntersecting[i] = true;
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}
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}
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return glm::all(axisesIntersecting);
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}
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bool RayVsModel(const Ray& ray,
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const std::vector<RawModel::Vertex>& modelVertices,
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const std::vector<unsigned int>& modelIndices)
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{
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for (int i = 0; i < modelIndices.size(); ++i) {
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glm::vec3 v0 = modelVertices[modelIndices[i]].Position;
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glm::vec3 e1 = modelVertices[modelIndices[++i]].Position - v0; //v1 - v0
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glm::vec3 e2 = modelVertices[modelIndices[++i]].Position - v0; //v2 - v0
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glm::vec3 m = ray.Origin() - v0;
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glm::vec3 MxE1 = glm::cross(m, e1);
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glm::vec3 DxE2 = glm::cross(ray.Direction(), e2);
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float DetInv = glm::dot(e1, DxE2);
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if (std::abs(DetInv) < FLT_EPSILON) {
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continue;
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}
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DetInv = 1.0f / DetInv;
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float u = glm::dot(m, DxE2) * DetInv;
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float v = glm::dot(ray.Direction(), MxE1) * DetInv;
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//u,v can be very close to 0 but still negative sometimes. added a deltafactor to compensate for that problem
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if ((u + 0.001f) < 0 || (v + 0.001f) < 0 || 1 < u + v) {
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continue;
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}
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//Here, u and v are positive, u+v <= 1, and if distance is positive - triangle is hit.
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if (0 <= glm::dot(e2, MxE1) * DetInv) {
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return true;
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}
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}
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return false;
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}
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bool RayVsModel(const Ray& ray,
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const std::vector<RawModel::Vertex>& modelVertices,
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const std::vector<unsigned int>& modelIndices,
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float& outDistance,
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float& outUCoord,
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float& outVCoord)
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{
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outDistance = INFINITY;
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bool hit = false;
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for (int i = 0; i < modelIndices.size(); ++i) {
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glm::vec3 v0 = modelVertices[modelIndices[i]].Position;
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glm::vec3 e1 = modelVertices[modelIndices[++i]].Position - v0; //v1 - v0
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glm::vec3 e2 = modelVertices[modelIndices[++i]].Position - v0; //v2 - v0
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glm::vec3 m = ray.Origin() - v0;
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glm::vec3 MxE1 = glm::cross(m, e1);
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glm::vec3 DxE2 = glm::cross(ray.Direction(), e2);//pVec
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float DetInv = glm::dot(e1, DxE2);
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if (std::abs(DetInv) < FLT_EPSILON) {
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continue;
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}
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DetInv = 1.0f / DetInv;
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float dist = glm::dot(e2, MxE1) * DetInv;
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if (dist >= outDistance) {
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continue;
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}
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float u = glm::dot(m, DxE2) * DetInv;
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float v = glm::dot(ray.Direction(), MxE1) * DetInv;
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//u,v can be very close to 0 but still negative sometimes. added a deltafactor to compensate for that problem
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//If u and v are positive, u+v <= 1, dist is positive, and less than closest.
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if (0 <= (u + 0.001f) && 0 <= (v + 0.001f) && u + v <= 1 && 0 <= dist) {
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outDistance = dist;
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outUCoord = u;
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outVCoord = v;
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hit = true;
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}
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}
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return hit;
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}
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bool RayVsModel(const Ray& ray,
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const std::vector<RawModel::Vertex>& modelVertices,
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const std::vector<unsigned int>& modelIndices,
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glm::vec3& outHitPosition)
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{
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float u;
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float v;
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float dist;
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bool hit = RayVsModel(ray, modelVertices, modelIndices, dist, u, v);
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outHitPosition = ray.Origin() + dist * ray.Direction();
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return hit;
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}
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bool AABBvsTriangles(const AABB& box, const std::vector<RawModel::Vertex>& modelVertices, const std::vector<unsigned int>& modelIndices, const glm::mat4& modelMatrix, glm::vec3& outResolutionVector)
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{
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bool hit = false;
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const glm::vec3& origin = box.Origin();
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const glm::vec3& min = box.MinCorner();
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const glm::vec3& max = box.MaxCorner();
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outResolutionVector.x = INFINITY;
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for (int i = 0; i < modelIndices.size(); ++i) {
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glm::vec3 p = modelVertices[i].Position;
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p = glm::vec3(modelMatrix * glm::vec4(p.x, p.y, p.z, 1));
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float distFromOrigin = glm::abs(origin.x - p.x);
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float penetration = box.HalfSize().x - distFromOrigin;
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if (penetration > 0 && penetration < glm::abs(outResolutionVector.x)) {
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if (p.x > origin.x) {
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outResolutionVector.x = -penetration;
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} else {
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outResolutionVector.x = penetration;
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}
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hit = true;
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}
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//glm::vec3 pLocal = origin - p;
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//for (int axis = 0; axis < 3; ++axis) {
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// if (p[axis] < min[axis] || p[axis] > max[axis]) {
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// continue;
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// }
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// if (glm::abs(pLocal[axis]) < box.HalfSize()[axis]) {
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// outResolutionVector[axis] = (glm::sign(pLocal[axis]) * box.HalfSize()[axis]) - pLocal[axis];
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// hit = true;
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// }
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//}
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}
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return hit;
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}
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bool attachAABBComponentFromModel(World* world, EntityID id)
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{
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if (!world->HasComponent(id, "Model")) {
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return false;
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}
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ComponentWrapper model = world->GetComponent(id, "Model");
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ComponentWrapper collision = world->AttachComponent(id, "AABB");
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Model* modelRes = ResourceManager::Load<Model>(model["Resource"]);
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if (modelRes == nullptr) {
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return false;
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}
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glm::mat4 modelMatrix = modelRes->Matrix();
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glm::vec3 mini = glm::vec3(INFINITY, INFINITY, INFINITY);
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glm::vec3 maxi = glm::vec3(-INFINITY, -INFINITY, -INFINITY);
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for (const auto& v : modelRes->Vertices()) {
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const auto& wPos = modelMatrix * glm::vec4(v.Position.x, v.Position.y, v.Position.z, 1);
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maxi.x = std::max(wPos.x, maxi.x);
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maxi.y = std::max(wPos.y, maxi.y);
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maxi.z = std::max(wPos.z, maxi.z);
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mini.x = std::min(wPos.x, mini.x);
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mini.y = std::min(wPos.y, mini.y);
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mini.z = std::min(wPos.z, mini.z);
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}
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collision["Origin"] = 0.5f * (maxi + mini);
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collision["Size"] = maxi - mini;
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return true;
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}
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boost::optional<EntityAABB> EntityAbsoluteAABB(EntityWrapper& entity)
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{
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if (!entity.HasComponent("AABB")) {
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return boost::none;
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}
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ComponentWrapper& cAABB = entity["AABB"];
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glm::vec3 absPosition = Transform::AbsolutePosition(entity.World, entity.ID);
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glm::vec3 absScale = Transform::AbsoluteScale(entity.World, entity.ID);
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glm::vec3 origin = absPosition + (glm::vec3)cAABB["Origin"];
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glm::vec3 size = (glm::vec3)cAABB["Size"] * absScale;
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EntityAABB aabb = EntityAABB::FromOriginSize(origin, size);
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aabb.Entity = entity;
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return aabb;
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}
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}
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