Added functions to test ray vs triangle- and model-intersections.
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@@ -1,17 +1,43 @@
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#ifndef Collision_h__
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#ifndef Collision_h__
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#define Collision_h__
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#define Collision_h__
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#include <vector>
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#include "Core/Ray.h"
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#include "Core/Ray.h"
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#include "Core/AABB.h"
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#include "Core/AABB.h"
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#include "Engine/Rendering/RawModel.h"
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namespace Collision
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namespace Collision
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{
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{
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//Return true if the ray hits the box.
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bool RayAABBIntr(const Ray& ray, const AABB& box);
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bool RayAABBIntr(const Ray& ray, const AABB& box);
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bool RayVsAABB(const Ray& ray, const AABB& box);
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bool RayVsAABB(const Ray& ray, const AABB& box);
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//Return true if the ray hits the box, also outputs distance from ray origin to intersection point in [outDistance].
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bool RayVsAABB(const Ray& ray, const AABB& box, float& outDistance);
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bool RayVsAABB(const Ray& ray, const AABB& box, float& outDistance);
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//Return true if the ray hits any of the triangles in the model. Stops checking when a hit is detected.
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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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//Return true if the ray hits any of the triangles in the model.
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//Also returns the position of the intersection point. Will loop through all the whole model indices.
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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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//Return true if the ray hits any of the triangles in the model.
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//Also returns the distance from the ray origin to the closest
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//intersection point, and the barycentric u,v-coordinates. Will loop through all the whole model indices.
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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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//Return true if the boxes are intersecting.
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bool AABBVsAABB(const AABB& a, const AABB& b);
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bool AABBVsAABB(const AABB& a, const AABB& b);
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}
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}
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#endif
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#endif
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@@ -1,6 +1,7 @@
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#include <algorithm>
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#include "Core/Collision.h"
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#include "Core/Collision.h"
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#include "Engine/GLM.h"
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#include "Engine/GLM.h"
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#include <algorithm>
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namespace Collision
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namespace Collision
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{
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{
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@@ -74,4 +75,76 @@ bool AABBVsAABB(const AABB& a, const AABB& b)
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return (abs(aCenter[1] - bCenter[1]) <= (aHSize[1] + bHSize[1]));
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return (abs(aCenter[1] - bCenter[1]) <= (aHSize[1] + bHSize[1]));
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}
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}
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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 = 1.0f / glm::dot(e1, DxE2);
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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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if (u < 0 && v < 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);
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float DetInv = 1.0f / glm::dot(e1, DxE2);
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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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//If u and v are positive, u+v <= 1, dist is positive, and less than closest.
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if (0 <= u && 0 <= v && 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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}
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