570 lines
20 KiB
C++
570 lines
20 KiB
C++
// Copyright (c) 2012-2022 Wojciech Figat. All rights reserved.
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#if COMPILE_WITH_MODEL_TOOL
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#include "MeshAccelerationStructure.h"
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#include "Engine/Core/Math/Math.h"
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#include "Engine/Content/Content.h"
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#include "Engine/Content/Assets/Model.h"
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#include "Engine/Graphics/Models/ModelData.h"
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#include "Engine/Profiler/ProfilerCPU.h"
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void MeshAccelerationStructure::BuildBVH(int32 node, int32 maxLeafSize, Array<byte>& scratch)
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{
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auto& root = _bvh[node];
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ASSERT_LOW_LAYER(root.Leaf.IsLeaf);
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if (root.Leaf.TriangleCount <= maxLeafSize)
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return;
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// Spawn two leaves
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const int32 childIndex = _bvh.Count();
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_bvh.AddDefault(2);
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auto& left = _bvh.Get()[childIndex];
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auto& right = _bvh.Get()[childIndex + 1];
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left.Leaf.IsLeaf = 1;
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right.Leaf.IsLeaf = 1;
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left.Leaf.MeshIndex = root.Leaf.MeshIndex;
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right.Leaf.MeshIndex = root.Leaf.MeshIndex;
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// Mid-point splitting based on the largest axis
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const Float3 boundsSize = root.Bounds.GetSize();
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int32 axisCount = 0;
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int32 axis = 0;
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RETRY:
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if (axisCount == 0)
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{
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// Pick the highest axis
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axis = 0;
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if (boundsSize.Y > boundsSize.X && boundsSize.Y >= boundsSize.Z)
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axis = 1;
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else if (boundsSize.Z > boundsSize.X)
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axis = 2;
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}
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else if (axisCount == 3)
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{
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// Failed to split
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_bvh.Resize(childIndex);
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return;
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}
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else
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{
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// Go to the next axis
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axis = (axis + 1) % 3;
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}
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const float midPoint = (float)(root.Bounds.Minimum.Raw[axis] + boundsSize.Raw[axis] * 0.5f);
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const Mesh& meshData = _meshes[root.Leaf.MeshIndex];
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const Float3* vb = meshData.VertexBuffer.Get<Float3>();
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int32 indexStart = root.Leaf.TriangleIndex * 3;
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int32 indexEnd = indexStart + root.Leaf.TriangleCount * 3;
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left.Leaf.TriangleCount = 0;
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right.Leaf.TriangleCount = 0;
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if (meshData.Use16BitIndexBuffer)
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{
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struct Tri
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{
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uint16 I0, I1, I2;
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};
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scratch.Resize(root.Leaf.TriangleCount * sizeof(Tri));
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auto dst = (Tri*)scratch.Get();
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auto ib16 = meshData.IndexBuffer.Get<uint16>();
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for (int32 i = indexStart; i < indexEnd;)
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{
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const Tri tri = { ib16[i++], ib16[i++], ib16[i++] };
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const float v0 = vb[tri.I0].Raw[axis];
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const float v1 = vb[tri.I1].Raw[axis];
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const float v2 = vb[tri.I2].Raw[axis];
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const float centroid = (v0 + v1 + v2) * 0.333f;
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if (centroid <= midPoint)
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dst[left.Leaf.TriangleCount++] = tri; // Left
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else
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dst[root.Leaf.TriangleCount - ++right.Leaf.TriangleCount] = tri; // Right
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}
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Platform::MemoryCopy(ib16 + indexStart, dst, root.Leaf.TriangleCount * 3 * sizeof(uint16));
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if (left.Leaf.TriangleCount == 0 || right.Leaf.TriangleCount == 0)
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{
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axisCount++;
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goto RETRY;
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}
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left.Bounds = BoundingBox(vb[dst[0].I0]);
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indexStart = 0;
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indexEnd = left.Leaf.TriangleCount * 3;
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for (int32 i = indexStart; i < indexEnd; i++)
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left.Bounds.Merge(vb[((uint16*)scratch.Get())[i]]);
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right.Bounds = BoundingBox(vb[dst[root.Leaf.TriangleCount - 1].I0]);
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indexStart = left.Leaf.TriangleCount;
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indexEnd = root.Leaf.TriangleCount * 3;
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for (int32 i = indexStart; i < indexEnd; i++)
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right.Bounds.Merge(vb[((uint16*)scratch.Get())[i]]);
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}
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else
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{
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struct Tri
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{
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uint32 I0, I1, I2;
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};
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scratch.Resize(root.Leaf.TriangleCount * sizeof(Tri));
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auto dst = (Tri*)scratch.Get();
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auto ib32 = meshData.IndexBuffer.Get<uint32>();
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for (int32 i = indexStart; i < indexEnd;)
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{
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const Tri tri = { ib32[i++], ib32[i++], ib32[i++] };
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const float v0 = vb[tri.I0].Raw[axis];
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const float v1 = vb[tri.I1].Raw[axis];
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const float v2 = vb[tri.I2].Raw[axis];
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const float centroid = (v0 + v1 + v2) * 0.333f;
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if (centroid <= midPoint)
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dst[left.Leaf.TriangleCount++] = tri; // Left
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else
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dst[root.Leaf.TriangleCount - ++right.Leaf.TriangleCount] = tri; // Right
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}
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Platform::MemoryCopy(ib32 + indexStart, dst, root.Leaf.TriangleCount * 3 * sizeof(uint32));
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if (left.Leaf.TriangleCount == 0 || right.Leaf.TriangleCount == 0)
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{
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axisCount++;
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goto RETRY;
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}
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left.Bounds = BoundingBox(vb[dst[0].I0]);
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indexStart = 0;
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indexEnd = left.Leaf.TriangleCount * 3;
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for (int32 i = indexStart; i < indexEnd; i++)
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left.Bounds.Merge(vb[((uint32*)scratch.Get())[i]]);
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right.Bounds = BoundingBox(vb[dst[root.Leaf.TriangleCount - 1].I0]);
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indexStart = left.Leaf.TriangleCount;
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indexEnd = root.Leaf.TriangleCount * 3;
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for (int32 i = indexStart; i < indexEnd; i++)
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right.Bounds.Merge(vb[((uint32*)scratch.Get())[i]]);
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}
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ASSERT_LOW_LAYER(left.Leaf.TriangleCount + right.Leaf.TriangleCount == root.Leaf.TriangleCount);
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left.Leaf.TriangleIndex = root.Leaf.TriangleIndex;
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right.Leaf.TriangleIndex = left.Leaf.TriangleIndex + left.Leaf.TriangleCount;
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// Convert into a node
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root.Node.IsLeaf = 0;
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root.Node.ChildIndex = childIndex;
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root.Node.ChildrenCount = 2;
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// Split children
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BuildBVH(childIndex, maxLeafSize, scratch);
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BuildBVH(childIndex + 1, maxLeafSize, scratch);
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}
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bool MeshAccelerationStructure::PointQueryBVH(int32 node, const Vector3& point, Real& hitDistance, Vector3& hitPoint, Triangle& hitTriangle) const
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{
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const auto& root = _bvh[node];
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bool hit = false;
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if (root.Leaf.IsLeaf)
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{
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// Find closest triangle
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Vector3 p;
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const Mesh& meshData = _meshes[root.Leaf.MeshIndex];
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const Float3* vb = meshData.VertexBuffer.Get<Float3>();
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const int32 indexStart = root.Leaf.TriangleIndex * 3;
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const int32 indexEnd = indexStart + root.Leaf.TriangleCount * 3;
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if (meshData.Use16BitIndexBuffer)
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{
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const uint16* ib16 = meshData.IndexBuffer.Get<uint16>();
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for (int32 i = indexStart; i < indexEnd;)
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{
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Vector3 v0 = vb[ib16[i++]];
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Vector3 v1 = vb[ib16[i++]];
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Vector3 v2 = vb[ib16[i++]];
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CollisionsHelper::ClosestPointPointTriangle(point, v0, v1, v2, p);
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const Real distance = Vector3::Distance(point, p);
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if (distance < hitDistance)
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{
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hitDistance = distance;
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hitPoint = p;
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hitTriangle = Triangle(v0, v1, v2);
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hit = true;
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}
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}
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}
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else
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{
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const uint32* ib32 = meshData.IndexBuffer.Get<uint32>();
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for (int32 i = indexStart; i < indexEnd;)
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{
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Vector3 v0 = vb[ib32[i++]];
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Vector3 v1 = vb[ib32[i++]];
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Vector3 v2 = vb[ib32[i++]];
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CollisionsHelper::ClosestPointPointTriangle(point, v0, v1, v2, p);
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const Real distance = Vector3::Distance(point, p);
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if (distance < hitDistance)
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{
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hitDistance = distance;
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hitPoint = p;
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hitTriangle = Triangle(v0, v1, v2);
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hit = true;
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}
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}
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}
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}
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else
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{
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// Check all nested nodes
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for (uint32 i = 0; i < root.Node.ChildrenCount; i++)
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{
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const int32 index = root.Node.ChildIndex + i;
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if (_bvh[index].Bounds.Distance(point) >= hitDistance)
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continue;
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if (PointQueryBVH(index, point, hitDistance, hitPoint, hitTriangle))
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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 MeshAccelerationStructure::RayCastBVH(int32 node, const Ray& ray, Real& hitDistance, Vector3& hitNormal, Triangle& hitTriangle) const
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{
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const auto& root = _bvh[node];
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if (!root.Bounds.Intersects(ray))
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return false;
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Vector3 normal;
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Real distance;
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bool hit = false;
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if (root.Leaf.IsLeaf)
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{
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// Ray cast along triangles in the leaf
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const Mesh& meshData = _meshes[root.Leaf.MeshIndex];
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const Float3* vb = meshData.VertexBuffer.Get<Float3>();
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const int32 indexStart = root.Leaf.TriangleIndex * 3;
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const int32 indexEnd = indexStart + root.Leaf.TriangleCount * 3;
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if (meshData.Use16BitIndexBuffer)
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{
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const uint16* ib16 = meshData.IndexBuffer.Get<uint16>();
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for (int32 i = indexStart; i < indexEnd;)
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{
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Vector3 v0 = vb[ib16[i++]];
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Vector3 v1 = vb[ib16[i++]];
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Vector3 v2 = vb[ib16[i++]];
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if (CollisionsHelper::RayIntersectsTriangle(ray, v0, v1, v2, distance, normal) && distance < hitDistance)
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{
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hitDistance = distance;
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hitNormal = normal;
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hitTriangle = Triangle(v0, v1, v2);
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hit = true;
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}
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}
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}
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else
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{
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const uint32* ib32 = meshData.IndexBuffer.Get<uint32>();
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for (int32 i = indexStart; i < indexEnd;)
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{
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Vector3 v0 = vb[ib32[i++]];
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Vector3 v1 = vb[ib32[i++]];
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Vector3 v2 = vb[ib32[i++]];
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if (CollisionsHelper::RayIntersectsTriangle(ray, v0, v1, v2, distance, normal) && distance < hitDistance)
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{
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hitDistance = distance;
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hitNormal = normal;
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hitTriangle = Triangle(v0, v1, v2);
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hit = true;
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}
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}
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}
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}
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else
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{
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// Ray cast all child nodes
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Triangle triangle;
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for (uint32 i = 0; i < root.Node.ChildrenCount; i++)
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{
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const int32 index = root.Node.ChildIndex + i;
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distance = hitDistance;
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if (RayCastBVH(index, ray, distance, normal, triangle) && distance < hitDistance)
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{
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hitDistance = distance;
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hitNormal = normal;
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hitTriangle = triangle;
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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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void MeshAccelerationStructure::Add(Model* model, int32 lodIndex)
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{
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PROFILE_CPU();
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lodIndex = Math::Clamp(lodIndex, model->HighestResidentLODIndex(), model->LODs.Count() - 1);
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ModelLOD& lod = model->LODs[lodIndex];
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_meshes.EnsureCapacity(_meshes.Count() + lod.Meshes.Count());
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bool failed = false;
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for (int32 i = 0; i < lod.Meshes.Count(); i++)
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{
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auto& mesh = lod.Meshes[i];
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const MaterialSlot& materialSlot = model->MaterialSlots[mesh.GetMaterialSlotIndex()];
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if (materialSlot.Material && !materialSlot.Material->WaitForLoaded())
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{
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// Skip transparent materials
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if (materialSlot.Material->GetInfo().BlendMode != MaterialBlendMode::Opaque)
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continue;
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}
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auto& meshData = _meshes.AddOne();
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if (model->IsVirtual())
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{
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meshData.Indices = mesh.GetTriangleCount() * 3;
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meshData.Vertices = mesh.GetVertexCount();
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failed |= mesh.DownloadDataGPU(MeshBufferType::Index, meshData.IndexBuffer);
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failed |= mesh.DownloadDataGPU(MeshBufferType::Vertex0, meshData.VertexBuffer);
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}
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else
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{
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failed |= mesh.DownloadDataCPU(MeshBufferType::Index, meshData.IndexBuffer, meshData.Indices);
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failed |= mesh.DownloadDataCPU(MeshBufferType::Vertex0, meshData.VertexBuffer, meshData.Vertices);
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}
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if (failed)
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return;
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if (!meshData.IndexBuffer.IsAllocated() && meshData.IndexBuffer.Length() != 0)
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{
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// BVH nodes modifies index buffer (sorts data in-place) so clone it
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meshData.IndexBuffer.Copy(meshData.IndexBuffer.Get(), meshData.IndexBuffer.Length());
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}
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meshData.Use16BitIndexBuffer = mesh.Use16BitIndexBuffer();
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meshData.Bounds = mesh.GetBox();
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}
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}
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void MeshAccelerationStructure::Add(ModelData* modelData, int32 lodIndex, bool copy)
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{
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PROFILE_CPU();
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lodIndex = Math::Clamp(lodIndex, 0, modelData->LODs.Count() - 1);
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ModelLodData& lod = modelData->LODs[lodIndex];
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_meshes.EnsureCapacity(_meshes.Count() + lod.Meshes.Count());
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for (int32 i = 0; i < lod.Meshes.Count(); i++)
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{
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MeshData* mesh = lod.Meshes[i];
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const MaterialSlotEntry& materialSlot = modelData->Materials[mesh->MaterialSlotIndex];
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auto material = Content::LoadAsync<MaterialBase>(materialSlot.AssetID);
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if (material && !material->WaitForLoaded())
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{
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// Skip transparent materials
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if (material->GetInfo().BlendMode != MaterialBlendMode::Opaque)
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continue;
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}
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auto& meshData = _meshes.AddOne();
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meshData.Indices = mesh->Indices.Count();
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meshData.Vertices = mesh->Positions.Count();
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if (copy)
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{
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meshData.IndexBuffer.Copy((const byte*)mesh->Indices.Get(), meshData.Indices * sizeof(uint32));
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meshData.VertexBuffer.Copy((const byte*)mesh->Positions.Get(), meshData.Vertices * sizeof(Float3));
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}
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else
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{
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meshData.IndexBuffer.Link((const byte*)mesh->Indices.Get(), meshData.Indices * sizeof(uint32));
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meshData.VertexBuffer.Link((const byte*)mesh->Positions.Get(), meshData.Vertices * sizeof(Float3));
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}
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meshData.Use16BitIndexBuffer = false;
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mesh->CalculateBox(meshData.Bounds);
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}
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}
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void MeshAccelerationStructure::Add(Float3* vb, int32 vertices, void* ib, int32 indices, bool use16BitIndex, bool copy)
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{
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auto& meshData = _meshes.AddOne();
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if (copy)
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{
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meshData.VertexBuffer.Copy((const byte*)vb, vertices * sizeof(Float3));
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}
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else
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{
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meshData.VertexBuffer.Link((const byte*)vb, vertices * sizeof(Float3));
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}
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meshData.IndexBuffer.Copy((const byte*)ib, indices * (use16BitIndex ? sizeof(uint16) : sizeof(uint32)));
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meshData.Vertices = vertices;
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meshData.Indices = indices;
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meshData.Use16BitIndexBuffer = use16BitIndex;
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}
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void MeshAccelerationStructure::BuildBVH(int32 maxLeafSize)
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{
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if (_meshes.Count() == 0)
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return;
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PROFILE_CPU();
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// Estimate memory usage
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int32 trianglesCount = 0;
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for (const Mesh& meshData : _meshes)
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trianglesCount += meshData.Indices / 3;
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_bvh.Clear();
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_bvh.EnsureCapacity(trianglesCount / maxLeafSize);
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// Init with the root node and all meshes as leaves
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auto& root = _bvh.AddOne();
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root.Node.IsLeaf = 0;
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root.Node.ChildIndex = 1;
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root.Node.ChildrenCount = _meshes.Count();
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root.Bounds = _meshes[0].Bounds;
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for (int32 i = 0; i < _meshes.Count(); i++)
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{
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const Mesh& meshData = _meshes[i];
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auto& child = _bvh.AddOne();
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child.Leaf.IsLeaf = 1;
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child.Leaf.MeshIndex = i;
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child.Leaf.TriangleIndex = 0;
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child.Leaf.TriangleCount = meshData.Indices / 3;
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child.Bounds = meshData.Bounds;
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BoundingBox::Merge(root.Bounds, meshData.Bounds, root.Bounds);
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}
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// Sub-divide mesh nodes into smaller leaves
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Array<byte> scratch;
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for (int32 i = 0; i < _meshes.Count(); i++)
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BuildBVH(i + 1, maxLeafSize, scratch);
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}
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bool MeshAccelerationStructure::PointQuery(const Vector3& point, Real& hitDistance, Vector3& hitPoint, Triangle& hitTriangle, Real maxDistance) const
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{
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hitDistance = maxDistance >= MAX_Real ? maxDistance : maxDistance * maxDistance;
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bool hit = false;
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// BVH
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if (_bvh.Count() != 0)
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{
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Array<int32, InlinedAllocation<32>> stack;
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stack.Push(0);
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while (stack.HasItems())
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{
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const int32 node = stack.Pop();
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auto& root = _bvh[node];
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// Skip too far nodes
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if (root.Bounds.Distance(point) >= hitDistance)
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continue;
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if (root.Leaf.IsLeaf)
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{
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// Check this leaf
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hit |= PointQueryBVH(node, point, hitDistance, hitPoint, hitTriangle);
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}
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else
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{
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// Check this node children
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for (uint32 i = 0; i < root.Node.ChildrenCount; i++)
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stack.Push(root.Node.ChildIndex + i);
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}
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}
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//hit = PointQueryBVH(0, point, hitDistance, hitPoint, hitTriangle);
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return hit;
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}
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// Brute-force
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{
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Vector3 p;
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for (const Mesh& meshData : _meshes)
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{
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const Float3* vb = meshData.VertexBuffer.Get<Float3>();
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if (meshData.Use16BitIndexBuffer)
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{
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const uint16* ib16 = meshData.IndexBuffer.Get<uint16>();
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for (int32 i = 0; i < meshData.Indices;)
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{
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Vector3 v0 = vb[ib16[i++]];
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Vector3 v1 = vb[ib16[i++]];
|
|
Vector3 v2 = vb[ib16[i++]];
|
|
CollisionsHelper::ClosestPointPointTriangle(point, v0, v1, v2, p);
|
|
const Real distance = Vector3::DistanceSquared(point, p);
|
|
if (distance < hitDistance)
|
|
{
|
|
hitDistance = distance;
|
|
hitPoint = p;
|
|
hitTriangle = Triangle(v0, v1, v2);
|
|
hit = true;
|
|
}
|
|
}
|
|
}
|
|
else
|
|
{
|
|
const uint32* ib32 = meshData.IndexBuffer.Get<uint32>();
|
|
for (int32 i = 0; i < meshData.Indices;)
|
|
{
|
|
Vector3 v0 = vb[ib32[i++]];
|
|
Vector3 v1 = vb[ib32[i++]];
|
|
Vector3 v2 = vb[ib32[i++]];
|
|
CollisionsHelper::ClosestPointPointTriangle(point, v0, v1, v2, p);
|
|
const Real distance = Vector3::DistanceSquared(point, p);
|
|
if (distance < hitDistance)
|
|
{
|
|
hitDistance = distance;
|
|
hitPoint = p;
|
|
hitTriangle = Triangle(v0, v1, v2);
|
|
hit = true;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
if (hit)
|
|
hitDistance = Math::Sqrt(hitDistance);
|
|
return hit;
|
|
}
|
|
}
|
|
|
|
bool MeshAccelerationStructure::RayCast(const Ray& ray, Real& hitDistance, Vector3& hitNormal, Triangle& hitTriangle, Real maxDistance) const
|
|
{
|
|
hitDistance = maxDistance;
|
|
|
|
// BVH
|
|
if (_bvh.Count() != 0)
|
|
{
|
|
return RayCastBVH(0, ray, hitDistance, hitNormal, hitTriangle);
|
|
}
|
|
|
|
// Brute-force
|
|
{
|
|
Vector3 normal;
|
|
Real distance;
|
|
bool hit = false;
|
|
for (const Mesh& meshData : _meshes)
|
|
{
|
|
if (!meshData.Bounds.Intersects(ray))
|
|
continue;
|
|
const Float3* vb = meshData.VertexBuffer.Get<Float3>();
|
|
if (meshData.Use16BitIndexBuffer)
|
|
{
|
|
const uint16* ib16 = meshData.IndexBuffer.Get<uint16>();
|
|
for (int32 i = 0; i < meshData.Indices;)
|
|
{
|
|
Vector3 v0 = vb[ib16[i++]];
|
|
Vector3 v1 = vb[ib16[i++]];
|
|
Vector3 v2 = vb[ib16[i++]];
|
|
if (CollisionsHelper::RayIntersectsTriangle(ray, v0, v1, v2, distance, normal) && distance < hitDistance)
|
|
{
|
|
hitDistance = distance;
|
|
hitNormal = normal;
|
|
hitTriangle = Triangle(v0, v1, v2);
|
|
hit = true;
|
|
}
|
|
}
|
|
}
|
|
else
|
|
{
|
|
const uint32* ib32 = meshData.IndexBuffer.Get<uint32>();
|
|
for (int32 i = 0; i < meshData.Indices;)
|
|
{
|
|
Vector3 v0 = vb[ib32[i++]];
|
|
Vector3 v1 = vb[ib32[i++]];
|
|
Vector3 v2 = vb[ib32[i++]];
|
|
if (CollisionsHelper::RayIntersectsTriangle(ray, v0, v1, v2, distance, normal) && distance < hitDistance)
|
|
{
|
|
hitDistance = distance;
|
|
hitNormal = normal;
|
|
hitTriangle = Triangle(v0, v1, v2);
|
|
hit = true;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
return hit;
|
|
}
|
|
}
|
|
|
|
#endif
|