PhysicsSystem.cpp 118 KB

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  1. // Jolt Physics Library (https://github.com/jrouwe/JoltPhysics)
  2. // SPDX-FileCopyrightText: 2021 Jorrit Rouwe
  3. // SPDX-License-Identifier: MIT
  4. #include <Jolt/Jolt.h>
  5. #include <Jolt/Physics/PhysicsSystem.h>
  6. #include <Jolt/Physics/PhysicsSettings.h>
  7. #include <Jolt/Physics/PhysicsUpdateContext.h>
  8. #include <Jolt/Physics/PhysicsStepListener.h>
  9. #include <Jolt/Physics/Collision/BroadPhase/BroadPhaseBruteForce.h>
  10. #include <Jolt/Physics/Collision/BroadPhase/BroadPhaseQuadTree.h>
  11. #include <Jolt/Physics/Collision/CollisionDispatch.h>
  12. #include <Jolt/Physics/Collision/AABoxCast.h>
  13. #include <Jolt/Physics/Collision/ShapeCast.h>
  14. #include <Jolt/Physics/Collision/CollideShape.h>
  15. #include <Jolt/Physics/Collision/CollisionCollectorImpl.h>
  16. #include <Jolt/Physics/Collision/CastResult.h>
  17. #include <Jolt/Physics/Collision/CollideConvexVsTriangles.h>
  18. #include <Jolt/Physics/Collision/ManifoldBetweenTwoFaces.h>
  19. #include <Jolt/Physics/Collision/Shape/ConvexShape.h>
  20. #include <Jolt/Physics/Collision/SimShapeFilterWrapper.h>
  21. #include <Jolt/Physics/Collision/InternalEdgeRemovingCollector.h>
  22. #include <Jolt/Physics/Constraints/CalculateSolverSteps.h>
  23. #include <Jolt/Physics/Constraints/ConstraintPart/AxisConstraintPart.h>
  24. #include <Jolt/Physics/DeterminismLog.h>
  25. #include <Jolt/Physics/SoftBody/SoftBodyMotionProperties.h>
  26. #include <Jolt/Physics/SoftBody/SoftBodyShape.h>
  27. #include <Jolt/Geometry/RayAABox.h>
  28. #include <Jolt/Geometry/ClosestPoint.h>
  29. #include <Jolt/Core/JobSystem.h>
  30. #include <Jolt/Core/TempAllocator.h>
  31. #include <Jolt/Core/QuickSort.h>
  32. #include <Jolt/Core/ScopeExit.h>
  33. #ifdef JPH_DEBUG_RENDERER
  34. #include <Jolt/Renderer/DebugRenderer.h>
  35. #endif // JPH_DEBUG_RENDERER
  36. JPH_NAMESPACE_BEGIN
  37. #ifdef JPH_DEBUG_RENDERER
  38. bool PhysicsSystem::sDrawMotionQualityLinearCast = false;
  39. #endif // JPH_DEBUG_RENDERER
  40. //#define BROAD_PHASE BroadPhaseBruteForce
  41. #define BROAD_PHASE BroadPhaseQuadTree
  42. static const Color cColorUpdateBroadPhaseFinalize = Color::sGetDistinctColor(1);
  43. static const Color cColorUpdateBroadPhasePrepare = Color::sGetDistinctColor(2);
  44. static const Color cColorFindCollisions = Color::sGetDistinctColor(3);
  45. static const Color cColorApplyGravity = Color::sGetDistinctColor(4);
  46. static const Color cColorSetupVelocityConstraints = Color::sGetDistinctColor(5);
  47. static const Color cColorBuildIslandsFromConstraints = Color::sGetDistinctColor(6);
  48. static const Color cColorDetermineActiveConstraints = Color::sGetDistinctColor(7);
  49. static const Color cColorFinalizeIslands = Color::sGetDistinctColor(8);
  50. static const Color cColorContactRemovedCallbacks = Color::sGetDistinctColor(9);
  51. static const Color cColorBodySetIslandIndex = Color::sGetDistinctColor(10);
  52. static const Color cColorStartNextStep = Color::sGetDistinctColor(11);
  53. static const Color cColorSolveVelocityConstraints = Color::sGetDistinctColor(12);
  54. static const Color cColorPreIntegrateVelocity = Color::sGetDistinctColor(13);
  55. static const Color cColorIntegrateVelocity = Color::sGetDistinctColor(14);
  56. static const Color cColorPostIntegrateVelocity = Color::sGetDistinctColor(15);
  57. static const Color cColorResolveCCDContacts = Color::sGetDistinctColor(16);
  58. static const Color cColorSolvePositionConstraints = Color::sGetDistinctColor(17);
  59. static const Color cColorFindCCDContacts = Color::sGetDistinctColor(18);
  60. static const Color cColorStepListeners = Color::sGetDistinctColor(19);
  61. static const Color cColorSoftBodyPrepare = Color::sGetDistinctColor(20);
  62. static const Color cColorSoftBodyCollide = Color::sGetDistinctColor(21);
  63. static const Color cColorSoftBodySimulate = Color::sGetDistinctColor(22);
  64. static const Color cColorSoftBodyFinalize = Color::sGetDistinctColor(23);
  65. PhysicsSystem::~PhysicsSystem()
  66. {
  67. // Remove broadphase
  68. delete mBroadPhase;
  69. }
  70. void PhysicsSystem::Init(uint inMaxBodies, uint inNumBodyMutexes, uint inMaxBodyPairs, uint inMaxContactConstraints, const BroadPhaseLayerInterface &inBroadPhaseLayerInterface, const ObjectVsBroadPhaseLayerFilter &inObjectVsBroadPhaseLayerFilter, const ObjectLayerPairFilter &inObjectLayerPairFilter)
  71. {
  72. // Clamp max bodies
  73. uint max_bodies = min(inMaxBodies, cMaxBodiesLimit);
  74. JPH_ASSERT(max_bodies == inMaxBodies, "Cannot support this many bodies!");
  75. mObjectVsBroadPhaseLayerFilter = &inObjectVsBroadPhaseLayerFilter;
  76. mObjectLayerPairFilter = &inObjectLayerPairFilter;
  77. // Initialize body manager
  78. mBodyManager.Init(max_bodies, inNumBodyMutexes, inBroadPhaseLayerInterface);
  79. // Create broadphase
  80. mBroadPhase = new BROAD_PHASE();
  81. mBroadPhase->Init(&mBodyManager, inBroadPhaseLayerInterface);
  82. // Init contact constraint manager
  83. mContactManager.Init(inMaxBodyPairs, inMaxContactConstraints);
  84. // Init islands builder
  85. mIslandBuilder.Init(max_bodies);
  86. // Initialize body interface
  87. mBodyInterfaceLocking.Init(mBodyLockInterfaceLocking, mBodyManager, *mBroadPhase);
  88. mBodyInterfaceNoLock.Init(mBodyLockInterfaceNoLock, mBodyManager, *mBroadPhase);
  89. // Initialize narrow phase query
  90. mNarrowPhaseQueryLocking.Init(mBodyLockInterfaceLocking, *mBroadPhase);
  91. mNarrowPhaseQueryNoLock.Init(mBodyLockInterfaceNoLock, *mBroadPhase);
  92. }
  93. void PhysicsSystem::OptimizeBroadPhase()
  94. {
  95. mBroadPhase->Optimize();
  96. }
  97. void PhysicsSystem::AddStepListener(PhysicsStepListener *inListener)
  98. {
  99. lock_guard lock(mStepListenersMutex);
  100. JPH_ASSERT(std::find(mStepListeners.begin(), mStepListeners.end(), inListener) == mStepListeners.end());
  101. mStepListeners.push_back(inListener);
  102. }
  103. void PhysicsSystem::RemoveStepListener(PhysicsStepListener *inListener)
  104. {
  105. lock_guard lock(mStepListenersMutex);
  106. StepListeners::iterator i = std::find(mStepListeners.begin(), mStepListeners.end(), inListener);
  107. JPH_ASSERT(i != mStepListeners.end());
  108. *i = mStepListeners.back();
  109. mStepListeners.pop_back();
  110. }
  111. EPhysicsUpdateError PhysicsSystem::Update(float inDeltaTime, int inCollisionSteps, TempAllocator *inTempAllocator, JobSystem *inJobSystem)
  112. {
  113. JPH_PROFILE_FUNCTION();
  114. JPH_DET_LOG("PhysicsSystem::Update: dt: " << inDeltaTime << " steps: " << inCollisionSteps);
  115. JPH_ASSERT(inCollisionSteps > 0);
  116. JPH_ASSERT(inDeltaTime >= 0.0f);
  117. // Sync point for the broadphase. This will allow it to do clean up operations without having any mutexes locked yet.
  118. mBroadPhase->FrameSync();
  119. // If there are no active bodies or there's no time delta
  120. uint32 num_active_rigid_bodies = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody);
  121. uint32 num_active_soft_bodies = mBodyManager.GetNumActiveBodies(EBodyType::SoftBody);
  122. if ((num_active_rigid_bodies == 0 && num_active_soft_bodies == 0) || inDeltaTime <= 0.0f)
  123. {
  124. mBodyManager.LockAllBodies();
  125. // Update broadphase
  126. mBroadPhase->LockModifications();
  127. BroadPhase::UpdateState update_state = mBroadPhase->UpdatePrepare();
  128. mBroadPhase->UpdateFinalize(update_state);
  129. mBroadPhase->UnlockModifications();
  130. // If time has passed, call contact removal callbacks from contacts that existed in the previous update
  131. if (inDeltaTime > 0.0f)
  132. mContactManager.FinalizeContactCacheAndCallContactPointRemovedCallbacks(0, 0);
  133. mBodyManager.UnlockAllBodies();
  134. return EPhysicsUpdateError::None;
  135. }
  136. // Calculate ratio between current and previous frame delta time to scale initial constraint forces
  137. float step_delta_time = inDeltaTime / inCollisionSteps;
  138. float warm_start_impulse_ratio = mPhysicsSettings.mConstraintWarmStart && mPreviousStepDeltaTime > 0.0f? step_delta_time / mPreviousStepDeltaTime : 0.0f;
  139. mPreviousStepDeltaTime = step_delta_time;
  140. // Create the context used for passing information between jobs
  141. PhysicsUpdateContext context(*inTempAllocator);
  142. context.mPhysicsSystem = this;
  143. context.mJobSystem = inJobSystem;
  144. context.mBarrier = inJobSystem->CreateBarrier();
  145. context.mIslandBuilder = &mIslandBuilder;
  146. context.mStepDeltaTime = step_delta_time;
  147. context.mWarmStartImpulseRatio = warm_start_impulse_ratio;
  148. context.mSteps.resize(inCollisionSteps);
  149. // Allocate space for body pairs
  150. JPH_ASSERT(context.mBodyPairs == nullptr);
  151. context.mBodyPairs = static_cast<BodyPair *>(inTempAllocator->Allocate(sizeof(BodyPair) * mPhysicsSettings.mMaxInFlightBodyPairs));
  152. // Lock all bodies for write so that we can freely touch them
  153. mStepListenersMutex.lock();
  154. mBodyManager.LockAllBodies();
  155. mBroadPhase->LockModifications();
  156. // Get max number of concurrent jobs
  157. int max_concurrency = context.GetMaxConcurrency();
  158. // Calculate how many step listener jobs we spawn
  159. int num_step_listener_jobs = mStepListeners.empty()? 0 : max(1, min((int)mStepListeners.size() / mPhysicsSettings.mStepListenersBatchSize / mPhysicsSettings.mStepListenerBatchesPerJob, max_concurrency));
  160. // Number of gravity jobs depends on the amount of active bodies.
  161. // Launch max 1 job per batch of active bodies
  162. // Leave 1 thread for update broadphase prepare and 1 for determine active constraints
  163. int num_apply_gravity_jobs = max(1, min(((int)num_active_rigid_bodies + cApplyGravityBatchSize - 1) / cApplyGravityBatchSize, max_concurrency - 2));
  164. // Number of determine active constraints jobs to run depends on number of constraints.
  165. // Leave 1 thread for update broadphase prepare and 1 for apply gravity
  166. int num_determine_active_constraints_jobs = max(1, min(((int)mConstraintManager.GetNumConstraints() + cDetermineActiveConstraintsBatchSize - 1) / cDetermineActiveConstraintsBatchSize, max_concurrency - 2));
  167. // Number of setup velocity constraints jobs to run depends on number of constraints.
  168. int num_setup_velocity_constraints_jobs = max(1, min(((int)mConstraintManager.GetNumConstraints() + cSetupVelocityConstraintsBatchSize - 1) / cSetupVelocityConstraintsBatchSize, max_concurrency));
  169. // Number of find collisions jobs to run depends on number of active bodies.
  170. // Note that when we have more than 1 thread, we always spawn at least 2 find collisions jobs so that the first job can wait for build islands from constraints
  171. // (which may activate additional bodies that need to be processed) while the second job can start processing collision work.
  172. int num_find_collisions_jobs = max(max_concurrency == 1? 1 : 2, min(((int)num_active_rigid_bodies + cActiveBodiesBatchSize - 1) / cActiveBodiesBatchSize, max_concurrency));
  173. // Number of integrate velocity jobs depends on number of active bodies.
  174. int num_integrate_velocity_jobs = max(1, min(((int)num_active_rigid_bodies + cIntegrateVelocityBatchSize - 1) / cIntegrateVelocityBatchSize, max_concurrency));
  175. {
  176. JPH_PROFILE("Build Jobs");
  177. // Iterate over collision steps
  178. for (int step_idx = 0; step_idx < inCollisionSteps; ++step_idx)
  179. {
  180. bool is_first_step = step_idx == 0;
  181. bool is_last_step = step_idx == inCollisionSteps - 1;
  182. PhysicsUpdateContext::Step &step = context.mSteps[step_idx];
  183. step.mContext = &context;
  184. step.mIsFirst = is_first_step;
  185. step.mIsLast = is_last_step;
  186. // Create job to do broadphase finalization
  187. // This job must finish before integrating velocities. Until then the positions will not be updated neither will bodies be added / removed.
  188. step.mUpdateBroadphaseFinalize = inJobSystem->CreateJob("UpdateBroadPhaseFinalize", cColorUpdateBroadPhaseFinalize, [&context, &step]()
  189. {
  190. // Validate that all find collision jobs have stopped
  191. JPH_ASSERT(step.mActiveFindCollisionJobs.load(memory_order_relaxed) == 0);
  192. // Finalize the broadphase update
  193. context.mPhysicsSystem->mBroadPhase->UpdateFinalize(step.mBroadPhaseUpdateState);
  194. // Signal that it is done
  195. step.mPreIntegrateVelocity.RemoveDependency();
  196. }, num_find_collisions_jobs + 2); // depends on: find collisions, broadphase prepare update, finish building jobs
  197. // The immediate jobs below are only immediate for the first step, the all finished job will kick them for the next step
  198. int previous_step_dependency_count = is_first_step? 0 : 1;
  199. // Start job immediately: Start the prepare broadphase
  200. // Must be done under body lock protection since the order is body locks then broadphase mutex
  201. // If this is turned around the RemoveBody call will hang since it locks in that order
  202. step.mBroadPhasePrepare = inJobSystem->CreateJob("UpdateBroadPhasePrepare", cColorUpdateBroadPhasePrepare, [&context, &step]()
  203. {
  204. // Prepare the broadphase update
  205. step.mBroadPhaseUpdateState = context.mPhysicsSystem->mBroadPhase->UpdatePrepare();
  206. // Now the finalize can run (if other dependencies are met too)
  207. step.mUpdateBroadphaseFinalize.RemoveDependency();
  208. }, previous_step_dependency_count);
  209. // This job will find all collisions
  210. step.mBodyPairQueues.resize(max_concurrency);
  211. step.mMaxBodyPairsPerQueue = mPhysicsSettings.mMaxInFlightBodyPairs / max_concurrency;
  212. step.mActiveFindCollisionJobs.store(~PhysicsUpdateContext::JobMask(0) >> (sizeof(PhysicsUpdateContext::JobMask) * 8 - num_find_collisions_jobs), memory_order_release);
  213. step.mFindCollisions.resize(num_find_collisions_jobs);
  214. for (int i = 0; i < num_find_collisions_jobs; ++i)
  215. {
  216. // Build islands from constraints may activate additional bodies, so the first job will wait for this to finish in order to not miss any active bodies
  217. int num_dep_build_islands_from_constraints = i == 0? 1 : 0;
  218. step.mFindCollisions[i] = inJobSystem->CreateJob("FindCollisions", cColorFindCollisions, [&step, i]()
  219. {
  220. step.mContext->mPhysicsSystem->JobFindCollisions(&step, i);
  221. }, num_apply_gravity_jobs + num_determine_active_constraints_jobs + 1 + num_dep_build_islands_from_constraints); // depends on: apply gravity, determine active constraints, finish building jobs, build islands from constraints
  222. }
  223. if (is_first_step)
  224. {
  225. #ifdef JPH_ENABLE_ASSERTS
  226. // Don't allow write operations to the active bodies list
  227. mBodyManager.SetActiveBodiesLocked(true);
  228. #endif
  229. // Store the number of active bodies at the start of the step
  230. step.mNumActiveBodiesAtStepStart = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody);
  231. // Lock all constraints
  232. mConstraintManager.LockAllConstraints();
  233. // Allocate memory for storing the active constraints
  234. JPH_ASSERT(context.mActiveConstraints == nullptr);
  235. context.mActiveConstraints = static_cast<Constraint **>(inTempAllocator->Allocate(mConstraintManager.GetNumConstraints() * sizeof(Constraint *)));
  236. // Prepare contact buffer
  237. mContactManager.PrepareConstraintBuffer(&context);
  238. // Setup island builder
  239. mIslandBuilder.PrepareContactConstraints(mContactManager.GetMaxConstraints(), context.mTempAllocator);
  240. }
  241. // This job applies gravity to all active bodies
  242. step.mApplyGravity.resize(num_apply_gravity_jobs);
  243. for (int i = 0; i < num_apply_gravity_jobs; ++i)
  244. step.mApplyGravity[i] = inJobSystem->CreateJob("ApplyGravity", cColorApplyGravity, [&context, &step]()
  245. {
  246. context.mPhysicsSystem->JobApplyGravity(&context, &step);
  247. JobHandle::sRemoveDependencies(step.mFindCollisions);
  248. }, num_step_listener_jobs > 0? num_step_listener_jobs : previous_step_dependency_count); // depends on: step listeners (or previous step if no step listeners)
  249. // This job will setup velocity constraints for non-collision constraints
  250. step.mSetupVelocityConstraints.resize(num_setup_velocity_constraints_jobs);
  251. for (int i = 0; i < num_setup_velocity_constraints_jobs; ++i)
  252. step.mSetupVelocityConstraints[i] = inJobSystem->CreateJob("SetupVelocityConstraints", cColorSetupVelocityConstraints, [&context, &step]()
  253. {
  254. context.mPhysicsSystem->JobSetupVelocityConstraints(context.mStepDeltaTime, &step);
  255. JobHandle::sRemoveDependencies(step.mSolveVelocityConstraints);
  256. }, num_determine_active_constraints_jobs + 1); // depends on: determine active constraints, finish building jobs
  257. // This job will build islands from constraints
  258. step.mBuildIslandsFromConstraints = inJobSystem->CreateJob("BuildIslandsFromConstraints", cColorBuildIslandsFromConstraints, [&context, &step]()
  259. {
  260. context.mPhysicsSystem->JobBuildIslandsFromConstraints(&context, &step);
  261. step.mFindCollisions[0].RemoveDependency(); // The first collisions job cannot start running until we've finished building islands and activated all bodies
  262. step.mFinalizeIslands.RemoveDependency();
  263. }, num_determine_active_constraints_jobs + 1); // depends on: determine active constraints, finish building jobs
  264. // This job determines active constraints
  265. step.mDetermineActiveConstraints.resize(num_determine_active_constraints_jobs);
  266. for (int i = 0; i < num_determine_active_constraints_jobs; ++i)
  267. step.mDetermineActiveConstraints[i] = inJobSystem->CreateJob("DetermineActiveConstraints", cColorDetermineActiveConstraints, [&context, &step]()
  268. {
  269. context.mPhysicsSystem->JobDetermineActiveConstraints(&step);
  270. step.mBuildIslandsFromConstraints.RemoveDependency();
  271. // Kick these jobs last as they will use up all CPU cores leaving no space for the previous job, we prefer setup velocity constraints to finish first so we kick it first
  272. JobHandle::sRemoveDependencies(step.mSetupVelocityConstraints);
  273. JobHandle::sRemoveDependencies(step.mFindCollisions);
  274. }, num_step_listener_jobs > 0? num_step_listener_jobs : previous_step_dependency_count); // depends on: step listeners (or previous step if no step listeners)
  275. // This job calls the step listeners
  276. step.mStepListeners.resize(num_step_listener_jobs);
  277. for (int i = 0; i < num_step_listener_jobs; ++i)
  278. step.mStepListeners[i] = inJobSystem->CreateJob("StepListeners", cColorStepListeners, [&context, &step]()
  279. {
  280. // Call the step listeners
  281. context.mPhysicsSystem->JobStepListeners(&step);
  282. // Kick apply gravity and determine active constraint jobs
  283. JobHandle::sRemoveDependencies(step.mApplyGravity);
  284. JobHandle::sRemoveDependencies(step.mDetermineActiveConstraints);
  285. }, previous_step_dependency_count);
  286. // Unblock the previous step
  287. if (!is_first_step)
  288. context.mSteps[step_idx - 1].mStartNextStep.RemoveDependency();
  289. // This job will finalize the simulation islands
  290. step.mFinalizeIslands = inJobSystem->CreateJob("FinalizeIslands", cColorFinalizeIslands, [&context, &step]()
  291. {
  292. // Validate that all find collision jobs have stopped
  293. JPH_ASSERT(step.mActiveFindCollisionJobs.load(memory_order_relaxed) == 0);
  294. context.mPhysicsSystem->JobFinalizeIslands(&context);
  295. JobHandle::sRemoveDependencies(step.mSolveVelocityConstraints);
  296. step.mBodySetIslandIndex.RemoveDependency();
  297. }, num_find_collisions_jobs + 2); // depends on: find collisions, build islands from constraints, finish building jobs
  298. // Unblock previous job
  299. // Note: technically we could release find collisions here but we don't want to because that could make them run before 'setup velocity constraints' which means that job won't have a thread left
  300. step.mBuildIslandsFromConstraints.RemoveDependency();
  301. // This job will call the contact removed callbacks
  302. step.mContactRemovedCallbacks = inJobSystem->CreateJob("ContactRemovedCallbacks", cColorContactRemovedCallbacks, [&context, &step]()
  303. {
  304. context.mPhysicsSystem->JobContactRemovedCallbacks(&step);
  305. if (step.mStartNextStep.IsValid())
  306. step.mStartNextStep.RemoveDependency();
  307. }, 1); // depends on the find ccd contacts
  308. // This job will set the island index on each body (only used for debug drawing purposes)
  309. // It will also delete any bodies that have been destroyed in the last frame
  310. step.mBodySetIslandIndex = inJobSystem->CreateJob("BodySetIslandIndex", cColorBodySetIslandIndex, [&context, &step]()
  311. {
  312. context.mPhysicsSystem->JobBodySetIslandIndex();
  313. JobHandle::sRemoveDependencies(step.mSolvePositionConstraints);
  314. }, 2); // depends on: finalize islands, finish building jobs
  315. // Job to start the next collision step
  316. if (!is_last_step)
  317. {
  318. PhysicsUpdateContext::Step *next_step = &context.mSteps[step_idx + 1];
  319. step.mStartNextStep = inJobSystem->CreateJob("StartNextStep", cColorStartNextStep, [this, next_step]()
  320. {
  321. #ifdef JPH_DEBUG
  322. // Validate that the cached bounds are correct
  323. mBodyManager.ValidateActiveBodyBounds();
  324. #endif // JPH_DEBUG
  325. // Store the number of active bodies at the start of the step
  326. next_step->mNumActiveBodiesAtStepStart = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody);
  327. // Clear the large island splitter
  328. TempAllocator *temp_allocator = next_step->mContext->mTempAllocator;
  329. mLargeIslandSplitter.Reset(temp_allocator);
  330. // Clear the island builder
  331. mIslandBuilder.ResetIslands(temp_allocator);
  332. // Setup island builder
  333. mIslandBuilder.PrepareContactConstraints(mContactManager.GetMaxConstraints(), temp_allocator);
  334. // Restart the contact manager
  335. mContactManager.RecycleConstraintBuffer();
  336. // Kick the jobs of the next step (in the same order as the first step)
  337. next_step->mBroadPhasePrepare.RemoveDependency();
  338. if (next_step->mStepListeners.empty())
  339. {
  340. // Kick the gravity and active constraints jobs immediately
  341. JobHandle::sRemoveDependencies(next_step->mApplyGravity);
  342. JobHandle::sRemoveDependencies(next_step->mDetermineActiveConstraints);
  343. }
  344. else
  345. {
  346. // Kick the step listeners job first
  347. JobHandle::sRemoveDependencies(next_step->mStepListeners);
  348. }
  349. }, 3); // depends on: update soft bodies, contact removed callbacks, finish building the previous step
  350. }
  351. // This job will solve the velocity constraints
  352. step.mSolveVelocityConstraints.resize(max_concurrency);
  353. for (int i = 0; i < max_concurrency; ++i)
  354. step.mSolveVelocityConstraints[i] = inJobSystem->CreateJob("SolveVelocityConstraints", cColorSolveVelocityConstraints, [&context, &step]()
  355. {
  356. context.mPhysicsSystem->JobSolveVelocityConstraints(&context, &step);
  357. step.mPreIntegrateVelocity.RemoveDependency();
  358. }, num_setup_velocity_constraints_jobs + 2); // depends on: finalize islands, setup velocity constraints, finish building jobs.
  359. // We prefer setup velocity constraints to finish first so we kick it first
  360. JobHandle::sRemoveDependencies(step.mSetupVelocityConstraints);
  361. JobHandle::sRemoveDependencies(step.mFindCollisions);
  362. // Finalize islands is a dependency on find collisions so it can go last
  363. step.mFinalizeIslands.RemoveDependency();
  364. // This job will prepare the position update of all active bodies
  365. step.mPreIntegrateVelocity = inJobSystem->CreateJob("PreIntegrateVelocity", cColorPreIntegrateVelocity, [&context, &step]()
  366. {
  367. context.mPhysicsSystem->JobPreIntegrateVelocity(&context, &step);
  368. JobHandle::sRemoveDependencies(step.mIntegrateVelocity);
  369. }, 2 + max_concurrency); // depends on: broadphase update finalize, solve velocity constraints, finish building jobs.
  370. // Unblock previous jobs
  371. step.mUpdateBroadphaseFinalize.RemoveDependency();
  372. JobHandle::sRemoveDependencies(step.mSolveVelocityConstraints);
  373. // This job will update the positions of all active bodies
  374. step.mIntegrateVelocity.resize(num_integrate_velocity_jobs);
  375. for (int i = 0; i < num_integrate_velocity_jobs; ++i)
  376. step.mIntegrateVelocity[i] = inJobSystem->CreateJob("IntegrateVelocity", cColorIntegrateVelocity, [&context, &step]()
  377. {
  378. context.mPhysicsSystem->JobIntegrateVelocity(&context, &step);
  379. step.mPostIntegrateVelocity.RemoveDependency();
  380. }, 2); // depends on: pre integrate velocity, finish building jobs.
  381. // Unblock previous job
  382. step.mPreIntegrateVelocity.RemoveDependency();
  383. // This job will finish the position update of all active bodies
  384. step.mPostIntegrateVelocity = inJobSystem->CreateJob("PostIntegrateVelocity", cColorPostIntegrateVelocity, [&context, &step]()
  385. {
  386. context.mPhysicsSystem->JobPostIntegrateVelocity(&context, &step);
  387. step.mResolveCCDContacts.RemoveDependency();
  388. }, num_integrate_velocity_jobs + 1); // depends on: integrate velocity, finish building jobs
  389. // Unblock previous jobs
  390. JobHandle::sRemoveDependencies(step.mIntegrateVelocity);
  391. // This job will update the positions and velocities for all bodies that need continuous collision detection
  392. step.mResolveCCDContacts = inJobSystem->CreateJob("ResolveCCDContacts", cColorResolveCCDContacts, [&context, &step]()
  393. {
  394. context.mPhysicsSystem->JobResolveCCDContacts(&context, &step);
  395. JobHandle::sRemoveDependencies(step.mSolvePositionConstraints);
  396. }, 2); // depends on: integrate velocities, detect ccd contacts (added dynamically), finish building jobs.
  397. // Unblock previous job
  398. step.mPostIntegrateVelocity.RemoveDependency();
  399. // Fixes up drift in positions and updates the broadphase with new body positions
  400. step.mSolvePositionConstraints.resize(max_concurrency);
  401. for (int i = 0; i < max_concurrency; ++i)
  402. step.mSolvePositionConstraints[i] = inJobSystem->CreateJob("SolvePositionConstraints", cColorSolvePositionConstraints, [&context, &step]()
  403. {
  404. context.mPhysicsSystem->JobSolvePositionConstraints(&context, &step);
  405. // Kick the next step
  406. if (step.mSoftBodyPrepare.IsValid())
  407. step.mSoftBodyPrepare.RemoveDependency();
  408. }, 3); // depends on: resolve ccd contacts, body set island index, finish building jobs.
  409. // Unblock previous jobs.
  410. step.mResolveCCDContacts.RemoveDependency();
  411. step.mBodySetIslandIndex.RemoveDependency();
  412. // The soft body prepare job will create other jobs if needed
  413. step.mSoftBodyPrepare = inJobSystem->CreateJob("SoftBodyPrepare", cColorSoftBodyPrepare, [&context, &step]()
  414. {
  415. context.mPhysicsSystem->JobSoftBodyPrepare(&context, &step);
  416. }, max_concurrency); // depends on: solve position constraints.
  417. // Unblock previous jobs
  418. JobHandle::sRemoveDependencies(step.mSolvePositionConstraints);
  419. }
  420. }
  421. // Build the list of jobs to wait for
  422. JobSystem::Barrier *barrier = context.mBarrier;
  423. {
  424. JPH_PROFILE("Build job barrier");
  425. StaticArray<JobHandle, cMaxPhysicsJobs> handles;
  426. for (const PhysicsUpdateContext::Step &step : context.mSteps)
  427. {
  428. if (step.mBroadPhasePrepare.IsValid())
  429. handles.push_back(step.mBroadPhasePrepare);
  430. for (const JobHandle &h : step.mStepListeners)
  431. handles.push_back(h);
  432. for (const JobHandle &h : step.mDetermineActiveConstraints)
  433. handles.push_back(h);
  434. for (const JobHandle &h : step.mApplyGravity)
  435. handles.push_back(h);
  436. for (const JobHandle &h : step.mFindCollisions)
  437. handles.push_back(h);
  438. if (step.mUpdateBroadphaseFinalize.IsValid())
  439. handles.push_back(step.mUpdateBroadphaseFinalize);
  440. for (const JobHandle &h : step.mSetupVelocityConstraints)
  441. handles.push_back(h);
  442. handles.push_back(step.mBuildIslandsFromConstraints);
  443. handles.push_back(step.mFinalizeIslands);
  444. handles.push_back(step.mBodySetIslandIndex);
  445. for (const JobHandle &h : step.mSolveVelocityConstraints)
  446. handles.push_back(h);
  447. handles.push_back(step.mPreIntegrateVelocity);
  448. for (const JobHandle &h : step.mIntegrateVelocity)
  449. handles.push_back(h);
  450. handles.push_back(step.mPostIntegrateVelocity);
  451. handles.push_back(step.mResolveCCDContacts);
  452. for (const JobHandle &h : step.mSolvePositionConstraints)
  453. handles.push_back(h);
  454. handles.push_back(step.mContactRemovedCallbacks);
  455. if (step.mSoftBodyPrepare.IsValid())
  456. handles.push_back(step.mSoftBodyPrepare);
  457. if (step.mStartNextStep.IsValid())
  458. handles.push_back(step.mStartNextStep);
  459. }
  460. barrier->AddJobs(handles.data(), handles.size());
  461. }
  462. // Wait until all jobs finish
  463. // Note we don't just wait for the last job. If we would and another job
  464. // would be scheduled in between there is the possibility of a deadlock.
  465. // The other job could try to e.g. add/remove a body which would try to
  466. // lock a body mutex while this thread has already locked the mutex
  467. inJobSystem->WaitForJobs(barrier);
  468. // We're done with the barrier for this update
  469. inJobSystem->DestroyBarrier(barrier);
  470. #ifdef JPH_DEBUG
  471. // Validate that the cached bounds are correct
  472. mBodyManager.ValidateActiveBodyBounds();
  473. #endif // JPH_DEBUG
  474. // Clear the large island splitter
  475. mLargeIslandSplitter.Reset(inTempAllocator);
  476. // Clear the island builder
  477. mIslandBuilder.ResetIslands(inTempAllocator);
  478. // Clear the contact manager
  479. mContactManager.FinishConstraintBuffer();
  480. // Free active constraints
  481. inTempAllocator->Free(context.mActiveConstraints, mConstraintManager.GetNumConstraints() * sizeof(Constraint *));
  482. context.mActiveConstraints = nullptr;
  483. // Free body pairs
  484. inTempAllocator->Free(context.mBodyPairs, sizeof(BodyPair) * mPhysicsSettings.mMaxInFlightBodyPairs);
  485. context.mBodyPairs = nullptr;
  486. // Unlock the broadphase
  487. mBroadPhase->UnlockModifications();
  488. // Unlock all constraints
  489. mConstraintManager.UnlockAllConstraints();
  490. #ifdef JPH_ENABLE_ASSERTS
  491. // Allow write operations to the active bodies list
  492. mBodyManager.SetActiveBodiesLocked(false);
  493. #endif
  494. // Unlock all bodies
  495. mBodyManager.UnlockAllBodies();
  496. // Unlock step listeners
  497. mStepListenersMutex.unlock();
  498. // Return any errors
  499. EPhysicsUpdateError errors = static_cast<EPhysicsUpdateError>(context.mErrors.load(memory_order_acquire));
  500. JPH_ASSERT(errors == EPhysicsUpdateError::None, "An error occurred during the physics update, see EPhysicsUpdateError for more information");
  501. return errors;
  502. }
  503. void PhysicsSystem::JobStepListeners(PhysicsUpdateContext::Step *ioStep)
  504. {
  505. #ifdef JPH_ENABLE_ASSERTS
  506. // Read positions (broadphase updates concurrently so we can't write), read/write velocities
  507. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::Read);
  508. // Can activate bodies only (we cache the amount of active bodies at the beginning of the step in mNumActiveBodiesAtStepStart so we cannot deactivate here)
  509. BodyManager::GrantActiveBodiesAccess grant_active(true, false);
  510. #endif
  511. PhysicsStepListenerContext context;
  512. context.mDeltaTime = ioStep->mContext->mStepDeltaTime;
  513. context.mIsFirstStep = ioStep->mIsFirst;
  514. context.mIsLastStep = ioStep->mIsLast;
  515. context.mPhysicsSystem = this;
  516. uint32 batch_size = mPhysicsSettings.mStepListenersBatchSize;
  517. for (;;)
  518. {
  519. // Get the start of a new batch
  520. uint32 batch = ioStep->mStepListenerReadIdx.fetch_add(batch_size);
  521. if (batch >= mStepListeners.size())
  522. break;
  523. // Call the listeners
  524. for (uint32 i = batch, i_end = min((uint32)mStepListeners.size(), batch + batch_size); i < i_end; ++i)
  525. mStepListeners[i]->OnStep(context);
  526. }
  527. }
  528. void PhysicsSystem::JobDetermineActiveConstraints(PhysicsUpdateContext::Step *ioStep) const
  529. {
  530. #ifdef JPH_ENABLE_ASSERTS
  531. // No body access
  532. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::None);
  533. #endif
  534. uint32 num_constraints = mConstraintManager.GetNumConstraints();
  535. uint32 num_active_constraints;
  536. Constraint **active_constraints = (Constraint **)JPH_STACK_ALLOC(cDetermineActiveConstraintsBatchSize * sizeof(Constraint *));
  537. for (;;)
  538. {
  539. // Atomically fetch a batch of constraints
  540. uint32 constraint_idx = ioStep->mDetermineActiveConstraintReadIdx.fetch_add(cDetermineActiveConstraintsBatchSize);
  541. if (constraint_idx >= num_constraints)
  542. break;
  543. // Calculate the end of the batch
  544. uint32 constraint_idx_end = min(num_constraints, constraint_idx + cDetermineActiveConstraintsBatchSize);
  545. // Store the active constraints at the start of the step (bodies get activated during the step which in turn may activate constraints leading to an inconsistent shapshot)
  546. mConstraintManager.GetActiveConstraints(constraint_idx, constraint_idx_end, active_constraints, num_active_constraints);
  547. // Copy the block of active constraints to the global list of active constraints
  548. if (num_active_constraints > 0)
  549. {
  550. uint32 active_constraint_idx = ioStep->mNumActiveConstraints.fetch_add(num_active_constraints);
  551. memcpy(ioStep->mContext->mActiveConstraints + active_constraint_idx, active_constraints, num_active_constraints * sizeof(Constraint *));
  552. }
  553. }
  554. }
  555. void PhysicsSystem::JobApplyGravity(const PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  556. {
  557. #ifdef JPH_ENABLE_ASSERTS
  558. // We update velocities and need the rotation to do so
  559. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::Read);
  560. #endif
  561. // Get list of active bodies that we had at the start of the physics update.
  562. // Any body that is activated as part of the simulation step does not receive gravity this frame.
  563. // Note that bodies may be activated during this job but not deactivated, this means that only elements
  564. // will be added to the array. Since the array is made to not reallocate, this is a safe operation.
  565. const BodyID *active_bodies = mBodyManager.GetActiveBodiesUnsafe(EBodyType::RigidBody);
  566. uint32 num_active_bodies_at_step_start = ioStep->mNumActiveBodiesAtStepStart;
  567. // Fetch delta time once outside the loop
  568. float delta_time = ioContext->mStepDeltaTime;
  569. // Update velocities from forces
  570. for (;;)
  571. {
  572. // Atomically fetch a batch of bodies
  573. uint32 active_body_idx = ioStep->mApplyGravityReadIdx.fetch_add(cApplyGravityBatchSize);
  574. if (active_body_idx >= num_active_bodies_at_step_start)
  575. break;
  576. // Calculate the end of the batch
  577. uint32 active_body_idx_end = min(num_active_bodies_at_step_start, active_body_idx + cApplyGravityBatchSize);
  578. // Process the batch
  579. while (active_body_idx < active_body_idx_end)
  580. {
  581. Body &body = mBodyManager.GetBody(active_bodies[active_body_idx]);
  582. if (body.IsDynamic())
  583. {
  584. MotionProperties *mp = body.GetMotionProperties();
  585. Quat rotation = body.GetRotation();
  586. if (body.GetApplyGyroscopicForce())
  587. mp->ApplyGyroscopicForceInternal(rotation, delta_time);
  588. mp->ApplyForceTorqueAndDragInternal(rotation, mGravity, delta_time);
  589. }
  590. active_body_idx++;
  591. }
  592. }
  593. }
  594. void PhysicsSystem::JobSetupVelocityConstraints(float inDeltaTime, PhysicsUpdateContext::Step *ioStep) const
  595. {
  596. #ifdef JPH_ENABLE_ASSERTS
  597. // We only read positions
  598. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::Read);
  599. #endif
  600. uint32 num_constraints = ioStep->mNumActiveConstraints;
  601. for (;;)
  602. {
  603. // Atomically fetch a batch of constraints
  604. uint32 constraint_idx = ioStep->mSetupVelocityConstraintsReadIdx.fetch_add(cSetupVelocityConstraintsBatchSize);
  605. if (constraint_idx >= num_constraints)
  606. break;
  607. ConstraintManager::sSetupVelocityConstraints(ioStep->mContext->mActiveConstraints + constraint_idx, min<uint32>(cSetupVelocityConstraintsBatchSize, num_constraints - constraint_idx), inDeltaTime);
  608. }
  609. }
  610. void PhysicsSystem::JobBuildIslandsFromConstraints(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  611. {
  612. #ifdef JPH_ENABLE_ASSERTS
  613. // We read constraints and positions
  614. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::Read);
  615. // Can only activate bodies
  616. BodyManager::GrantActiveBodiesAccess grant_active(true, false);
  617. #endif
  618. // Prepare the island builder
  619. mIslandBuilder.PrepareNonContactConstraints(ioStep->mNumActiveConstraints, ioContext->mTempAllocator);
  620. // Build the islands
  621. ConstraintManager::sBuildIslands(ioStep->mContext->mActiveConstraints, ioStep->mNumActiveConstraints, mIslandBuilder, mBodyManager);
  622. }
  623. void PhysicsSystem::TrySpawnJobFindCollisions(PhysicsUpdateContext::Step *ioStep) const
  624. {
  625. // Get how many jobs we can spawn and check if we can spawn more
  626. uint max_jobs = ioStep->mBodyPairQueues.size();
  627. if (CountBits(ioStep->mActiveFindCollisionJobs.load(memory_order_relaxed)) >= max_jobs)
  628. return;
  629. // Count how many body pairs we have waiting
  630. uint32 num_body_pairs = 0;
  631. for (const PhysicsUpdateContext::BodyPairQueue &queue : ioStep->mBodyPairQueues)
  632. num_body_pairs += queue.mWriteIdx - queue.mReadIdx;
  633. // Count how many active bodies we have waiting
  634. uint32 num_active_bodies = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody) - ioStep->mActiveBodyReadIdx;
  635. // Calculate how many jobs we would like
  636. uint desired_num_jobs = min((num_body_pairs + cNarrowPhaseBatchSize - 1) / cNarrowPhaseBatchSize + (num_active_bodies + cActiveBodiesBatchSize - 1) / cActiveBodiesBatchSize, max_jobs);
  637. for (;;)
  638. {
  639. // Get the bit mask of active jobs and see if we can spawn more
  640. PhysicsUpdateContext::JobMask current_active_jobs = ioStep->mActiveFindCollisionJobs.load(memory_order_relaxed);
  641. uint job_index = CountTrailingZeros(~current_active_jobs);
  642. if (job_index >= desired_num_jobs)
  643. break;
  644. // Try to claim the job index
  645. PhysicsUpdateContext::JobMask job_mask = PhysicsUpdateContext::JobMask(1) << job_index;
  646. PhysicsUpdateContext::JobMask prev_value = ioStep->mActiveFindCollisionJobs.fetch_or(job_mask, memory_order_acquire);
  647. if ((prev_value & job_mask) == 0)
  648. {
  649. // Add dependencies from the find collisions job to the next jobs
  650. ioStep->mUpdateBroadphaseFinalize.AddDependency();
  651. ioStep->mFinalizeIslands.AddDependency();
  652. // Start the job
  653. JobHandle job = ioStep->mContext->mJobSystem->CreateJob("FindCollisions", cColorFindCollisions, [step = ioStep, job_index]()
  654. {
  655. step->mContext->mPhysicsSystem->JobFindCollisions(step, job_index);
  656. });
  657. // Add the job to the job barrier so the main updating thread can execute the job too
  658. ioStep->mContext->mBarrier->AddJob(job);
  659. // Spawn only 1 extra job at a time
  660. return;
  661. }
  662. }
  663. }
  664. static void sFinalizeContactAllocator(PhysicsUpdateContext::Step &ioStep, const ContactConstraintManager::ContactAllocator &inAllocator)
  665. {
  666. // Atomically accumulate the number of found manifolds and body pairs
  667. ioStep.mNumBodyPairs.fetch_add(inAllocator.mNumBodyPairs, memory_order_relaxed);
  668. ioStep.mNumManifolds.fetch_add(inAllocator.mNumManifolds, memory_order_relaxed);
  669. // Combine update errors
  670. ioStep.mContext->mErrors.fetch_or((uint32)inAllocator.mErrors, memory_order_relaxed);
  671. }
  672. // Disable TSAN for this function. It detects a false positive race condition on mBodyPairs.
  673. // We have written mBodyPairs before doing mWriteIdx++ and we check mWriteIdx before reading mBodyPairs, so this should be safe.
  674. JPH_TSAN_NO_SANITIZE
  675. void PhysicsSystem::JobFindCollisions(PhysicsUpdateContext::Step *ioStep, int inJobIndex)
  676. {
  677. #ifdef JPH_ENABLE_ASSERTS
  678. // We read positions and read velocities (for elastic collisions)
  679. BodyAccess::Grant grant(BodyAccess::EAccess::Read, BodyAccess::EAccess::Read);
  680. // Can only activate bodies
  681. BodyManager::GrantActiveBodiesAccess grant_active(true, false);
  682. #endif
  683. // Allocation context for allocating new contact points
  684. ContactAllocator contact_allocator(mContactManager.GetContactAllocator());
  685. // Determine initial queue to read pairs from if no broadphase work can be done
  686. // (always start looking at results from the next job)
  687. int read_queue_idx = (inJobIndex + 1) % ioStep->mBodyPairQueues.size();
  688. // Allocate space to temporarily store a batch of active bodies
  689. BodyID *active_bodies = (BodyID *)JPH_STACK_ALLOC(cActiveBodiesBatchSize * sizeof(BodyID));
  690. for (;;)
  691. {
  692. // Check if there are active bodies to be processed
  693. uint32 active_bodies_read_idx = ioStep->mActiveBodyReadIdx;
  694. uint32 num_active_bodies = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody);
  695. if (active_bodies_read_idx < num_active_bodies)
  696. {
  697. // Take a batch of active bodies
  698. uint32 active_bodies_read_idx_end = min(num_active_bodies, active_bodies_read_idx + cActiveBodiesBatchSize);
  699. if (ioStep->mActiveBodyReadIdx.compare_exchange_strong(active_bodies_read_idx, active_bodies_read_idx_end))
  700. {
  701. // Callback when a new body pair is found
  702. class MyBodyPairCallback : public BodyPairCollector
  703. {
  704. public:
  705. // Constructor
  706. MyBodyPairCallback(PhysicsUpdateContext::Step *inStep, ContactAllocator &ioContactAllocator, int inJobIndex) :
  707. mStep(inStep),
  708. mContactAllocator(ioContactAllocator),
  709. mJobIndex(inJobIndex)
  710. {
  711. }
  712. // Callback function when a body pair is found
  713. virtual void AddHit(const BodyPair &inPair) override
  714. {
  715. // Check if we have space in our write queue
  716. PhysicsUpdateContext::BodyPairQueue &queue = mStep->mBodyPairQueues[mJobIndex];
  717. uint32 body_pairs_in_queue = queue.mWriteIdx - queue.mReadIdx;
  718. if (body_pairs_in_queue >= mStep->mMaxBodyPairsPerQueue)
  719. {
  720. // Buffer full, process the pair now
  721. mStep->mContext->mPhysicsSystem->ProcessBodyPair(mContactAllocator, inPair);
  722. }
  723. else
  724. {
  725. // Store the pair in our own queue
  726. mStep->mContext->mBodyPairs[mJobIndex * mStep->mMaxBodyPairsPerQueue + queue.mWriteIdx % mStep->mMaxBodyPairsPerQueue] = inPair;
  727. ++queue.mWriteIdx;
  728. }
  729. }
  730. private:
  731. PhysicsUpdateContext::Step * mStep;
  732. ContactAllocator & mContactAllocator;
  733. int mJobIndex;
  734. };
  735. MyBodyPairCallback add_pair(ioStep, contact_allocator, inJobIndex);
  736. // Copy active bodies to temporary array, broadphase will reorder them
  737. uint32 batch_size = active_bodies_read_idx_end - active_bodies_read_idx;
  738. memcpy(active_bodies, mBodyManager.GetActiveBodiesUnsafe(EBodyType::RigidBody) + active_bodies_read_idx, batch_size * sizeof(BodyID));
  739. // Find pairs in the broadphase
  740. mBroadPhase->FindCollidingPairs(active_bodies, batch_size, mPhysicsSettings.mSpeculativeContactDistance, *mObjectVsBroadPhaseLayerFilter, *mObjectLayerPairFilter, add_pair);
  741. // Check if we have enough pairs in the buffer to start a new job
  742. const PhysicsUpdateContext::BodyPairQueue &queue = ioStep->mBodyPairQueues[inJobIndex];
  743. uint32 body_pairs_in_queue = queue.mWriteIdx - queue.mReadIdx;
  744. if (body_pairs_in_queue >= cNarrowPhaseBatchSize)
  745. TrySpawnJobFindCollisions(ioStep);
  746. }
  747. }
  748. else
  749. {
  750. // Lockless loop to get the next body pair from the pairs buffer
  751. const PhysicsUpdateContext *context = ioStep->mContext;
  752. int first_read_queue_idx = read_queue_idx;
  753. for (;;)
  754. {
  755. PhysicsUpdateContext::BodyPairQueue &queue = ioStep->mBodyPairQueues[read_queue_idx];
  756. // Get the next pair to process
  757. uint32 pair_idx = queue.mReadIdx;
  758. // If the pair hasn't been written yet
  759. if (pair_idx >= queue.mWriteIdx)
  760. {
  761. // Go to the next queue
  762. read_queue_idx = (read_queue_idx + 1) % ioStep->mBodyPairQueues.size();
  763. // If we're back at the first queue, we've looked at all of them and found nothing
  764. if (read_queue_idx == first_read_queue_idx)
  765. {
  766. // Collect information from the contact allocator and accumulate it in the step.
  767. sFinalizeContactAllocator(*ioStep, contact_allocator);
  768. // Mark this job as inactive
  769. ioStep->mActiveFindCollisionJobs.fetch_and(~PhysicsUpdateContext::JobMask(1 << inJobIndex), memory_order_release);
  770. // Trigger the next jobs
  771. ioStep->mUpdateBroadphaseFinalize.RemoveDependency();
  772. ioStep->mFinalizeIslands.RemoveDependency();
  773. return;
  774. }
  775. // Try again reading from the next queue
  776. continue;
  777. }
  778. // Copy the body pair out of the buffer
  779. const BodyPair bp = context->mBodyPairs[read_queue_idx * ioStep->mMaxBodyPairsPerQueue + pair_idx % ioStep->mMaxBodyPairsPerQueue];
  780. // Mark this pair as taken
  781. if (queue.mReadIdx.compare_exchange_strong(pair_idx, pair_idx + 1))
  782. {
  783. // Process the actual body pair
  784. ProcessBodyPair(contact_allocator, bp);
  785. break;
  786. }
  787. }
  788. }
  789. }
  790. }
  791. void PhysicsSystem::sDefaultSimCollideBodyVsBody(const Body &inBody1, const Body &inBody2, Mat44Arg inCenterOfMassTransform1, Mat44Arg inCenterOfMassTransform2, CollideShapeSettings &ioCollideShapeSettings, CollideShapeCollector &ioCollector, const ShapeFilter &inShapeFilter)
  792. {
  793. SubShapeIDCreator part1, part2;
  794. if (inBody1.GetEnhancedInternalEdgeRemovalWithBody(inBody2))
  795. {
  796. // Collide with enhanced internal edge removal
  797. ioCollideShapeSettings.mActiveEdgeMode = EActiveEdgeMode::CollideWithAll;
  798. InternalEdgeRemovingCollector::sCollideShapeVsShape(inBody1.GetShape(), inBody2.GetShape(), Vec3::sOne(), Vec3::sOne(), inCenterOfMassTransform1, inCenterOfMassTransform2, part1, part2, ioCollideShapeSettings, ioCollector, inShapeFilter);
  799. }
  800. else
  801. {
  802. // Regular collide
  803. CollisionDispatch::sCollideShapeVsShape(inBody1.GetShape(), inBody2.GetShape(), Vec3::sOne(), Vec3::sOne(), inCenterOfMassTransform1, inCenterOfMassTransform2, part1, part2, ioCollideShapeSettings, ioCollector, inShapeFilter);
  804. }
  805. }
  806. void PhysicsSystem::ProcessBodyPair(ContactAllocator &ioContactAllocator, const BodyPair &inBodyPair)
  807. {
  808. JPH_PROFILE_FUNCTION();
  809. // Fetch body pair
  810. Body *body1 = &mBodyManager.GetBody(inBodyPair.mBodyA);
  811. Body *body2 = &mBodyManager.GetBody(inBodyPair.mBodyB);
  812. JPH_ASSERT(body1->IsActive());
  813. JPH_DET_LOG("ProcessBodyPair: id1: " << inBodyPair.mBodyA << " id2: " << inBodyPair.mBodyB << " p1: " << body1->GetCenterOfMassPosition() << " p2: " << body2->GetCenterOfMassPosition() << " r1: " << body1->GetRotation() << " r2: " << body2->GetRotation());
  814. // Check for soft bodies
  815. if (body2->IsSoftBody())
  816. {
  817. // If the 2nd body is a soft body and not active, we activate it now
  818. if (!body2->IsActive())
  819. mBodyManager.ActivateBodies(&inBodyPair.mBodyB, 1);
  820. // Soft body processing is done later in the pipeline
  821. return;
  822. }
  823. // Ensure that body1 has the higher motion type (i.e. dynamic trumps kinematic), this ensures that we do the collision detection in the space of a moving body,
  824. // which avoids accuracy problems when testing a very large static object against a small dynamic object
  825. // Ensure that body1 id < body2 id when motion types are the same.
  826. if (body1->GetMotionType() < body2->GetMotionType()
  827. || (body1->GetMotionType() == body2->GetMotionType() && inBodyPair.mBodyB < inBodyPair.mBodyA))
  828. std::swap(body1, body2);
  829. // Check if the contact points from the previous frame are reusable and if so copy them
  830. bool pair_handled = false, constraint_created = false;
  831. if (mPhysicsSettings.mUseBodyPairContactCache && !(body1->IsCollisionCacheInvalid() || body2->IsCollisionCacheInvalid()))
  832. mContactManager.GetContactsFromCache(ioContactAllocator, *body1, *body2, pair_handled, constraint_created);
  833. // If the cache hasn't handled this body pair do actual collision detection
  834. if (!pair_handled)
  835. {
  836. // Create entry in the cache for this body pair
  837. // Needs to happen irrespective if we found a collision or not (we want to remember that no collision was found too)
  838. ContactConstraintManager::BodyPairHandle body_pair_handle = mContactManager.AddBodyPair(ioContactAllocator, *body1, *body2);
  839. if (body_pair_handle == nullptr)
  840. return; // Out of cache space
  841. // Create the query settings
  842. CollideShapeSettings settings;
  843. settings.mCollectFacesMode = ECollectFacesMode::CollectFaces;
  844. settings.mActiveEdgeMode = mPhysicsSettings.mCheckActiveEdges? EActiveEdgeMode::CollideOnlyWithActive : EActiveEdgeMode::CollideWithAll;
  845. settings.mMaxSeparationDistance = body1->IsSensor() || body2->IsSensor()? 0.0f : mPhysicsSettings.mSpeculativeContactDistance;
  846. settings.mActiveEdgeMovementDirection = body1->GetLinearVelocity() - body2->GetLinearVelocity();
  847. // Create shape filter
  848. SimShapeFilterWrapperUnion shape_filter_union(mSimShapeFilter, body1);
  849. SimShapeFilterWrapper &shape_filter = shape_filter_union.GetSimShapeFilterWrapper();
  850. shape_filter.SetBody2(body2);
  851. // Get transforms relative to body1
  852. RVec3 offset = body1->GetCenterOfMassPosition();
  853. Mat44 transform1 = Mat44::sRotation(body1->GetRotation());
  854. Mat44 transform2 = body2->GetCenterOfMassTransform().PostTranslated(-offset).ToMat44();
  855. if (mPhysicsSettings.mUseManifoldReduction // Check global flag
  856. && body1->GetUseManifoldReductionWithBody(*body2)) // Check body flag
  857. {
  858. // Version WITH contact manifold reduction
  859. class MyManifold : public ContactManifold
  860. {
  861. public:
  862. Vec3 mFirstWorldSpaceNormal;
  863. };
  864. // A temporary structure that allows us to keep track of the all manifolds between this body pair
  865. using Manifolds = StaticArray<MyManifold, 32>;
  866. // Create collector
  867. class ReductionCollideShapeCollector : public CollideShapeCollector
  868. {
  869. public:
  870. ReductionCollideShapeCollector(PhysicsSystem *inSystem, const Body *inBody1, const Body *inBody2) :
  871. mSystem(inSystem),
  872. mBody1(inBody1),
  873. mBody2(inBody2)
  874. {
  875. }
  876. virtual void AddHit(const CollideShapeResult &inResult) override
  877. {
  878. // The first body should be the one with the highest motion type
  879. JPH_ASSERT(mBody1->GetMotionType() >= mBody2->GetMotionType());
  880. JPH_ASSERT(!ShouldEarlyOut());
  881. // Test if we want to accept this hit
  882. if (mValidateBodyPair)
  883. {
  884. switch (mSystem->mContactManager.ValidateContactPoint(*mBody1, *mBody2, mBody1->GetCenterOfMassPosition(), inResult))
  885. {
  886. case ValidateResult::AcceptContact:
  887. // We're just accepting this one, nothing to do
  888. break;
  889. case ValidateResult::AcceptAllContactsForThisBodyPair:
  890. // Accept and stop calling the validate callback
  891. mValidateBodyPair = false;
  892. break;
  893. case ValidateResult::RejectContact:
  894. // Skip this contact
  895. return;
  896. case ValidateResult::RejectAllContactsForThisBodyPair:
  897. // Skip this and early out
  898. ForceEarlyOut();
  899. return;
  900. }
  901. }
  902. // Calculate normal
  903. Vec3 world_space_normal = inResult.mPenetrationAxis.Normalized();
  904. // Check if we can add it to an existing manifold
  905. Manifolds::iterator manifold;
  906. float contact_normal_cos_max_delta_rot = mSystem->mPhysicsSettings.mContactNormalCosMaxDeltaRotation;
  907. for (manifold = mManifolds.begin(); manifold != mManifolds.end(); ++manifold)
  908. if (world_space_normal.Dot(manifold->mFirstWorldSpaceNormal) >= contact_normal_cos_max_delta_rot)
  909. {
  910. // Update average normal
  911. manifold->mWorldSpaceNormal += world_space_normal;
  912. manifold->mPenetrationDepth = max(manifold->mPenetrationDepth, inResult.mPenetrationDepth);
  913. break;
  914. }
  915. if (manifold == mManifolds.end())
  916. {
  917. // Check if array is full
  918. if (mManifolds.size() == mManifolds.capacity())
  919. {
  920. // Full, find manifold with least amount of penetration
  921. manifold = mManifolds.begin();
  922. for (Manifolds::iterator m = mManifolds.begin() + 1; m < mManifolds.end(); ++m)
  923. if (m->mPenetrationDepth < manifold->mPenetrationDepth)
  924. manifold = m;
  925. // If this contacts penetration is smaller than the smallest manifold, we skip this contact
  926. if (inResult.mPenetrationDepth < manifold->mPenetrationDepth)
  927. return;
  928. // Replace the manifold
  929. *manifold = { { mBody1->GetCenterOfMassPosition(), world_space_normal, inResult.mPenetrationDepth, inResult.mSubShapeID1, inResult.mSubShapeID2, { }, { } }, world_space_normal };
  930. }
  931. else
  932. {
  933. // Not full, create new manifold
  934. mManifolds.push_back({ { mBody1->GetCenterOfMassPosition(), world_space_normal, inResult.mPenetrationDepth, inResult.mSubShapeID1, inResult.mSubShapeID2, { }, { } }, world_space_normal });
  935. manifold = mManifolds.end() - 1;
  936. }
  937. }
  938. // Determine contact points
  939. const PhysicsSettings &settings = mSystem->mPhysicsSettings;
  940. ManifoldBetweenTwoFaces(inResult.mContactPointOn1, inResult.mContactPointOn2, inResult.mPenetrationAxis, settings.mSpeculativeContactDistance + settings.mManifoldTolerance, inResult.mShape1Face, inResult.mShape2Face, manifold->mRelativeContactPointsOn1, manifold->mRelativeContactPointsOn2 JPH_IF_DEBUG_RENDERER(, mBody1->GetCenterOfMassPosition()));
  941. // Prune if we have more than 32 points (this means we could run out of space in the next iteration)
  942. if (manifold->mRelativeContactPointsOn1.size() > 32)
  943. PruneContactPoints(manifold->mFirstWorldSpaceNormal, manifold->mRelativeContactPointsOn1, manifold->mRelativeContactPointsOn2 JPH_IF_DEBUG_RENDERER(, manifold->mBaseOffset));
  944. }
  945. PhysicsSystem * mSystem;
  946. const Body * mBody1;
  947. const Body * mBody2;
  948. bool mValidateBodyPair = true;
  949. Manifolds mManifolds;
  950. };
  951. ReductionCollideShapeCollector collector(this, body1, body2);
  952. // Perform collision detection between the two shapes
  953. mSimCollideBodyVsBody(*body1, *body2, transform1, transform2, settings, collector, shape_filter);
  954. // Add the contacts
  955. for (ContactManifold &manifold : collector.mManifolds)
  956. {
  957. // Normalize the normal (is a sum of all normals from merged manifolds)
  958. manifold.mWorldSpaceNormal = manifold.mWorldSpaceNormal.Normalized();
  959. // If we still have too many points, prune them now
  960. if (manifold.mRelativeContactPointsOn1.size() > 4)
  961. PruneContactPoints(manifold.mWorldSpaceNormal, manifold.mRelativeContactPointsOn1, manifold.mRelativeContactPointsOn2 JPH_IF_DEBUG_RENDERER(, manifold.mBaseOffset));
  962. // Actually add the contact points to the manager
  963. constraint_created |= mContactManager.AddContactConstraint(ioContactAllocator, body_pair_handle, *body1, *body2, manifold);
  964. }
  965. }
  966. else
  967. {
  968. // Version WITHOUT contact manifold reduction
  969. // Create collector
  970. class NonReductionCollideShapeCollector : public CollideShapeCollector
  971. {
  972. public:
  973. NonReductionCollideShapeCollector(PhysicsSystem *inSystem, ContactAllocator &ioContactAllocator, Body *inBody1, Body *inBody2, const ContactConstraintManager::BodyPairHandle &inPairHandle) :
  974. mSystem(inSystem),
  975. mContactAllocator(ioContactAllocator),
  976. mBody1(inBody1),
  977. mBody2(inBody2),
  978. mBodyPairHandle(inPairHandle)
  979. {
  980. }
  981. virtual void AddHit(const CollideShapeResult &inResult) override
  982. {
  983. // The first body should be the one with the highest motion type
  984. JPH_ASSERT(mBody1->GetMotionType() >= mBody2->GetMotionType());
  985. JPH_ASSERT(!ShouldEarlyOut());
  986. // Test if we want to accept this hit
  987. if (mValidateBodyPair)
  988. {
  989. switch (mSystem->mContactManager.ValidateContactPoint(*mBody1, *mBody2, mBody1->GetCenterOfMassPosition(), inResult))
  990. {
  991. case ValidateResult::AcceptContact:
  992. // We're just accepting this one, nothing to do
  993. break;
  994. case ValidateResult::AcceptAllContactsForThisBodyPair:
  995. // Accept and stop calling the validate callback
  996. mValidateBodyPair = false;
  997. break;
  998. case ValidateResult::RejectContact:
  999. // Skip this contact
  1000. return;
  1001. case ValidateResult::RejectAllContactsForThisBodyPair:
  1002. // Skip this and early out
  1003. ForceEarlyOut();
  1004. return;
  1005. }
  1006. }
  1007. // Determine contact points
  1008. ContactManifold manifold;
  1009. manifold.mBaseOffset = mBody1->GetCenterOfMassPosition();
  1010. const PhysicsSettings &settings = mSystem->mPhysicsSettings;
  1011. ManifoldBetweenTwoFaces(inResult.mContactPointOn1, inResult.mContactPointOn2, inResult.mPenetrationAxis, settings.mSpeculativeContactDistance + settings.mManifoldTolerance, inResult.mShape1Face, inResult.mShape2Face, manifold.mRelativeContactPointsOn1, manifold.mRelativeContactPointsOn2 JPH_IF_DEBUG_RENDERER(, manifold.mBaseOffset));
  1012. // Calculate normal
  1013. manifold.mWorldSpaceNormal = inResult.mPenetrationAxis.Normalized();
  1014. // Store penetration depth
  1015. manifold.mPenetrationDepth = inResult.mPenetrationDepth;
  1016. // Prune if we have more than 4 points
  1017. if (manifold.mRelativeContactPointsOn1.size() > 4)
  1018. PruneContactPoints(manifold.mWorldSpaceNormal, manifold.mRelativeContactPointsOn1, manifold.mRelativeContactPointsOn2 JPH_IF_DEBUG_RENDERER(, manifold.mBaseOffset));
  1019. // Set other properties
  1020. manifold.mSubShapeID1 = inResult.mSubShapeID1;
  1021. manifold.mSubShapeID2 = inResult.mSubShapeID2;
  1022. // Actually add the contact points to the manager
  1023. mConstraintCreated |= mSystem->mContactManager.AddContactConstraint(mContactAllocator, mBodyPairHandle, *mBody1, *mBody2, manifold);
  1024. }
  1025. PhysicsSystem * mSystem;
  1026. ContactAllocator & mContactAllocator;
  1027. Body * mBody1;
  1028. Body * mBody2;
  1029. ContactConstraintManager::BodyPairHandle mBodyPairHandle;
  1030. bool mValidateBodyPair = true;
  1031. bool mConstraintCreated = false;
  1032. };
  1033. NonReductionCollideShapeCollector collector(this, ioContactAllocator, body1, body2, body_pair_handle);
  1034. // Perform collision detection between the two shapes
  1035. mSimCollideBodyVsBody(*body1, *body2, transform1, transform2, settings, collector, shape_filter);
  1036. constraint_created = collector.mConstraintCreated;
  1037. }
  1038. }
  1039. // If a contact constraint was created, we need to do some extra work
  1040. if (constraint_created)
  1041. {
  1042. // Wake up sleeping bodies
  1043. BodyID body_ids[2];
  1044. int num_bodies = 0;
  1045. if (body1->IsDynamic() && !body1->IsActive())
  1046. body_ids[num_bodies++] = body1->GetID();
  1047. if (body2->IsDynamic() && !body2->IsActive())
  1048. body_ids[num_bodies++] = body2->GetID();
  1049. if (num_bodies > 0)
  1050. mBodyManager.ActivateBodies(body_ids, num_bodies);
  1051. // Link the two bodies
  1052. mIslandBuilder.LinkBodies(body1->GetIndexInActiveBodiesInternal(), body2->GetIndexInActiveBodiesInternal());
  1053. }
  1054. }
  1055. void PhysicsSystem::JobFinalizeIslands(PhysicsUpdateContext *ioContext)
  1056. {
  1057. #ifdef JPH_ENABLE_ASSERTS
  1058. // We only touch island data
  1059. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::None);
  1060. #endif
  1061. // Finish collecting the islands, at this point the active body list doesn't change so it's safe to access
  1062. mIslandBuilder.Finalize(mBodyManager.GetActiveBodiesUnsafe(EBodyType::RigidBody), mBodyManager.GetNumActiveBodies(EBodyType::RigidBody), mContactManager.GetNumConstraints(), ioContext->mTempAllocator);
  1063. // Prepare the large island splitter
  1064. if (mPhysicsSettings.mUseLargeIslandSplitter)
  1065. mLargeIslandSplitter.Prepare(mIslandBuilder, mBodyManager.GetNumActiveBodies(EBodyType::RigidBody), ioContext->mTempAllocator);
  1066. }
  1067. void PhysicsSystem::JobBodySetIslandIndex()
  1068. {
  1069. #ifdef JPH_ENABLE_ASSERTS
  1070. // We only touch island data
  1071. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::None);
  1072. #endif
  1073. // Loop through the result and tag all bodies with an island index
  1074. for (uint32 island_idx = 0, n = mIslandBuilder.GetNumIslands(); island_idx < n; ++island_idx)
  1075. {
  1076. BodyID *body_start, *body_end;
  1077. mIslandBuilder.GetBodiesInIsland(island_idx, body_start, body_end);
  1078. for (const BodyID *body = body_start; body < body_end; ++body)
  1079. mBodyManager.GetBody(*body).GetMotionProperties()->SetIslandIndexInternal(island_idx);
  1080. }
  1081. }
  1082. JPH_SUPPRESS_WARNING_PUSH
  1083. JPH_CLANG_SUPPRESS_WARNING("-Wundefined-func-template") // ConstraintManager::sWarmStartVelocityConstraints / ContactConstraintManager::WarmStartVelocityConstraints is instantiated in the cpp file
  1084. void PhysicsSystem::JobSolveVelocityConstraints(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  1085. {
  1086. #ifdef JPH_ENABLE_ASSERTS
  1087. // We update velocities and need to read positions to do so
  1088. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::Read);
  1089. #endif
  1090. float delta_time = ioContext->mStepDeltaTime;
  1091. Constraint **active_constraints = ioContext->mActiveConstraints;
  1092. // Only the first step to correct for the delta time difference in the previous update
  1093. float warm_start_impulse_ratio = ioStep->mIsFirst? ioContext->mWarmStartImpulseRatio : 1.0f;
  1094. bool check_islands = true, check_split_islands = mPhysicsSettings.mUseLargeIslandSplitter;
  1095. for (;;)
  1096. {
  1097. // First try to get work from large islands
  1098. if (check_split_islands)
  1099. {
  1100. bool first_iteration;
  1101. uint split_island_index;
  1102. uint32 *constraints_begin, *constraints_end, *contacts_begin, *contacts_end;
  1103. switch (mLargeIslandSplitter.FetchNextBatch(split_island_index, constraints_begin, constraints_end, contacts_begin, contacts_end, first_iteration))
  1104. {
  1105. case LargeIslandSplitter::EStatus::BatchRetrieved:
  1106. {
  1107. if (first_iteration)
  1108. {
  1109. // Iteration 0 is used to warm start the batch (we added 1 to the number of iterations in LargeIslandSplitter::SplitIsland)
  1110. DummyCalculateSolverSteps dummy;
  1111. ConstraintManager::sWarmStartVelocityConstraints(active_constraints, constraints_begin, constraints_end, warm_start_impulse_ratio, dummy);
  1112. mContactManager.WarmStartVelocityConstraints(contacts_begin, contacts_end, warm_start_impulse_ratio, dummy);
  1113. }
  1114. else
  1115. {
  1116. // Solve velocity constraints
  1117. ConstraintManager::sSolveVelocityConstraints(active_constraints, constraints_begin, constraints_end, delta_time);
  1118. mContactManager.SolveVelocityConstraints(contacts_begin, contacts_end);
  1119. }
  1120. // Mark the batch as processed
  1121. bool last_iteration, final_batch;
  1122. mLargeIslandSplitter.MarkBatchProcessed(split_island_index, constraints_begin, constraints_end, contacts_begin, contacts_end, last_iteration, final_batch);
  1123. // Save back the lambdas in the contact cache for the warm start of the next physics update
  1124. if (last_iteration)
  1125. mContactManager.StoreAppliedImpulses(contacts_begin, contacts_end);
  1126. // We processed work, loop again
  1127. continue;
  1128. }
  1129. case LargeIslandSplitter::EStatus::WaitingForBatch:
  1130. break;
  1131. case LargeIslandSplitter::EStatus::AllBatchesDone:
  1132. check_split_islands = false;
  1133. break;
  1134. }
  1135. }
  1136. // If that didn't succeed try to process an island
  1137. if (check_islands)
  1138. {
  1139. // Next island
  1140. uint32 island_idx = ioStep->mSolveVelocityConstraintsNextIsland++;
  1141. if (island_idx >= mIslandBuilder.GetNumIslands())
  1142. {
  1143. // We processed all islands, stop checking islands
  1144. check_islands = false;
  1145. continue;
  1146. }
  1147. JPH_PROFILE("Island");
  1148. // Get iterators for this island
  1149. uint32 *constraints_begin, *constraints_end, *contacts_begin, *contacts_end;
  1150. bool has_constraints = mIslandBuilder.GetConstraintsInIsland(island_idx, constraints_begin, constraints_end);
  1151. bool has_contacts = mIslandBuilder.GetContactsInIsland(island_idx, contacts_begin, contacts_end);
  1152. // If we don't have any contacts or constraints, we know that none of the following islands have any contacts or constraints
  1153. // (because they're sorted by most constraints first). This means we're done.
  1154. if (!has_contacts && !has_constraints)
  1155. {
  1156. #ifdef JPH_ENABLE_ASSERTS
  1157. // Validate our assumption that the next islands don't have any constraints or contacts
  1158. for (; island_idx < mIslandBuilder.GetNumIslands(); ++island_idx)
  1159. {
  1160. JPH_ASSERT(!mIslandBuilder.GetConstraintsInIsland(island_idx, constraints_begin, constraints_end));
  1161. JPH_ASSERT(!mIslandBuilder.GetContactsInIsland(island_idx, contacts_begin, contacts_end));
  1162. }
  1163. #endif // JPH_ENABLE_ASSERTS
  1164. check_islands = false;
  1165. continue;
  1166. }
  1167. // Sorting is costly but needed for a deterministic simulation, allow the user to turn this off
  1168. if (mPhysicsSettings.mDeterministicSimulation)
  1169. {
  1170. // Sort constraints to give a deterministic simulation
  1171. ConstraintManager::sSortConstraints(active_constraints, constraints_begin, constraints_end);
  1172. // Sort contacts to give a deterministic simulation
  1173. mContactManager.SortContacts(contacts_begin, contacts_end);
  1174. }
  1175. // Split up large islands
  1176. CalculateSolverSteps steps_calculator(mPhysicsSettings);
  1177. if (mPhysicsSettings.mUseLargeIslandSplitter
  1178. && mLargeIslandSplitter.SplitIsland(island_idx, mIslandBuilder, mBodyManager, mContactManager, active_constraints, steps_calculator))
  1179. continue; // Loop again to try to fetch the newly split island
  1180. // We didn't create a split, just run the solver now for this entire island. Begin by warm starting.
  1181. ConstraintManager::sWarmStartVelocityConstraints(active_constraints, constraints_begin, constraints_end, warm_start_impulse_ratio, steps_calculator);
  1182. mContactManager.WarmStartVelocityConstraints(contacts_begin, contacts_end, warm_start_impulse_ratio, steps_calculator);
  1183. steps_calculator.Finalize();
  1184. // Store the number of position steps for later
  1185. mIslandBuilder.SetNumPositionSteps(island_idx, steps_calculator.GetNumPositionSteps());
  1186. // Solve velocity constraints
  1187. for (uint velocity_step = 0; velocity_step < steps_calculator.GetNumVelocitySteps(); ++velocity_step)
  1188. {
  1189. bool applied_impulse = ConstraintManager::sSolveVelocityConstraints(active_constraints, constraints_begin, constraints_end, delta_time);
  1190. applied_impulse |= mContactManager.SolveVelocityConstraints(contacts_begin, contacts_end);
  1191. if (!applied_impulse)
  1192. break;
  1193. }
  1194. // Save back the lambdas in the contact cache for the warm start of the next physics update
  1195. mContactManager.StoreAppliedImpulses(contacts_begin, contacts_end);
  1196. // We processed work, loop again
  1197. continue;
  1198. }
  1199. if (check_islands)
  1200. {
  1201. // If there are islands, we don't need to wait and can pick up new work
  1202. continue;
  1203. }
  1204. else if (check_split_islands)
  1205. {
  1206. // If there are split islands, but we didn't do any work, give up a time slice
  1207. std::this_thread::yield();
  1208. }
  1209. else
  1210. {
  1211. // No more work
  1212. break;
  1213. }
  1214. }
  1215. }
  1216. JPH_SUPPRESS_WARNING_POP
  1217. void PhysicsSystem::JobPreIntegrateVelocity(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  1218. {
  1219. // Reserve enough space for all bodies that may need a cast
  1220. TempAllocator *temp_allocator = ioContext->mTempAllocator;
  1221. JPH_ASSERT(ioStep->mCCDBodies == nullptr);
  1222. ioStep->mCCDBodiesCapacity = mBodyManager.GetNumActiveCCDBodies();
  1223. ioStep->mCCDBodies = (CCDBody *)temp_allocator->Allocate(ioStep->mCCDBodiesCapacity * sizeof(CCDBody));
  1224. // Initialize the mapping table between active body and CCD body
  1225. JPH_ASSERT(ioStep->mActiveBodyToCCDBody == nullptr);
  1226. ioStep->mNumActiveBodyToCCDBody = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody);
  1227. ioStep->mActiveBodyToCCDBody = (int *)temp_allocator->Allocate(ioStep->mNumActiveBodyToCCDBody * sizeof(int));
  1228. // Prepare the split island builder for solving the position constraints
  1229. mLargeIslandSplitter.PrepareForSolvePositions();
  1230. }
  1231. void PhysicsSystem::JobIntegrateVelocity(const PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  1232. {
  1233. #ifdef JPH_ENABLE_ASSERTS
  1234. // We update positions and need velocity to do so, we also clamp velocities so need to write to them
  1235. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::ReadWrite);
  1236. #endif
  1237. float delta_time = ioContext->mStepDeltaTime;
  1238. const BodyID *active_bodies = mBodyManager.GetActiveBodiesUnsafe(EBodyType::RigidBody);
  1239. uint32 num_active_bodies = mBodyManager.GetNumActiveBodies(EBodyType::RigidBody);
  1240. uint32 num_active_bodies_after_find_collisions = ioStep->mActiveBodyReadIdx;
  1241. // We can move bodies that are not part of an island. In this case we need to notify the broadphase of the movement.
  1242. static constexpr int cBodiesBatch = 64;
  1243. BodyID *bodies_to_update_bounds = (BodyID *)JPH_STACK_ALLOC(cBodiesBatch * sizeof(BodyID));
  1244. int num_bodies_to_update_bounds = 0;
  1245. for (;;)
  1246. {
  1247. // Atomically fetch a batch of bodies
  1248. uint32 active_body_idx = ioStep->mIntegrateVelocityReadIdx.fetch_add(cIntegrateVelocityBatchSize);
  1249. if (active_body_idx >= num_active_bodies)
  1250. break;
  1251. // Calculate the end of the batch
  1252. uint32 active_body_idx_end = min(num_active_bodies, active_body_idx + cIntegrateVelocityBatchSize);
  1253. // Process the batch
  1254. while (active_body_idx < active_body_idx_end)
  1255. {
  1256. // Update the positions using an Symplectic Euler step (which integrates using the updated velocity v1' rather
  1257. // than the original velocity v1):
  1258. // x1' = x1 + h * v1'
  1259. // At this point the active bodies list does not change, so it is safe to access the array.
  1260. BodyID body_id = active_bodies[active_body_idx];
  1261. Body &body = mBodyManager.GetBody(body_id);
  1262. MotionProperties *mp = body.GetMotionProperties();
  1263. JPH_DET_LOG("JobIntegrateVelocity: id: " << body_id << " v: " << body.GetLinearVelocity() << " w: " << body.GetAngularVelocity());
  1264. // Clamp velocities (not for kinematic bodies)
  1265. if (body.IsDynamic())
  1266. {
  1267. mp->ClampLinearVelocity();
  1268. mp->ClampAngularVelocity();
  1269. }
  1270. // Update the rotation of the body according to the angular velocity
  1271. // For motion type discrete we need to do this anyway, for motion type linear cast we have multiple choices
  1272. // 1. Rotate the body first and then sweep
  1273. // 2. First sweep and then rotate the body at the end
  1274. // 3. Pick some in between rotation (e.g. half way), then sweep and finally rotate the remainder
  1275. // (1) has some clear advantages as when a long thin body hits a surface away from the center of mass, this will result in a large angular velocity and a limited reduction in linear velocity.
  1276. // When simulation the rotation first before doing the translation, the body will be able to rotate away from the contact point allowing the center of mass to approach the surface. When using
  1277. // approach (2) in this case what will happen is that we will immediately detect the same collision again (the body has not rotated and the body was already colliding at the end of the previous
  1278. // time step) resulting in a lot of stolen time and the body appearing to be frozen in an unnatural pose (like it is glued at an angle to the surface). (2) obviously has some negative side effects
  1279. // too as simulating the rotation first may cause it to tunnel through a small object that the linear cast might have otherwise detected. In any case a linear cast is not good for detecting
  1280. // tunneling due to angular rotation, so we don't care about that too much (you'd need a full cast to take angular effects into account).
  1281. body.AddRotationStep(body.GetAngularVelocity() * delta_time);
  1282. // Get delta position
  1283. Vec3 delta_pos = body.GetLinearVelocity() * delta_time;
  1284. // If the position should be updated (or if it is delayed because of CCD)
  1285. bool update_position = true;
  1286. switch (mp->GetMotionQuality())
  1287. {
  1288. case EMotionQuality::Discrete:
  1289. // No additional collision checking to be done
  1290. break;
  1291. case EMotionQuality::LinearCast:
  1292. if (body.IsDynamic() // Kinematic bodies cannot be stopped
  1293. && !body.IsSensor()) // We don't support CCD sensors
  1294. {
  1295. // Determine inner radius (the smallest sphere that fits into the shape)
  1296. float inner_radius = body.GetShape()->GetInnerRadius();
  1297. JPH_ASSERT(inner_radius > 0.0f, "The shape has no inner radius, this makes the shape unsuitable for the linear cast motion quality as we cannot move it without risking tunneling.");
  1298. // Measure translation in this step and check if it above the threshold to perform a linear cast
  1299. float linear_cast_threshold_sq = Square(mPhysicsSettings.mLinearCastThreshold * inner_radius);
  1300. if (delta_pos.LengthSq() > linear_cast_threshold_sq)
  1301. {
  1302. // This body needs a cast
  1303. uint32 ccd_body_idx = ioStep->mNumCCDBodies++;
  1304. JPH_ASSERT(active_body_idx < ioStep->mNumActiveBodyToCCDBody);
  1305. ioStep->mActiveBodyToCCDBody[active_body_idx] = ccd_body_idx;
  1306. new (&ioStep->mCCDBodies[ccd_body_idx]) CCDBody(body_id, delta_pos, linear_cast_threshold_sq, min(mPhysicsSettings.mPenetrationSlop, mPhysicsSettings.mLinearCastMaxPenetration * inner_radius));
  1307. update_position = false;
  1308. }
  1309. }
  1310. break;
  1311. }
  1312. if (update_position)
  1313. {
  1314. // Move the body now
  1315. body.AddPositionStep(delta_pos);
  1316. // If the body was activated due to an earlier CCD step it will have an index in the active
  1317. // body list that it higher than the highest one we processed during FindCollisions
  1318. // which means it hasn't been assigned an island and will not be updated by an island
  1319. // this means that we need to update its bounds manually
  1320. if (mp->GetIndexInActiveBodiesInternal() >= num_active_bodies_after_find_collisions)
  1321. {
  1322. body.CalculateWorldSpaceBoundsInternal();
  1323. bodies_to_update_bounds[num_bodies_to_update_bounds++] = body.GetID();
  1324. if (num_bodies_to_update_bounds == cBodiesBatch)
  1325. {
  1326. // Buffer full, flush now
  1327. mBroadPhase->NotifyBodiesAABBChanged(bodies_to_update_bounds, num_bodies_to_update_bounds, false);
  1328. num_bodies_to_update_bounds = 0;
  1329. }
  1330. }
  1331. // We did not create a CCD body
  1332. ioStep->mActiveBodyToCCDBody[active_body_idx] = -1;
  1333. }
  1334. active_body_idx++;
  1335. }
  1336. }
  1337. // Notify change bounds on requested bodies
  1338. if (num_bodies_to_update_bounds > 0)
  1339. mBroadPhase->NotifyBodiesAABBChanged(bodies_to_update_bounds, num_bodies_to_update_bounds, false);
  1340. }
  1341. void PhysicsSystem::JobPostIntegrateVelocity(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep) const
  1342. {
  1343. // Validate that our reservations were correct
  1344. JPH_ASSERT(ioStep->mNumCCDBodies <= mBodyManager.GetNumActiveCCDBodies());
  1345. if (ioStep->mNumCCDBodies == 0)
  1346. {
  1347. // No continuous collision detection jobs -> kick the next job ourselves
  1348. ioStep->mContactRemovedCallbacks.RemoveDependency();
  1349. }
  1350. else
  1351. {
  1352. // Run the continuous collision detection jobs
  1353. int num_continuous_collision_jobs = min(int(ioStep->mNumCCDBodies + cNumCCDBodiesPerJob - 1) / cNumCCDBodiesPerJob, ioContext->GetMaxConcurrency());
  1354. ioStep->mResolveCCDContacts.AddDependency(num_continuous_collision_jobs);
  1355. ioStep->mContactRemovedCallbacks.AddDependency(num_continuous_collision_jobs - 1); // Already had 1 dependency
  1356. for (int i = 0; i < num_continuous_collision_jobs; ++i)
  1357. {
  1358. JobHandle job = ioContext->mJobSystem->CreateJob("FindCCDContacts", cColorFindCCDContacts, [ioContext, ioStep]()
  1359. {
  1360. ioContext->mPhysicsSystem->JobFindCCDContacts(ioContext, ioStep);
  1361. ioStep->mResolveCCDContacts.RemoveDependency();
  1362. ioStep->mContactRemovedCallbacks.RemoveDependency();
  1363. });
  1364. ioContext->mBarrier->AddJob(job);
  1365. }
  1366. }
  1367. }
  1368. // Helper function to calculate the motion of a body during this CCD step
  1369. inline static Vec3 sCalculateBodyMotion(const Body &inBody, float inDeltaTime)
  1370. {
  1371. // If the body is linear casting, the body has not yet moved so we need to calculate its motion
  1372. if (inBody.IsDynamic() && inBody.GetMotionProperties()->GetMotionQuality() == EMotionQuality::LinearCast)
  1373. return inDeltaTime * inBody.GetLinearVelocity();
  1374. // Body has already moved, so we don't need to correct for anything
  1375. return Vec3::sZero();
  1376. }
  1377. // Helper function that finds the CCD body corresponding to a body (if it exists)
  1378. inline static PhysicsUpdateContext::Step::CCDBody *sGetCCDBody(const Body &inBody, PhysicsUpdateContext::Step *inStep)
  1379. {
  1380. // Only rigid bodies can have a CCD body
  1381. if (!inBody.IsRigidBody())
  1382. return nullptr;
  1383. // If the body has no motion properties it cannot have a CCD body
  1384. const MotionProperties *motion_properties = inBody.GetMotionPropertiesUnchecked();
  1385. if (motion_properties == nullptr)
  1386. return nullptr;
  1387. // If it is not active it cannot have a CCD body
  1388. uint32 active_index = motion_properties->GetIndexInActiveBodiesInternal();
  1389. if (active_index == Body::cInactiveIndex)
  1390. return nullptr;
  1391. // Check if the active body has a corresponding CCD body
  1392. JPH_ASSERT(active_index < inStep->mNumActiveBodyToCCDBody); // Ensure that the body has a mapping to CCD body
  1393. int ccd_index = inStep->mActiveBodyToCCDBody[active_index];
  1394. if (ccd_index < 0)
  1395. return nullptr;
  1396. PhysicsUpdateContext::Step::CCDBody *ccd_body = &inStep->mCCDBodies[ccd_index];
  1397. JPH_ASSERT(ccd_body->mBodyID1 == inBody.GetID(), "We found the wrong CCD body!");
  1398. return ccd_body;
  1399. }
  1400. void PhysicsSystem::JobFindCCDContacts(const PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  1401. {
  1402. #ifdef JPH_ENABLE_ASSERTS
  1403. // We only read positions, but the validate callback may read body positions and velocities
  1404. BodyAccess::Grant grant(BodyAccess::EAccess::Read, BodyAccess::EAccess::Read);
  1405. #endif
  1406. // Allocation context for allocating new contact points
  1407. ContactAllocator contact_allocator(mContactManager.GetContactAllocator());
  1408. // Settings
  1409. ShapeCastSettings settings;
  1410. settings.mUseShrunkenShapeAndConvexRadius = true;
  1411. settings.mBackFaceModeTriangles = EBackFaceMode::IgnoreBackFaces;
  1412. settings.mBackFaceModeConvex = EBackFaceMode::IgnoreBackFaces;
  1413. settings.mReturnDeepestPoint = true;
  1414. settings.mCollectFacesMode = ECollectFacesMode::CollectFaces;
  1415. settings.mActiveEdgeMode = mPhysicsSettings.mCheckActiveEdges? EActiveEdgeMode::CollideOnlyWithActive : EActiveEdgeMode::CollideWithAll;
  1416. for (;;)
  1417. {
  1418. // Fetch the next body to cast
  1419. uint32 idx = ioStep->mNextCCDBody++;
  1420. if (idx >= ioStep->mNumCCDBodies)
  1421. break;
  1422. CCDBody &ccd_body = ioStep->mCCDBodies[idx];
  1423. const Body &body = mBodyManager.GetBody(ccd_body.mBodyID1);
  1424. // Filter out layers
  1425. DefaultBroadPhaseLayerFilter broadphase_layer_filter = GetDefaultBroadPhaseLayerFilter(body.GetObjectLayer());
  1426. DefaultObjectLayerFilter object_layer_filter = GetDefaultLayerFilter(body.GetObjectLayer());
  1427. #ifdef JPH_DEBUG_RENDERER
  1428. // Draw start and end shape of cast
  1429. if (sDrawMotionQualityLinearCast)
  1430. {
  1431. RMat44 com = body.GetCenterOfMassTransform();
  1432. body.GetShape()->Draw(DebugRenderer::sInstance, com, Vec3::sOne(), Color::sGreen, false, true);
  1433. DebugRenderer::sInstance->DrawArrow(com.GetTranslation(), com.GetTranslation() + ccd_body.mDeltaPosition, Color::sGreen, 0.1f);
  1434. body.GetShape()->Draw(DebugRenderer::sInstance, com.PostTranslated(ccd_body.mDeltaPosition), Vec3::sOne(), Color::sRed, false, true);
  1435. }
  1436. #endif // JPH_DEBUG_RENDERER
  1437. // Create a collector that will find the maximum distance allowed to travel while not penetrating more than 'max penetration'
  1438. class CCDNarrowPhaseCollector : public CastShapeCollector
  1439. {
  1440. public:
  1441. CCDNarrowPhaseCollector(const BodyManager &inBodyManager, ContactConstraintManager &inContactConstraintManager, CCDBody &inCCDBody, ShapeCastResult &inResult, float inDeltaTime) :
  1442. mBodyManager(inBodyManager),
  1443. mContactConstraintManager(inContactConstraintManager),
  1444. mCCDBody(inCCDBody),
  1445. mResult(inResult),
  1446. mDeltaTime(inDeltaTime)
  1447. {
  1448. }
  1449. virtual void AddHit(const ShapeCastResult &inResult) override
  1450. {
  1451. JPH_PROFILE_FUNCTION();
  1452. // Check if this is a possible earlier hit than the one before
  1453. float fraction = inResult.mFraction;
  1454. if (fraction < mCCDBody.mFractionPlusSlop)
  1455. {
  1456. // Normalize normal
  1457. Vec3 normal = inResult.mPenetrationAxis.Normalized();
  1458. // Calculate how much we can add to the fraction to penetrate the collision point by mMaxPenetration.
  1459. // Note that the normal is pointing towards body 2!
  1460. // Let the extra distance that we can travel along delta_pos be 'dist': mMaxPenetration / dist = cos(angle between normal and delta_pos) = normal . delta_pos / |delta_pos|
  1461. // <=> dist = mMaxPenetration * |delta_pos| / normal . delta_pos
  1462. // Converting to a faction: delta_fraction = dist / |delta_pos| = mLinearCastTreshold / normal . delta_pos
  1463. float denominator = normal.Dot(mCCDBody.mDeltaPosition);
  1464. if (denominator > mCCDBody.mMaxPenetration) // Avoid dividing by zero, if extra hit fraction > 1 there's also no point in continuing
  1465. {
  1466. float fraction_plus_slop = fraction + mCCDBody.mMaxPenetration / denominator;
  1467. if (fraction_plus_slop < mCCDBody.mFractionPlusSlop)
  1468. {
  1469. const Body &body2 = mBodyManager.GetBody(inResult.mBodyID2);
  1470. // Check if we've already accepted all hits from this body
  1471. if (mValidateBodyPair)
  1472. {
  1473. // Validate the contact result
  1474. const Body &body1 = mBodyManager.GetBody(mCCDBody.mBodyID1);
  1475. ValidateResult validate_result = mContactConstraintManager.ValidateContactPoint(body1, body2, body1.GetCenterOfMassPosition(), inResult); // Note that the center of mass of body 1 is the start of the sweep and is used as base offset below
  1476. switch (validate_result)
  1477. {
  1478. case ValidateResult::AcceptContact:
  1479. // Just continue
  1480. break;
  1481. case ValidateResult::AcceptAllContactsForThisBodyPair:
  1482. // Accept this and all following contacts from this body
  1483. mValidateBodyPair = false;
  1484. break;
  1485. case ValidateResult::RejectContact:
  1486. return;
  1487. case ValidateResult::RejectAllContactsForThisBodyPair:
  1488. // Reject this and all following contacts from this body
  1489. mRejectAll = true;
  1490. ForceEarlyOut();
  1491. return;
  1492. }
  1493. }
  1494. // This is the earliest hit so far, store it
  1495. mCCDBody.mContactNormal = normal;
  1496. mCCDBody.mBodyID2 = inResult.mBodyID2;
  1497. mCCDBody.mSubShapeID2 = inResult.mSubShapeID2;
  1498. mCCDBody.mFraction = fraction;
  1499. mCCDBody.mFractionPlusSlop = fraction_plus_slop;
  1500. mResult = inResult;
  1501. // Result was assuming body 2 is not moving, but it is, so we need to correct for it
  1502. Vec3 movement2 = fraction * sCalculateBodyMotion(body2, mDeltaTime);
  1503. if (!movement2.IsNearZero())
  1504. {
  1505. mResult.mContactPointOn1 += movement2;
  1506. mResult.mContactPointOn2 += movement2;
  1507. for (Vec3 &v : mResult.mShape1Face)
  1508. v += movement2;
  1509. for (Vec3 &v : mResult.mShape2Face)
  1510. v += movement2;
  1511. }
  1512. // Update early out fraction
  1513. UpdateEarlyOutFraction(fraction_plus_slop);
  1514. }
  1515. }
  1516. }
  1517. }
  1518. bool mValidateBodyPair; ///< If we still have to call the ValidateContactPoint for this body pair
  1519. bool mRejectAll; ///< Reject all further contacts between this body pair
  1520. private:
  1521. const BodyManager & mBodyManager;
  1522. ContactConstraintManager & mContactConstraintManager;
  1523. CCDBody & mCCDBody;
  1524. ShapeCastResult & mResult;
  1525. float mDeltaTime;
  1526. BodyID mAcceptedBodyID;
  1527. };
  1528. // Narrowphase collector
  1529. ShapeCastResult cast_shape_result;
  1530. CCDNarrowPhaseCollector np_collector(mBodyManager, mContactManager, ccd_body, cast_shape_result, ioContext->mStepDeltaTime);
  1531. // This collector wraps the narrowphase collector and collects the closest hit
  1532. class CCDBroadPhaseCollector : public CastShapeBodyCollector
  1533. {
  1534. public:
  1535. CCDBroadPhaseCollector(const CCDBody &inCCDBody, const Body &inBody1, const RShapeCast &inShapeCast, ShapeCastSettings &inShapeCastSettings, SimShapeFilterWrapper &inShapeFilter, CCDNarrowPhaseCollector &ioCollector, const BodyManager &inBodyManager, PhysicsUpdateContext::Step *inStep, float inDeltaTime) :
  1536. mCCDBody(inCCDBody),
  1537. mBody1(inBody1),
  1538. mBody1Extent(inShapeCast.mShapeWorldBounds.GetExtent()),
  1539. mShapeCast(inShapeCast),
  1540. mShapeCastSettings(inShapeCastSettings),
  1541. mShapeFilter(inShapeFilter),
  1542. mCollector(ioCollector),
  1543. mBodyManager(inBodyManager),
  1544. mStep(inStep),
  1545. mDeltaTime(inDeltaTime)
  1546. {
  1547. }
  1548. virtual void AddHit(const BroadPhaseCastResult &inResult) override
  1549. {
  1550. JPH_PROFILE_FUNCTION();
  1551. JPH_ASSERT(inResult.mFraction <= GetEarlyOutFraction(), "This hit should not have been passed on to the collector");
  1552. // Test if we're colliding with ourselves
  1553. if (mBody1.GetID() == inResult.mBodyID)
  1554. return;
  1555. // Avoid treating duplicates, if both bodies are doing CCD then only consider collision if body ID < other body ID
  1556. const Body &body2 = mBodyManager.GetBody(inResult.mBodyID);
  1557. const CCDBody *ccd_body2 = sGetCCDBody(body2, mStep);
  1558. if (ccd_body2 != nullptr && mCCDBody.mBodyID1 > ccd_body2->mBodyID1)
  1559. return;
  1560. // Test group filter
  1561. if (!mBody1.GetCollisionGroup().CanCollide(body2.GetCollisionGroup()))
  1562. return;
  1563. // TODO: For now we ignore sensors
  1564. if (body2.IsSensor())
  1565. return;
  1566. // Get relative movement of these two bodies
  1567. Vec3 direction = mShapeCast.mDirection - sCalculateBodyMotion(body2, mDeltaTime);
  1568. // Test if the remaining movement is less than our movement threshold
  1569. if (direction.LengthSq() < mCCDBody.mLinearCastThresholdSq)
  1570. return;
  1571. // Get the bounds of 2, widen it by the extent of 1 and test a ray to see if it hits earlier than the current early out fraction
  1572. AABox bounds = body2.GetWorldSpaceBounds();
  1573. bounds.mMin -= mBody1Extent;
  1574. bounds.mMax += mBody1Extent;
  1575. float hit_fraction = RayAABox(Vec3(mShapeCast.mCenterOfMassStart.GetTranslation()), RayInvDirection(direction), bounds.mMin, bounds.mMax);
  1576. if (hit_fraction > GetPositiveEarlyOutFraction()) // If early out fraction <= 0, we have the possibility of finding a deeper hit so we need to clamp the early out fraction
  1577. return;
  1578. // Reset collector (this is a new body pair)
  1579. mCollector.ResetEarlyOutFraction(GetEarlyOutFraction());
  1580. mCollector.mValidateBodyPair = true;
  1581. mCollector.mRejectAll = false;
  1582. // Set body ID on shape filter
  1583. mShapeFilter.SetBody2(&body2);
  1584. // Provide direction as hint for the active edges algorithm
  1585. mShapeCastSettings.mActiveEdgeMovementDirection = direction;
  1586. // Do narrow phase collision check
  1587. RShapeCast relative_cast(mShapeCast.mShape, mShapeCast.mScale, mShapeCast.mCenterOfMassStart, direction, mShapeCast.mShapeWorldBounds);
  1588. body2.GetTransformedShape().CastShape(relative_cast, mShapeCastSettings, mShapeCast.mCenterOfMassStart.GetTranslation(), mCollector, mShapeFilter);
  1589. // Update early out fraction based on narrow phase collector
  1590. if (!mCollector.mRejectAll)
  1591. UpdateEarlyOutFraction(mCollector.GetEarlyOutFraction());
  1592. }
  1593. const CCDBody & mCCDBody;
  1594. const Body & mBody1;
  1595. Vec3 mBody1Extent;
  1596. RShapeCast mShapeCast;
  1597. ShapeCastSettings & mShapeCastSettings;
  1598. SimShapeFilterWrapper & mShapeFilter;
  1599. CCDNarrowPhaseCollector & mCollector;
  1600. const BodyManager & mBodyManager;
  1601. PhysicsUpdateContext::Step *mStep;
  1602. float mDeltaTime;
  1603. };
  1604. // Create shape filter
  1605. SimShapeFilterWrapperUnion shape_filter_union(mSimShapeFilter, &body);
  1606. SimShapeFilterWrapper &shape_filter = shape_filter_union.GetSimShapeFilterWrapper();
  1607. // Check if we collide with any other body. Note that we use the non-locking interface as we know the broadphase cannot be modified at this point.
  1608. RShapeCast shape_cast(body.GetShape(), Vec3::sOne(), body.GetCenterOfMassTransform(), ccd_body.mDeltaPosition);
  1609. CCDBroadPhaseCollector bp_collector(ccd_body, body, shape_cast, settings, shape_filter, np_collector, mBodyManager, ioStep, ioContext->mStepDeltaTime);
  1610. mBroadPhase->CastAABoxNoLock({ shape_cast.mShapeWorldBounds, shape_cast.mDirection }, bp_collector, broadphase_layer_filter, object_layer_filter);
  1611. // Check if there was a hit
  1612. if (ccd_body.mFractionPlusSlop < 1.0f)
  1613. {
  1614. const Body &body2 = mBodyManager.GetBody(ccd_body.mBodyID2);
  1615. // Determine contact manifold
  1616. ContactManifold manifold;
  1617. manifold.mBaseOffset = shape_cast.mCenterOfMassStart.GetTranslation();
  1618. ManifoldBetweenTwoFaces(cast_shape_result.mContactPointOn1, cast_shape_result.mContactPointOn2, cast_shape_result.mPenetrationAxis, mPhysicsSettings.mManifoldTolerance, cast_shape_result.mShape1Face, cast_shape_result.mShape2Face, manifold.mRelativeContactPointsOn1, manifold.mRelativeContactPointsOn2 JPH_IF_DEBUG_RENDERER(, manifold.mBaseOffset));
  1619. manifold.mSubShapeID1 = cast_shape_result.mSubShapeID1;
  1620. manifold.mSubShapeID2 = cast_shape_result.mSubShapeID2;
  1621. manifold.mPenetrationDepth = cast_shape_result.mPenetrationDepth;
  1622. manifold.mWorldSpaceNormal = ccd_body.mContactNormal;
  1623. // Call contact point callbacks
  1624. mContactManager.OnCCDContactAdded(contact_allocator, body, body2, manifold, ccd_body.mContactSettings);
  1625. if (ccd_body.mContactSettings.mIsSensor)
  1626. {
  1627. // If this is a sensor, we don't want to solve the contact
  1628. ccd_body.mFractionPlusSlop = 1.0f;
  1629. ccd_body.mBodyID2 = BodyID();
  1630. }
  1631. else
  1632. {
  1633. // Calculate the average position from the manifold (this will result in the same impulse applied as when we apply impulses to all contact points)
  1634. if (manifold.mRelativeContactPointsOn2.size() > 1)
  1635. {
  1636. Vec3 average_contact_point = Vec3::sZero();
  1637. for (const Vec3 &v : manifold.mRelativeContactPointsOn2)
  1638. average_contact_point += v;
  1639. average_contact_point /= (float)manifold.mRelativeContactPointsOn2.size();
  1640. ccd_body.mContactPointOn2 = manifold.mBaseOffset + average_contact_point;
  1641. }
  1642. else
  1643. ccd_body.mContactPointOn2 = manifold.mBaseOffset + cast_shape_result.mContactPointOn2;
  1644. }
  1645. }
  1646. }
  1647. // Collect information from the contact allocator and accumulate it in the step.
  1648. sFinalizeContactAllocator(*ioStep, contact_allocator);
  1649. }
  1650. void PhysicsSystem::JobResolveCCDContacts(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  1651. {
  1652. #ifdef JPH_ENABLE_ASSERTS
  1653. // Read/write body access
  1654. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::ReadWrite);
  1655. // We activate bodies that we collide with
  1656. BodyManager::GrantActiveBodiesAccess grant_active(true, false);
  1657. #endif
  1658. uint32 num_active_bodies_after_find_collisions = ioStep->mActiveBodyReadIdx;
  1659. TempAllocator *temp_allocator = ioContext->mTempAllocator;
  1660. // Check if there's anything to do
  1661. uint num_ccd_bodies = ioStep->mNumCCDBodies;
  1662. if (num_ccd_bodies > 0)
  1663. {
  1664. // Sort on fraction so that we process earliest collisions first
  1665. // This is needed to make the simulation deterministic and also to be able to stop contact processing
  1666. // between body pairs if an earlier hit was found involving the body by another CCD body
  1667. // (if it's body ID < this CCD body's body ID - see filtering logic in CCDBroadPhaseCollector)
  1668. CCDBody **sorted_ccd_bodies = (CCDBody **)temp_allocator->Allocate(num_ccd_bodies * sizeof(CCDBody *));
  1669. JPH_SCOPE_EXIT([temp_allocator, sorted_ccd_bodies, num_ccd_bodies]{ temp_allocator->Free(sorted_ccd_bodies, num_ccd_bodies * sizeof(CCDBody *)); });
  1670. {
  1671. JPH_PROFILE("Sort");
  1672. // We don't want to copy the entire struct (it's quite big), so we create a pointer array first
  1673. CCDBody *src_ccd_bodies = ioStep->mCCDBodies;
  1674. CCDBody **dst_ccd_bodies = sorted_ccd_bodies;
  1675. CCDBody **dst_ccd_bodies_end = dst_ccd_bodies + num_ccd_bodies;
  1676. while (dst_ccd_bodies < dst_ccd_bodies_end)
  1677. *(dst_ccd_bodies++) = src_ccd_bodies++;
  1678. // Which we then sort
  1679. QuickSort(sorted_ccd_bodies, sorted_ccd_bodies + num_ccd_bodies, [](const CCDBody *inBody1, const CCDBody *inBody2)
  1680. {
  1681. if (inBody1->mFractionPlusSlop != inBody2->mFractionPlusSlop)
  1682. return inBody1->mFractionPlusSlop < inBody2->mFractionPlusSlop;
  1683. return inBody1->mBodyID1 < inBody2->mBodyID1;
  1684. });
  1685. }
  1686. // We can collide with bodies that are not active, we track them here so we can activate them in one go at the end.
  1687. // This is also needed because we can't modify the active body array while we iterate it.
  1688. static constexpr int cBodiesBatch = 64;
  1689. BodyID *bodies_to_activate = (BodyID *)JPH_STACK_ALLOC(cBodiesBatch * sizeof(BodyID));
  1690. int num_bodies_to_activate = 0;
  1691. // We can move bodies that are not part of an island. In this case we need to notify the broadphase of the movement.
  1692. BodyID *bodies_to_update_bounds = (BodyID *)JPH_STACK_ALLOC(cBodiesBatch * sizeof(BodyID));
  1693. int num_bodies_to_update_bounds = 0;
  1694. for (uint i = 0; i < num_ccd_bodies; ++i)
  1695. {
  1696. const CCDBody *ccd_body = sorted_ccd_bodies[i];
  1697. Body &body1 = mBodyManager.GetBody(ccd_body->mBodyID1);
  1698. MotionProperties *body_mp = body1.GetMotionProperties();
  1699. // If there was a hit
  1700. if (!ccd_body->mBodyID2.IsInvalid())
  1701. {
  1702. Body &body2 = mBodyManager.GetBody(ccd_body->mBodyID2);
  1703. // Determine if the other body has a CCD body
  1704. CCDBody *ccd_body2 = sGetCCDBody(body2, ioStep);
  1705. if (ccd_body2 != nullptr)
  1706. {
  1707. JPH_ASSERT(ccd_body2->mBodyID2 != ccd_body->mBodyID1, "If we collided with another body, that other body should have ignored collisions with us!");
  1708. // Check if the other body found a hit that is further away
  1709. if (ccd_body2->mFraction > ccd_body->mFraction)
  1710. {
  1711. // Reset the colliding body of the other CCD body. The other body will shorten its distance traveled and will not do any collision response (we'll do that).
  1712. // This means that at this point we have triggered a contact point add/persist for our further hit by accident for the other body.
  1713. // We accept this as calling the contact point callbacks here would require persisting the manifolds up to this point and doing the callbacks single threaded.
  1714. ccd_body2->mBodyID2 = BodyID();
  1715. ccd_body2->mFractionPlusSlop = ccd_body->mFraction;
  1716. }
  1717. }
  1718. // If the other body moved less than us before hitting something, we're not colliding with it so we again have triggered contact point add/persist callbacks by accident.
  1719. // We'll just move to the collision position anyway (as that's the last position we know is good), but we won't do any collision response.
  1720. if (ccd_body2 == nullptr || ccd_body2->mFraction >= ccd_body->mFraction)
  1721. {
  1722. const ContactSettings &contact_settings = ccd_body->mContactSettings;
  1723. // Calculate contact point velocity for body 1
  1724. Vec3 r1_plus_u = Vec3(ccd_body->mContactPointOn2 - (body1.GetCenterOfMassPosition() + ccd_body->mFraction * ccd_body->mDeltaPosition));
  1725. Vec3 v1 = body1.GetPointVelocityCOM(r1_plus_u);
  1726. // Calculate inverse mass for body 1
  1727. float inv_m1 = contact_settings.mInvMassScale1 * body_mp->GetInverseMass();
  1728. if (body2.IsRigidBody())
  1729. {
  1730. // Calculate contact point velocity for body 2
  1731. Vec3 r2 = Vec3(ccd_body->mContactPointOn2 - body2.GetCenterOfMassPosition());
  1732. Vec3 v2 = body2.GetPointVelocityCOM(r2);
  1733. // Calculate relative contact velocity
  1734. Vec3 relative_velocity = v2 - v1;
  1735. float normal_velocity = relative_velocity.Dot(ccd_body->mContactNormal);
  1736. // Calculate velocity bias due to restitution
  1737. float normal_velocity_bias;
  1738. if (contact_settings.mCombinedRestitution > 0.0f && normal_velocity < -mPhysicsSettings.mMinVelocityForRestitution)
  1739. normal_velocity_bias = contact_settings.mCombinedRestitution * normal_velocity;
  1740. else
  1741. normal_velocity_bias = 0.0f;
  1742. // Get inverse mass of body 2
  1743. float inv_m2 = body2.GetMotionPropertiesUnchecked() != nullptr? contact_settings.mInvMassScale2 * body2.GetMotionPropertiesUnchecked()->GetInverseMassUnchecked() : 0.0f;
  1744. // Solve contact constraint
  1745. AxisConstraintPart contact_constraint;
  1746. contact_constraint.CalculateConstraintPropertiesWithMassOverride(body1, inv_m1, contact_settings.mInvInertiaScale1, r1_plus_u, body2, inv_m2, contact_settings.mInvInertiaScale2, r2, ccd_body->mContactNormal, normal_velocity_bias);
  1747. contact_constraint.SolveVelocityConstraintWithMassOverride(body1, inv_m1, body2, inv_m2, ccd_body->mContactNormal, -FLT_MAX, FLT_MAX);
  1748. // Apply friction
  1749. if (contact_settings.mCombinedFriction > 0.0f)
  1750. {
  1751. // Calculate friction direction by removing normal velocity from the relative velocity
  1752. Vec3 friction_direction = relative_velocity - normal_velocity * ccd_body->mContactNormal;
  1753. float friction_direction_len_sq = friction_direction.LengthSq();
  1754. if (friction_direction_len_sq > 1.0e-12f)
  1755. {
  1756. // Normalize friction direction
  1757. friction_direction /= sqrt(friction_direction_len_sq);
  1758. // Calculate max friction impulse
  1759. float max_lambda_f = contact_settings.mCombinedFriction * contact_constraint.GetTotalLambda();
  1760. AxisConstraintPart friction;
  1761. friction.CalculateConstraintPropertiesWithMassOverride(body1, inv_m1, contact_settings.mInvInertiaScale1, r1_plus_u, body2, inv_m2, contact_settings.mInvInertiaScale2, r2, friction_direction);
  1762. friction.SolveVelocityConstraintWithMassOverride(body1, inv_m1, body2, inv_m2, friction_direction, -max_lambda_f, max_lambda_f);
  1763. }
  1764. }
  1765. // Clamp velocity of body 2
  1766. if (body2.IsDynamic())
  1767. {
  1768. MotionProperties *body2_mp = body2.GetMotionProperties();
  1769. body2_mp->ClampLinearVelocity();
  1770. body2_mp->ClampAngularVelocity();
  1771. }
  1772. }
  1773. else
  1774. {
  1775. SoftBodyMotionProperties *soft_mp = static_cast<SoftBodyMotionProperties *>(body2.GetMotionProperties());
  1776. const SoftBodyShape *soft_shape = static_cast<const SoftBodyShape *>(body2.GetShape());
  1777. // Convert the sub shape ID of the soft body to a face
  1778. uint32 face_idx = soft_shape->GetFaceIndex(ccd_body->mSubShapeID2);
  1779. const SoftBodyMotionProperties::Face &face = soft_mp->GetFace(face_idx);
  1780. // Get vertices of the face
  1781. SoftBodyMotionProperties::Vertex &vtx0 = soft_mp->GetVertex(face.mVertex[0]);
  1782. SoftBodyMotionProperties::Vertex &vtx1 = soft_mp->GetVertex(face.mVertex[1]);
  1783. SoftBodyMotionProperties::Vertex &vtx2 = soft_mp->GetVertex(face.mVertex[2]);
  1784. // Inverse mass of the face
  1785. float vtx0_mass = vtx0.mInvMass > 0.0f? 1.0f / vtx0.mInvMass : 1.0e10f;
  1786. float vtx1_mass = vtx1.mInvMass > 0.0f? 1.0f / vtx1.mInvMass : 1.0e10f;
  1787. float vtx2_mass = vtx2.mInvMass > 0.0f? 1.0f / vtx2.mInvMass : 1.0e10f;
  1788. float inv_m2 = 1.0f / (vtx0_mass + vtx1_mass + vtx2_mass);
  1789. // Calculate barycentric coordinates of the contact point on the soft body's face
  1790. float u, v, w;
  1791. RMat44 inv_body2_transform = body2.GetInverseCenterOfMassTransform();
  1792. Vec3 local_contact = Vec3(inv_body2_transform * ccd_body->mContactPointOn2);
  1793. ClosestPoint::GetBaryCentricCoordinates(vtx0.mPosition - local_contact, vtx1.mPosition - local_contact, vtx2.mPosition - local_contact, u, v, w);
  1794. // Calculate contact point velocity for the face
  1795. Vec3 v2 = inv_body2_transform.Multiply3x3Transposed(u * vtx0.mVelocity + v * vtx1.mVelocity + w * vtx2.mVelocity);
  1796. float normal_velocity = (v2 - v1).Dot(ccd_body->mContactNormal);
  1797. // Calculate velocity bias due to restitution
  1798. float normal_velocity_bias;
  1799. if (contact_settings.mCombinedRestitution > 0.0f && normal_velocity < -mPhysicsSettings.mMinVelocityForRestitution)
  1800. normal_velocity_bias = contact_settings.mCombinedRestitution * normal_velocity;
  1801. else
  1802. normal_velocity_bias = 0.0f;
  1803. // Calculate resulting velocity change (the math here is similar to AxisConstraintPart but without an inertia term for body 2 as we treat it as a point mass)
  1804. Vec3 r1_plus_u_x_n = r1_plus_u.Cross(ccd_body->mContactNormal);
  1805. Vec3 invi1_r1_plus_u_x_n = contact_settings.mInvInertiaScale1 * body1.GetInverseInertia().Multiply3x3(r1_plus_u_x_n);
  1806. float jv = r1_plus_u_x_n.Dot(body_mp->GetAngularVelocity()) - normal_velocity - normal_velocity_bias;
  1807. float inv_effective_mass = inv_m1 + inv_m2 + invi1_r1_plus_u_x_n.Dot(r1_plus_u_x_n);
  1808. float lambda = jv / inv_effective_mass;
  1809. body_mp->SubLinearVelocityStep((lambda * inv_m1) * ccd_body->mContactNormal);
  1810. body_mp->SubAngularVelocityStep(lambda * invi1_r1_plus_u_x_n);
  1811. Vec3 delta_v2 = inv_body2_transform.Multiply3x3(lambda * ccd_body->mContactNormal);
  1812. vtx0.mVelocity += delta_v2 * vtx0.mInvMass;
  1813. vtx1.mVelocity += delta_v2 * vtx1.mInvMass;
  1814. vtx2.mVelocity += delta_v2 * vtx2.mInvMass;
  1815. }
  1816. // Clamp velocity of body 1
  1817. body_mp->ClampLinearVelocity();
  1818. body_mp->ClampAngularVelocity();
  1819. // Activate the 2nd body if it is not already active
  1820. if (body2.IsDynamic() && !body2.IsActive())
  1821. {
  1822. bodies_to_activate[num_bodies_to_activate++] = ccd_body->mBodyID2;
  1823. if (num_bodies_to_activate == cBodiesBatch)
  1824. {
  1825. // Batch is full, activate now
  1826. mBodyManager.ActivateBodies(bodies_to_activate, num_bodies_to_activate);
  1827. num_bodies_to_activate = 0;
  1828. }
  1829. }
  1830. #ifdef JPH_DEBUG_RENDERER
  1831. if (sDrawMotionQualityLinearCast)
  1832. {
  1833. // Draw the collision location
  1834. RMat44 collision_transform = body1.GetCenterOfMassTransform().PostTranslated(ccd_body->mFraction * ccd_body->mDeltaPosition);
  1835. body1.GetShape()->Draw(DebugRenderer::sInstance, collision_transform, Vec3::sOne(), Color::sYellow, false, true);
  1836. // Draw the collision location + slop
  1837. RMat44 collision_transform_plus_slop = body1.GetCenterOfMassTransform().PostTranslated(ccd_body->mFractionPlusSlop * ccd_body->mDeltaPosition);
  1838. body1.GetShape()->Draw(DebugRenderer::sInstance, collision_transform_plus_slop, Vec3::sOne(), Color::sOrange, false, true);
  1839. // Draw contact normal
  1840. DebugRenderer::sInstance->DrawArrow(ccd_body->mContactPointOn2, ccd_body->mContactPointOn2 - ccd_body->mContactNormal, Color::sYellow, 0.1f);
  1841. // Draw post contact velocity
  1842. DebugRenderer::sInstance->DrawArrow(collision_transform.GetTranslation(), collision_transform.GetTranslation() + body1.GetLinearVelocity(), Color::sOrange, 0.1f);
  1843. DebugRenderer::sInstance->DrawArrow(collision_transform.GetTranslation(), collision_transform.GetTranslation() + body1.GetAngularVelocity(), Color::sPurple, 0.1f);
  1844. }
  1845. #endif // JPH_DEBUG_RENDERER
  1846. }
  1847. }
  1848. // Update body position
  1849. body1.AddPositionStep(ccd_body->mDeltaPosition * ccd_body->mFractionPlusSlop);
  1850. // If the body was activated due to an earlier CCD step it will have an index in the active
  1851. // body list that it higher than the highest one we processed during FindCollisions
  1852. // which means it hasn't been assigned an island and will not be updated by an island
  1853. // this means that we need to update its bounds manually
  1854. if (body_mp->GetIndexInActiveBodiesInternal() >= num_active_bodies_after_find_collisions)
  1855. {
  1856. body1.CalculateWorldSpaceBoundsInternal();
  1857. bodies_to_update_bounds[num_bodies_to_update_bounds++] = body1.GetID();
  1858. if (num_bodies_to_update_bounds == cBodiesBatch)
  1859. {
  1860. // Buffer full, flush now
  1861. mBroadPhase->NotifyBodiesAABBChanged(bodies_to_update_bounds, num_bodies_to_update_bounds, false);
  1862. num_bodies_to_update_bounds = 0;
  1863. }
  1864. }
  1865. }
  1866. // Activate the requested bodies
  1867. if (num_bodies_to_activate > 0)
  1868. mBodyManager.ActivateBodies(bodies_to_activate, num_bodies_to_activate);
  1869. // Notify change bounds on requested bodies
  1870. if (num_bodies_to_update_bounds > 0)
  1871. mBroadPhase->NotifyBodiesAABBChanged(bodies_to_update_bounds, num_bodies_to_update_bounds, false);
  1872. }
  1873. // Ensure we free the CCD bodies array now, will not call the destructor!
  1874. temp_allocator->Free(ioStep->mActiveBodyToCCDBody, ioStep->mNumActiveBodyToCCDBody * sizeof(int));
  1875. ioStep->mActiveBodyToCCDBody = nullptr;
  1876. ioStep->mNumActiveBodyToCCDBody = 0;
  1877. temp_allocator->Free(ioStep->mCCDBodies, ioStep->mCCDBodiesCapacity * sizeof(CCDBody));
  1878. ioStep->mCCDBodies = nullptr;
  1879. ioStep->mCCDBodiesCapacity = 0;
  1880. }
  1881. void PhysicsSystem::JobContactRemovedCallbacks(const PhysicsUpdateContext::Step *ioStep)
  1882. {
  1883. #ifdef JPH_ENABLE_ASSERTS
  1884. // We don't touch any bodies
  1885. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::None);
  1886. #endif
  1887. // Reset the Body::EFlags::InvalidateContactCache flag for all bodies
  1888. mBodyManager.ValidateContactCacheForAllBodies();
  1889. // Finalize the contact cache (this swaps the read and write versions of the contact cache)
  1890. // Trigger all contact removed callbacks by looking at last step contact points that have not been flagged as reused
  1891. mContactManager.FinalizeContactCacheAndCallContactPointRemovedCallbacks(ioStep->mNumBodyPairs, ioStep->mNumManifolds);
  1892. }
  1893. class PhysicsSystem::BodiesToSleep : public NonCopyable
  1894. {
  1895. public:
  1896. static constexpr int cBodiesToSleepSize = 512;
  1897. static constexpr int cMaxBodiesToPutInBuffer = 128;
  1898. inline BodiesToSleep(BodyManager &inBodyManager, BodyID *inBodiesToSleepBuffer) : mBodyManager(inBodyManager), mBodiesToSleepBuffer(inBodiesToSleepBuffer), mBodiesToSleepCur(inBodiesToSleepBuffer) { }
  1899. inline ~BodiesToSleep()
  1900. {
  1901. // Flush the bodies to sleep buffer
  1902. int num_bodies_in_buffer = int(mBodiesToSleepCur - mBodiesToSleepBuffer);
  1903. if (num_bodies_in_buffer > 0)
  1904. mBodyManager.DeactivateBodies(mBodiesToSleepBuffer, num_bodies_in_buffer);
  1905. }
  1906. inline void PutToSleep(const BodyID *inBegin, const BodyID *inEnd)
  1907. {
  1908. int num_bodies_to_sleep = int(inEnd - inBegin);
  1909. if (num_bodies_to_sleep > cMaxBodiesToPutInBuffer)
  1910. {
  1911. // Too many bodies, deactivate immediately
  1912. mBodyManager.DeactivateBodies(inBegin, num_bodies_to_sleep);
  1913. }
  1914. else
  1915. {
  1916. // Check if there's enough space in the bodies to sleep buffer
  1917. int num_bodies_in_buffer = int(mBodiesToSleepCur - mBodiesToSleepBuffer);
  1918. if (num_bodies_in_buffer + num_bodies_to_sleep > cBodiesToSleepSize)
  1919. {
  1920. // Flush the bodies to sleep buffer
  1921. mBodyManager.DeactivateBodies(mBodiesToSleepBuffer, num_bodies_in_buffer);
  1922. mBodiesToSleepCur = mBodiesToSleepBuffer;
  1923. }
  1924. // Copy the bodies in the buffer
  1925. memcpy(mBodiesToSleepCur, inBegin, num_bodies_to_sleep * sizeof(BodyID));
  1926. mBodiesToSleepCur += num_bodies_to_sleep;
  1927. }
  1928. }
  1929. private:
  1930. BodyManager & mBodyManager;
  1931. BodyID * mBodiesToSleepBuffer;
  1932. BodyID * mBodiesToSleepCur;
  1933. };
  1934. void PhysicsSystem::CheckSleepAndUpdateBounds(uint32 inIslandIndex, const PhysicsUpdateContext *ioContext, const PhysicsUpdateContext::Step *ioStep, BodiesToSleep &ioBodiesToSleep)
  1935. {
  1936. // Get the bodies that belong to this island
  1937. BodyID *bodies_begin, *bodies_end;
  1938. mIslandBuilder.GetBodiesInIsland(inIslandIndex, bodies_begin, bodies_end);
  1939. // Only check sleeping in the last step
  1940. // Also resets force and torque used during the apply gravity phase
  1941. if (ioStep->mIsLast)
  1942. {
  1943. JPH_PROFILE("Check Sleeping");
  1944. static_assert(int(ECanSleep::CannotSleep) == 0 && int(ECanSleep::CanSleep) == 1, "Loop below makes this assumption");
  1945. int all_can_sleep = mPhysicsSettings.mAllowSleeping? int(ECanSleep::CanSleep) : int(ECanSleep::CannotSleep);
  1946. float time_before_sleep = mPhysicsSettings.mTimeBeforeSleep;
  1947. float max_movement = mPhysicsSettings.mPointVelocitySleepThreshold * time_before_sleep;
  1948. for (const BodyID *body_id = bodies_begin; body_id < bodies_end; ++body_id)
  1949. {
  1950. Body &body = mBodyManager.GetBody(*body_id);
  1951. // Update bounding box
  1952. body.CalculateWorldSpaceBoundsInternal();
  1953. // Update sleeping
  1954. all_can_sleep &= int(body.UpdateSleepStateInternal(ioContext->mStepDeltaTime, max_movement, time_before_sleep));
  1955. // Reset force and torque
  1956. MotionProperties *mp = body.GetMotionProperties();
  1957. mp->ResetForce();
  1958. mp->ResetTorque();
  1959. }
  1960. // If all bodies indicate they can sleep we can deactivate them
  1961. if (all_can_sleep == int(ECanSleep::CanSleep))
  1962. ioBodiesToSleep.PutToSleep(bodies_begin, bodies_end);
  1963. }
  1964. else
  1965. {
  1966. JPH_PROFILE("Update Bounds");
  1967. // Update bounding box only for all other steps
  1968. for (const BodyID *body_id = bodies_begin; body_id < bodies_end; ++body_id)
  1969. {
  1970. Body &body = mBodyManager.GetBody(*body_id);
  1971. body.CalculateWorldSpaceBoundsInternal();
  1972. }
  1973. }
  1974. // Notify broadphase of changed objects (find ccd contacts can do linear casts in the next step, so we need to do this every step)
  1975. // Note: Shuffles the BodyID's around!!!
  1976. mBroadPhase->NotifyBodiesAABBChanged(bodies_begin, int(bodies_end - bodies_begin), false);
  1977. }
  1978. void PhysicsSystem::JobSolvePositionConstraints(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  1979. {
  1980. #ifdef JPH_ENABLE_ASSERTS
  1981. // We fix up position errors
  1982. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::ReadWrite);
  1983. // Can only deactivate bodies
  1984. BodyManager::GrantActiveBodiesAccess grant_active(false, true);
  1985. #endif
  1986. float delta_time = ioContext->mStepDeltaTime;
  1987. float baumgarte = mPhysicsSettings.mBaumgarte;
  1988. Constraint **active_constraints = ioContext->mActiveConstraints;
  1989. // Keep a buffer of bodies that need to go to sleep in order to not constantly lock the active bodies mutex and create contention between all solving threads
  1990. BodiesToSleep bodies_to_sleep(mBodyManager, (BodyID *)JPH_STACK_ALLOC(BodiesToSleep::cBodiesToSleepSize * sizeof(BodyID)));
  1991. bool check_islands = true, check_split_islands = mPhysicsSettings.mUseLargeIslandSplitter;
  1992. for (;;)
  1993. {
  1994. // First try to get work from large islands
  1995. if (check_split_islands)
  1996. {
  1997. bool first_iteration;
  1998. uint split_island_index;
  1999. uint32 *constraints_begin, *constraints_end, *contacts_begin, *contacts_end;
  2000. switch (mLargeIslandSplitter.FetchNextBatch(split_island_index, constraints_begin, constraints_end, contacts_begin, contacts_end, first_iteration))
  2001. {
  2002. case LargeIslandSplitter::EStatus::BatchRetrieved:
  2003. // Solve the batch
  2004. ConstraintManager::sSolvePositionConstraints(active_constraints, constraints_begin, constraints_end, delta_time, baumgarte);
  2005. mContactManager.SolvePositionConstraints(contacts_begin, contacts_end);
  2006. // Mark the batch as processed
  2007. bool last_iteration, final_batch;
  2008. mLargeIslandSplitter.MarkBatchProcessed(split_island_index, constraints_begin, constraints_end, contacts_begin, contacts_end, last_iteration, final_batch);
  2009. // The final batch will update all bounds and check sleeping
  2010. if (final_batch)
  2011. CheckSleepAndUpdateBounds(mLargeIslandSplitter.GetIslandIndex(split_island_index), ioContext, ioStep, bodies_to_sleep);
  2012. // We processed work, loop again
  2013. continue;
  2014. case LargeIslandSplitter::EStatus::WaitingForBatch:
  2015. break;
  2016. case LargeIslandSplitter::EStatus::AllBatchesDone:
  2017. check_split_islands = false;
  2018. break;
  2019. }
  2020. }
  2021. // If that didn't succeed try to process an island
  2022. if (check_islands)
  2023. {
  2024. // Next island
  2025. uint32 island_idx = ioStep->mSolvePositionConstraintsNextIsland++;
  2026. if (island_idx >= mIslandBuilder.GetNumIslands())
  2027. {
  2028. // We processed all islands, stop checking islands
  2029. check_islands = false;
  2030. continue;
  2031. }
  2032. JPH_PROFILE("Island");
  2033. // Get iterators for this island
  2034. uint32 *constraints_begin, *constraints_end, *contacts_begin, *contacts_end;
  2035. mIslandBuilder.GetConstraintsInIsland(island_idx, constraints_begin, constraints_end);
  2036. mIslandBuilder.GetContactsInIsland(island_idx, contacts_begin, contacts_end);
  2037. // If this island is a large island, it will be picked up as a batch and we don't need to do anything here
  2038. uint num_items = uint(constraints_end - constraints_begin) + uint(contacts_end - contacts_begin);
  2039. if (mPhysicsSettings.mUseLargeIslandSplitter
  2040. && num_items >= LargeIslandSplitter::cLargeIslandTreshold)
  2041. continue;
  2042. // Check if this island needs solving
  2043. if (num_items > 0)
  2044. {
  2045. // Iterate
  2046. uint num_position_steps = mIslandBuilder.GetNumPositionSteps(island_idx);
  2047. for (uint position_step = 0; position_step < num_position_steps; ++position_step)
  2048. {
  2049. bool applied_impulse = ConstraintManager::sSolvePositionConstraints(active_constraints, constraints_begin, constraints_end, delta_time, baumgarte);
  2050. applied_impulse |= mContactManager.SolvePositionConstraints(contacts_begin, contacts_end);
  2051. if (!applied_impulse)
  2052. break;
  2053. }
  2054. }
  2055. // After solving we will update all bounds and check sleeping
  2056. CheckSleepAndUpdateBounds(island_idx, ioContext, ioStep, bodies_to_sleep);
  2057. // We processed work, loop again
  2058. continue;
  2059. }
  2060. if (check_islands)
  2061. {
  2062. // If there are islands, we don't need to wait and can pick up new work
  2063. continue;
  2064. }
  2065. else if (check_split_islands)
  2066. {
  2067. // If there are split islands, but we didn't do any work, give up a time slice
  2068. std::this_thread::yield();
  2069. }
  2070. else
  2071. {
  2072. // No more work
  2073. break;
  2074. }
  2075. }
  2076. }
  2077. void PhysicsSystem::JobSoftBodyPrepare(PhysicsUpdateContext *ioContext, PhysicsUpdateContext::Step *ioStep)
  2078. {
  2079. JPH_PROFILE_FUNCTION();
  2080. {
  2081. #ifdef JPH_ENABLE_ASSERTS
  2082. // Reading soft body positions
  2083. BodyAccess::Grant grant(BodyAccess::EAccess::None, BodyAccess::EAccess::Read);
  2084. #endif
  2085. // Get the active soft bodies
  2086. BodyIDVector active_bodies;
  2087. mBodyManager.GetActiveBodies(EBodyType::SoftBody, active_bodies);
  2088. // Quit if there are no active soft bodies
  2089. if (active_bodies.empty())
  2090. {
  2091. // Kick the next step
  2092. if (ioStep->mStartNextStep.IsValid())
  2093. ioStep->mStartNextStep.RemoveDependency();
  2094. return;
  2095. }
  2096. // Sort to get a deterministic update order
  2097. QuickSort(active_bodies.begin(), active_bodies.end());
  2098. // Allocate soft body contexts
  2099. ioContext->mNumSoftBodies = (uint)active_bodies.size();
  2100. ioContext->mSoftBodyUpdateContexts = (SoftBodyUpdateContext *)ioContext->mTempAllocator->Allocate(ioContext->mNumSoftBodies * sizeof(SoftBodyUpdateContext));
  2101. // Initialize soft body contexts
  2102. for (SoftBodyUpdateContext *sb_ctx = ioContext->mSoftBodyUpdateContexts, *sb_ctx_end = ioContext->mSoftBodyUpdateContexts + ioContext->mNumSoftBodies; sb_ctx < sb_ctx_end; ++sb_ctx)
  2103. {
  2104. new (sb_ctx) SoftBodyUpdateContext;
  2105. Body &body = mBodyManager.GetBody(active_bodies[sb_ctx - ioContext->mSoftBodyUpdateContexts]);
  2106. SoftBodyMotionProperties *mp = static_cast<SoftBodyMotionProperties *>(body.GetMotionProperties());
  2107. mp->InitializeUpdateContext(ioContext->mStepDeltaTime, body, *this, *sb_ctx);
  2108. }
  2109. }
  2110. // We're ready to collide the first soft body
  2111. ioContext->mSoftBodyToCollide.store(0, memory_order_release);
  2112. // Determine number of jobs to spawn
  2113. int num_soft_body_jobs = ioContext->GetMaxConcurrency();
  2114. // Create finalize job
  2115. ioStep->mSoftBodyFinalize = ioContext->mJobSystem->CreateJob("SoftBodyFinalize", cColorSoftBodyFinalize, [ioContext, ioStep]()
  2116. {
  2117. ioContext->mPhysicsSystem->JobSoftBodyFinalize(ioContext);
  2118. // Kick the next step
  2119. if (ioStep->mStartNextStep.IsValid())
  2120. ioStep->mStartNextStep.RemoveDependency();
  2121. }, num_soft_body_jobs); // depends on: soft body simulate
  2122. ioContext->mBarrier->AddJob(ioStep->mSoftBodyFinalize);
  2123. // Create simulate jobs
  2124. ioStep->mSoftBodySimulate.resize(num_soft_body_jobs);
  2125. for (int i = 0; i < num_soft_body_jobs; ++i)
  2126. ioStep->mSoftBodySimulate[i] = ioContext->mJobSystem->CreateJob("SoftBodySimulate", cColorSoftBodySimulate, [ioStep, i]()
  2127. {
  2128. ioStep->mContext->mPhysicsSystem->JobSoftBodySimulate(ioStep->mContext, i);
  2129. ioStep->mSoftBodyFinalize.RemoveDependency();
  2130. }, num_soft_body_jobs); // depends on: soft body collide
  2131. ioContext->mBarrier->AddJobs(ioStep->mSoftBodySimulate.data(), ioStep->mSoftBodySimulate.size());
  2132. // Create collision jobs
  2133. ioStep->mSoftBodyCollide.resize(num_soft_body_jobs);
  2134. for (int i = 0; i < num_soft_body_jobs; ++i)
  2135. ioStep->mSoftBodyCollide[i] = ioContext->mJobSystem->CreateJob("SoftBodyCollide", cColorSoftBodyCollide, [ioContext, ioStep]()
  2136. {
  2137. ioContext->mPhysicsSystem->JobSoftBodyCollide(ioContext);
  2138. for (const JobHandle &h : ioStep->mSoftBodySimulate)
  2139. h.RemoveDependency();
  2140. }); // depends on: nothing
  2141. ioContext->mBarrier->AddJobs(ioStep->mSoftBodyCollide.data(), ioStep->mSoftBodyCollide.size());
  2142. }
  2143. void PhysicsSystem::JobSoftBodyCollide(PhysicsUpdateContext *ioContext) const
  2144. {
  2145. #ifdef JPH_ENABLE_ASSERTS
  2146. // Reading rigid body positions and velocities
  2147. BodyAccess::Grant grant(BodyAccess::EAccess::Read, BodyAccess::EAccess::Read);
  2148. #endif
  2149. for (;;)
  2150. {
  2151. // Fetch the next soft body
  2152. uint sb_idx = ioContext->mSoftBodyToCollide.fetch_add(1, std::memory_order_acquire);
  2153. if (sb_idx >= ioContext->mNumSoftBodies)
  2154. break;
  2155. // Do a broadphase check
  2156. SoftBodyUpdateContext &sb_ctx = ioContext->mSoftBodyUpdateContexts[sb_idx];
  2157. sb_ctx.mMotionProperties->DetermineCollidingShapes(sb_ctx, *this, GetBodyLockInterfaceNoLock());
  2158. }
  2159. }
  2160. void PhysicsSystem::JobSoftBodySimulate(PhysicsUpdateContext *ioContext, uint inThreadIndex) const
  2161. {
  2162. #ifdef JPH_ENABLE_ASSERTS
  2163. // Updating velocities of soft bodies, allow the contact listener to read the soft body state
  2164. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::Read);
  2165. #endif
  2166. // Calculate at which body we start to distribute the workload across the threads
  2167. uint num_soft_bodies = ioContext->mNumSoftBodies;
  2168. uint start_idx = inThreadIndex * num_soft_bodies / ioContext->GetMaxConcurrency();
  2169. // Keep running partial updates until everything has been updated
  2170. uint status;
  2171. do
  2172. {
  2173. // Reset status
  2174. status = 0;
  2175. // Update all soft bodies
  2176. for (uint i = 0; i < num_soft_bodies; ++i)
  2177. {
  2178. // Fetch the soft body context
  2179. SoftBodyUpdateContext &sb_ctx = ioContext->mSoftBodyUpdateContexts[(start_idx + i) % num_soft_bodies];
  2180. // To avoid trashing the cache too much, we prefer to stick to one soft body until we cannot progress it any further
  2181. uint sb_status;
  2182. do
  2183. {
  2184. sb_status = (uint)sb_ctx.mMotionProperties->ParallelUpdate(sb_ctx, mPhysicsSettings);
  2185. status |= sb_status;
  2186. } while (sb_status == (uint)SoftBodyMotionProperties::EStatus::DidWork);
  2187. }
  2188. // If we didn't perform any work, yield the thread so that something else can run
  2189. if (!(status & (uint)SoftBodyMotionProperties::EStatus::DidWork))
  2190. std::this_thread::yield();
  2191. }
  2192. while (status != (uint)SoftBodyMotionProperties::EStatus::Done);
  2193. }
  2194. void PhysicsSystem::JobSoftBodyFinalize(PhysicsUpdateContext *ioContext)
  2195. {
  2196. #ifdef JPH_ENABLE_ASSERTS
  2197. // Updating rigid body velocities and soft body positions / velocities
  2198. BodyAccess::Grant grant(BodyAccess::EAccess::ReadWrite, BodyAccess::EAccess::ReadWrite);
  2199. // Can activate and deactivate bodies
  2200. BodyManager::GrantActiveBodiesAccess grant_active(true, true);
  2201. #endif
  2202. static constexpr int cBodiesBatch = 64;
  2203. BodyID *bodies_to_update_bounds = (BodyID *)JPH_STACK_ALLOC(cBodiesBatch * sizeof(BodyID));
  2204. int num_bodies_to_update_bounds = 0;
  2205. BodyID *bodies_to_put_to_sleep = (BodyID *)JPH_STACK_ALLOC(cBodiesBatch * sizeof(BodyID));
  2206. int num_bodies_to_put_to_sleep = 0;
  2207. for (SoftBodyUpdateContext *sb_ctx = ioContext->mSoftBodyUpdateContexts, *sb_ctx_end = ioContext->mSoftBodyUpdateContexts + ioContext->mNumSoftBodies; sb_ctx < sb_ctx_end; ++sb_ctx)
  2208. {
  2209. // Apply the rigid body velocity deltas
  2210. sb_ctx->mMotionProperties->UpdateRigidBodyVelocities(*sb_ctx, GetBodyInterfaceNoLock());
  2211. // Update the position
  2212. sb_ctx->mBody->SetPositionAndRotationInternal(sb_ctx->mBody->GetPosition() + sb_ctx->mDeltaPosition, sb_ctx->mBody->GetRotation(), false);
  2213. BodyID id = sb_ctx->mBody->GetID();
  2214. bodies_to_update_bounds[num_bodies_to_update_bounds++] = id;
  2215. if (num_bodies_to_update_bounds == cBodiesBatch)
  2216. {
  2217. // Buffer full, flush now
  2218. mBroadPhase->NotifyBodiesAABBChanged(bodies_to_update_bounds, num_bodies_to_update_bounds, false);
  2219. num_bodies_to_update_bounds = 0;
  2220. }
  2221. if (sb_ctx->mCanSleep == ECanSleep::CanSleep)
  2222. {
  2223. // This body should go to sleep
  2224. bodies_to_put_to_sleep[num_bodies_to_put_to_sleep++] = id;
  2225. if (num_bodies_to_put_to_sleep == cBodiesBatch)
  2226. {
  2227. mBodyManager.DeactivateBodies(bodies_to_put_to_sleep, num_bodies_to_put_to_sleep);
  2228. num_bodies_to_put_to_sleep = 0;
  2229. }
  2230. }
  2231. }
  2232. // Notify change bounds on requested bodies
  2233. if (num_bodies_to_update_bounds > 0)
  2234. mBroadPhase->NotifyBodiesAABBChanged(bodies_to_update_bounds, num_bodies_to_update_bounds, false);
  2235. // Notify bodies to go to sleep
  2236. if (num_bodies_to_put_to_sleep > 0)
  2237. mBodyManager.DeactivateBodies(bodies_to_put_to_sleep, num_bodies_to_put_to_sleep);
  2238. // Free soft body contexts
  2239. ioContext->mTempAllocator->Free(ioContext->mSoftBodyUpdateContexts, ioContext->mNumSoftBodies * sizeof(SoftBodyUpdateContext));
  2240. }
  2241. void PhysicsSystem::SaveState(StateRecorder &inStream, EStateRecorderState inState, const StateRecorderFilter *inFilter) const
  2242. {
  2243. JPH_PROFILE_FUNCTION();
  2244. inStream.Write(inState);
  2245. if (uint8(inState) & uint8(EStateRecorderState::Global))
  2246. {
  2247. inStream.Write(mPreviousStepDeltaTime);
  2248. inStream.Write(mGravity);
  2249. }
  2250. if (uint8(inState) & uint8(EStateRecorderState::Bodies))
  2251. mBodyManager.SaveState(inStream, inFilter);
  2252. if (uint8(inState) & uint8(EStateRecorderState::Contacts))
  2253. mContactManager.SaveState(inStream, inFilter);
  2254. if (uint8(inState) & uint8(EStateRecorderState::Constraints))
  2255. mConstraintManager.SaveState(inStream, inFilter);
  2256. }
  2257. bool PhysicsSystem::RestoreState(StateRecorder &inStream, const StateRecorderFilter *inFilter)
  2258. {
  2259. JPH_PROFILE_FUNCTION();
  2260. EStateRecorderState state = EStateRecorderState::All; // Set this value for validation. If a partial state is saved, validation will not work anyway.
  2261. inStream.Read(state);
  2262. if (uint8(state) & uint8(EStateRecorderState::Global))
  2263. {
  2264. inStream.Read(mPreviousStepDeltaTime);
  2265. inStream.Read(mGravity);
  2266. }
  2267. if (uint8(state) & uint8(EStateRecorderState::Bodies))
  2268. {
  2269. if (!mBodyManager.RestoreState(inStream))
  2270. return false;
  2271. // Update bounding boxes for all bodies in the broadphase
  2272. if (inStream.IsLastPart())
  2273. {
  2274. Array<BodyID> bodies;
  2275. for (const Body *b : mBodyManager.GetBodies())
  2276. if (BodyManager::sIsValidBodyPointer(b) && b->IsInBroadPhase())
  2277. bodies.push_back(b->GetID());
  2278. if (!bodies.empty())
  2279. mBroadPhase->NotifyBodiesAABBChanged(&bodies[0], (int)bodies.size());
  2280. }
  2281. }
  2282. if (uint8(state) & uint8(EStateRecorderState::Contacts))
  2283. {
  2284. if (!mContactManager.RestoreState(inStream, inFilter))
  2285. return false;
  2286. }
  2287. if (uint8(state) & uint8(EStateRecorderState::Constraints))
  2288. {
  2289. if (!mConstraintManager.RestoreState(inStream))
  2290. return false;
  2291. }
  2292. return true;
  2293. }
  2294. void PhysicsSystem::SaveBodyState(const Body &inBody, StateRecorder &inStream) const
  2295. {
  2296. mBodyManager.SaveBodyState(inBody, inStream);
  2297. }
  2298. void PhysicsSystem::RestoreBodyState(Body &ioBody, StateRecorder &inStream)
  2299. {
  2300. mBodyManager.RestoreBodyState(ioBody, inStream);
  2301. BodyID id = ioBody.GetID();
  2302. mBroadPhase->NotifyBodiesAABBChanged(&id, 1);
  2303. }
  2304. JPH_NAMESPACE_END