1 /* 2 Copyright (c) 2005-2021 Intel Corporation 3 4 Licensed under the Apache License, Version 2.0 (the "License"); 5 you may not use this file except in compliance with the License. 6 You may obtain a copy of the License at 7 8 http://www.apache.org/licenses/LICENSE-2.0 9 10 Unless required by applicable law or agreed to in writing, software 11 distributed under the License is distributed on an "AS IS" BASIS, 12 WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. 13 See the License for the specific language governing permissions and 14 limitations under the License. 15 */ 16 17 #include "governor.h" 18 #include "main.h" 19 #include "thread_data.h" 20 #include "market.h" 21 #include "arena.h" 22 #include "dynamic_link.h" 23 #include "concurrent_monitor.h" 24 25 #include "oneapi/tbb/task_group.h" 26 #include "oneapi/tbb/global_control.h" 27 #include "oneapi/tbb/tbb_allocator.h" 28 #include "oneapi/tbb/info.h" 29 30 #include "task_dispatcher.h" 31 32 #include <cstdio> 33 #include <cstdlib> 34 #include <cstring> 35 #include <atomic> 36 #include <algorithm> 37 38 namespace tbb { 39 namespace detail { 40 namespace r1 { 41 42 void clear_address_waiter_table(); 43 44 #if __TBB_SUPPORTS_WORKERS_WAITING_IN_TERMINATE 45 //! global_control.cpp contains definition 46 bool remove_and_check_if_empty(d1::global_control& gc); 47 bool is_present(d1::global_control& gc); 48 #endif // __TBB_SUPPORTS_WORKERS_WAITING_IN_TERMINATE 49 50 namespace rml { 51 tbb_server* make_private_server( tbb_client& client ); 52 } // namespace rml 53 54 //------------------------------------------------------------------------ 55 // governor 56 //------------------------------------------------------------------------ 57 58 void governor::acquire_resources () { 59 #if __TBB_USE_POSIX 60 int status = theTLS.create(auto_terminate); 61 #else 62 int status = theTLS.create(); 63 #endif 64 if( status ) 65 handle_perror(status, "TBB failed to initialize task scheduler TLS\n"); 66 detect_cpu_features(cpu_features); 67 68 is_rethrow_broken = gcc_rethrow_exception_broken(); 69 } 70 71 void governor::release_resources () { 72 theRMLServerFactory.close(); 73 destroy_process_mask(); 74 75 __TBB_ASSERT(!(__TBB_InitOnce::initialization_done() && theTLS.get()), "TBB is unloaded while thread data still alive?"); 76 77 int status = theTLS.destroy(); 78 if( status ) 79 runtime_warning("failed to destroy task scheduler TLS: %s", std::strerror(status)); 80 clear_address_waiter_table(); 81 82 dynamic_unlink_all(); 83 } 84 85 rml::tbb_server* governor::create_rml_server ( rml::tbb_client& client ) { 86 rml::tbb_server* server = NULL; 87 if( !UsePrivateRML ) { 88 ::rml::factory::status_type status = theRMLServerFactory.make_server( server, client ); 89 if( status != ::rml::factory::st_success ) { 90 UsePrivateRML = true; 91 runtime_warning( "rml::tbb_factory::make_server failed with status %x, falling back on private rml", status ); 92 } 93 } 94 if ( !server ) { 95 __TBB_ASSERT( UsePrivateRML, NULL ); 96 server = rml::make_private_server( client ); 97 } 98 __TBB_ASSERT( server, "Failed to create RML server" ); 99 return server; 100 } 101 102 void governor::one_time_init() { 103 if ( !__TBB_InitOnce::initialization_done() ) { 104 DoOneTimeInitialization(); 105 } 106 } 107 108 /* 109 There is no portable way to get stack base address in Posix, however the modern 110 Linux versions provide pthread_attr_np API that can be used to obtain thread's 111 stack size and base address. Unfortunately even this function does not provide 112 enough information for the main thread on IA-64 architecture (RSE spill area 113 and memory stack are allocated as two separate discontinuous chunks of memory), 114 and there is no portable way to discern the main and the secondary threads. 115 Thus for macOS* and IA-64 architecture for Linux* OS we use the TBB worker stack size for 116 all threads and use the current stack top as the stack base. This simplified 117 approach is based on the following assumptions: 118 1) If the default stack size is insufficient for the user app needs, the 119 required amount will be explicitly specified by the user at the point of the 120 TBB scheduler initialization (as an argument to tbb::task_scheduler_init 121 constructor). 122 2) When an external thread initializes the scheduler, it has enough space on its 123 stack. Here "enough" means "at least as much as worker threads have". 124 3) If the user app strives to conserve the memory by cutting stack size, it 125 should do this for TBB workers too (as in the #1). 126 */ 127 static std::uintptr_t get_stack_base(std::size_t stack_size) { 128 // Stacks are growing top-down. Highest address is called "stack base", 129 // and the lowest is "stack limit". 130 #if USE_WINTHREAD 131 suppress_unused_warning(stack_size); 132 NT_TIB* pteb = (NT_TIB*)NtCurrentTeb(); 133 __TBB_ASSERT(&pteb < pteb->StackBase && &pteb > pteb->StackLimit, "invalid stack info in TEB"); 134 return pteb->StackBase; 135 #else /* USE_PTHREAD */ 136 // There is no portable way to get stack base address in Posix, so we use 137 // non-portable method (on all modern Linux) or the simplified approach 138 // based on the common sense assumptions. The most important assumption 139 // is that the main thread's stack size is not less than that of other threads. 140 141 // Points to the lowest addressable byte of a stack. 142 void* stack_limit = nullptr; 143 #if __linux__ && !__bg__ 144 size_t np_stack_size = 0; 145 pthread_attr_t np_attr_stack; 146 if (0 == pthread_getattr_np(pthread_self(), &np_attr_stack)) { 147 if (0 == pthread_attr_getstack(&np_attr_stack, &stack_limit, &np_stack_size)) { 148 __TBB_ASSERT( &stack_limit > stack_limit, "stack size must be positive" ); 149 } 150 pthread_attr_destroy(&np_attr_stack); 151 } 152 #endif /* __linux__ */ 153 std::uintptr_t stack_base{}; 154 if (stack_limit) { 155 stack_base = reinterpret_cast<std::uintptr_t>(stack_limit) + stack_size; 156 } else { 157 // Use an anchor as a base stack address. 158 int anchor{}; 159 stack_base = reinterpret_cast<std::uintptr_t>(&anchor); 160 } 161 return stack_base; 162 #endif /* USE_PTHREAD */ 163 } 164 165 void governor::init_external_thread() { 166 one_time_init(); 167 // Create new scheduler instance with arena 168 int num_slots = default_num_threads(); 169 // TODO_REVAMP: support an external thread without an implicit arena 170 int num_reserved_slots = 1; 171 unsigned arena_priority_level = 1; // corresponds to tbb::task_arena::priority::normal 172 std::size_t stack_size = 0; 173 arena& a = *market::create_arena(num_slots, num_reserved_slots, arena_priority_level, stack_size); 174 // We need an internal reference to the market. TODO: is it legacy? 175 market::global_market(false); 176 // External thread always occupies the first slot 177 thread_data& td = *new(cache_aligned_allocate(sizeof(thread_data))) thread_data(0, false); 178 td.attach_arena(a, /*slot index*/ 0); 179 __TBB_ASSERT(td.my_inbox.is_idle_state(false), nullptr); 180 181 stack_size = a.my_market->worker_stack_size(); 182 std::uintptr_t stack_base = get_stack_base(stack_size); 183 task_dispatcher& task_disp = td.my_arena_slot->default_task_dispatcher(); 184 task_disp.set_stealing_threshold(calculate_stealing_threshold(stack_base, stack_size)); 185 td.attach_task_dispatcher(task_disp); 186 187 td.my_arena_slot->occupy(); 188 a.my_market->add_external_thread(td); 189 set_thread_data(td); 190 } 191 192 void governor::auto_terminate(void* tls) { 193 __TBB_ASSERT(get_thread_data_if_initialized() == nullptr || 194 get_thread_data_if_initialized() == tls, NULL); 195 if (tls) { 196 thread_data* td = static_cast<thread_data*>(tls); 197 198 // Only external thread can be inside an arena during termination. 199 if (td->my_arena_slot) { 200 arena* a = td->my_arena; 201 market* m = a->my_market; 202 203 a->my_observers.notify_exit_observers(td->my_last_observer, td->my_is_worker); 204 205 td->my_task_dispatcher->m_stealing_threshold = 0; 206 td->detach_task_dispatcher(); 207 td->my_arena_slot->release(); 208 // Release an arena 209 a->on_thread_leaving<arena::ref_external>(); 210 211 m->remove_external_thread(*td); 212 // If there was an associated arena, it added a public market reference 213 m->release( /*is_public*/ true, /*blocking_terminate*/ false); 214 } 215 216 td->~thread_data(); 217 cache_aligned_deallocate(td); 218 219 clear_thread_data(); 220 } 221 __TBB_ASSERT(get_thread_data_if_initialized() == nullptr, NULL); 222 } 223 224 void governor::initialize_rml_factory () { 225 ::rml::factory::status_type res = theRMLServerFactory.open(); 226 UsePrivateRML = res != ::rml::factory::st_success; 227 } 228 229 #if __TBB_SUPPORTS_WORKERS_WAITING_IN_TERMINATE 230 void __TBB_EXPORTED_FUNC get(d1::task_scheduler_handle& handle) { 231 handle.m_ctl = new(allocate_memory(sizeof(global_control))) global_control(global_control::scheduler_handle, 1); 232 } 233 234 void release_impl(d1::task_scheduler_handle& handle) { 235 if (handle.m_ctl != nullptr) { 236 handle.m_ctl->~global_control(); 237 deallocate_memory(handle.m_ctl); 238 handle.m_ctl = nullptr; 239 } 240 } 241 242 bool finalize_impl(d1::task_scheduler_handle& handle) { 243 __TBB_ASSERT_RELEASE(handle, "trying to finalize with null handle"); 244 market::global_market_mutex_type::scoped_lock lock( market::theMarketMutex ); 245 bool ok = true; // ok if theMarket does not exist yet 246 market* m = market::theMarket; // read the state of theMarket 247 if (m != nullptr) { 248 lock.release(); 249 __TBB_ASSERT(is_present(*handle.m_ctl), "finalize or release was already called on this object"); 250 thread_data* td = governor::get_thread_data_if_initialized(); 251 if (td) { 252 task_dispatcher* task_disp = td->my_task_dispatcher; 253 __TBB_ASSERT(task_disp, nullptr); 254 if (task_disp->m_properties.outermost && !td->my_is_worker) { // is not inside a parallel region 255 governor::auto_terminate(td); 256 } 257 } 258 if (remove_and_check_if_empty(*handle.m_ctl)) { 259 ok = m->release(/*is_public*/ true, /*blocking_terminate*/ true); 260 } else { 261 ok = false; 262 } 263 } 264 return ok; 265 } 266 267 bool __TBB_EXPORTED_FUNC finalize(d1::task_scheduler_handle& handle, std::intptr_t mode) { 268 if (mode == d1::release_nothrowing) { 269 release_impl(handle); 270 return true; 271 } else { 272 bool ok = finalize_impl(handle); 273 // TODO: it is unsafe when finalize is called concurrently and further library unload 274 release_impl(handle); 275 if (mode == d1::finalize_throwing && !ok) { 276 throw_exception(exception_id::unsafe_wait); 277 } 278 return ok; 279 } 280 } 281 #endif // __TBB_SUPPORTS_WORKERS_WAITING_IN_TERMINATE 282 283 #if __TBB_ARENA_BINDING 284 285 #if __TBB_WEAK_SYMBOLS_PRESENT 286 #pragma weak __TBB_internal_initialize_system_topology 287 #pragma weak __TBB_internal_allocate_binding_handler 288 #pragma weak __TBB_internal_deallocate_binding_handler 289 #pragma weak __TBB_internal_apply_affinity 290 #pragma weak __TBB_internal_restore_affinity 291 #pragma weak __TBB_internal_get_default_concurrency 292 293 extern "C" { 294 void __TBB_internal_initialize_system_topology( 295 size_t groups_num, 296 int& numa_nodes_count, int*& numa_indexes_list, 297 int& core_types_count, int*& core_types_indexes_list 298 ); 299 300 //TODO: consider renaming to `create_binding_handler` and `destroy_binding_handler` 301 binding_handler* __TBB_internal_allocate_binding_handler( int slot_num, int numa_id, int core_type_id, int max_threads_per_core ); 302 void __TBB_internal_deallocate_binding_handler( binding_handler* handler_ptr ); 303 304 void __TBB_internal_apply_affinity( binding_handler* handler_ptr, int slot_num ); 305 void __TBB_internal_restore_affinity( binding_handler* handler_ptr, int slot_num ); 306 307 int __TBB_internal_get_default_concurrency( int numa_id, int core_type_id, int max_threads_per_core ); 308 } 309 #endif /* __TBB_WEAK_SYMBOLS_PRESENT */ 310 311 // Stubs that will be used if TBBbind library is unavailable. 312 static binding_handler* dummy_allocate_binding_handler ( int, int, int, int ) { return nullptr; } 313 static void dummy_deallocate_binding_handler ( binding_handler* ) { } 314 static void dummy_apply_affinity ( binding_handler*, int ) { } 315 static void dummy_restore_affinity ( binding_handler*, int ) { } 316 static int dummy_get_default_concurrency( int, int, int ) { return governor::default_num_threads(); } 317 318 // Handlers for communication with TBBbind 319 static void (*initialize_system_topology_ptr)( 320 size_t groups_num, 321 int& numa_nodes_count, int*& numa_indexes_list, 322 int& core_types_count, int*& core_types_indexes_list 323 ) = nullptr; 324 325 static binding_handler* (*allocate_binding_handler_ptr)( int slot_num, int numa_id, int core_type_id, int max_threads_per_core ) 326 = dummy_allocate_binding_handler; 327 static void (*deallocate_binding_handler_ptr)( binding_handler* handler_ptr ) 328 = dummy_deallocate_binding_handler; 329 static void (*apply_affinity_ptr)( binding_handler* handler_ptr, int slot_num ) 330 = dummy_apply_affinity; 331 static void (*restore_affinity_ptr)( binding_handler* handler_ptr, int slot_num ) 332 = dummy_restore_affinity; 333 int (*get_default_concurrency_ptr)( int numa_id, int core_type_id, int max_threads_per_core ) 334 = dummy_get_default_concurrency; 335 336 #if _WIN32 || _WIN64 || __linux__ 337 // Table describing how to link the handlers. 338 static const dynamic_link_descriptor TbbBindLinkTable[] = { 339 DLD(__TBB_internal_initialize_system_topology, initialize_system_topology_ptr), 340 DLD(__TBB_internal_allocate_binding_handler, allocate_binding_handler_ptr), 341 DLD(__TBB_internal_deallocate_binding_handler, deallocate_binding_handler_ptr), 342 DLD(__TBB_internal_apply_affinity, apply_affinity_ptr), 343 DLD(__TBB_internal_restore_affinity, restore_affinity_ptr), 344 DLD(__TBB_internal_get_default_concurrency, get_default_concurrency_ptr) 345 }; 346 347 static const unsigned LinkTableSize = sizeof(TbbBindLinkTable) / sizeof(dynamic_link_descriptor); 348 349 #if TBB_USE_DEBUG 350 #define DEBUG_SUFFIX "_debug" 351 #else 352 #define DEBUG_SUFFIX 353 #endif /* TBB_USE_DEBUG */ 354 355 #if _WIN32 || _WIN64 356 #define LIBRARY_EXTENSION ".dll" 357 #define LIBRARY_PREFIX 358 #elif __linux__ 359 #define LIBRARY_EXTENSION __TBB_STRING(.so.3) 360 #define LIBRARY_PREFIX "lib" 361 #endif /* __linux__ */ 362 363 #define TBBBIND_NAME LIBRARY_PREFIX "tbbbind" DEBUG_SUFFIX LIBRARY_EXTENSION 364 #define TBBBIND_2_0_NAME LIBRARY_PREFIX "tbbbind_2_0" DEBUG_SUFFIX LIBRARY_EXTENSION 365 #define TBBBIND_2_4_NAME LIBRARY_PREFIX "tbbbind_2_4" DEBUG_SUFFIX LIBRARY_EXTENSION 366 #endif /* _WIN32 || _WIN64 || __linux__ */ 367 368 // Representation of system hardware topology information on the TBB side. 369 // System topology may be initialized by third-party component (e.g. hwloc) 370 // or just filled in with default stubs. 371 namespace system_topology { 372 373 constexpr int automatic = -1; 374 375 static std::atomic<do_once_state> initialization_state; 376 377 namespace { 378 int numa_nodes_count = 0; 379 int* numa_nodes_indexes = nullptr; 380 381 int core_types_count = 0; 382 int* core_types_indexes = nullptr; 383 384 const char* load_tbbbind_shared_object() { 385 #if _WIN32 || _WIN64 || __linux__ 386 #if _WIN32 && !_WIN64 387 // For 32-bit Windows applications, process affinity masks can only support up to 32 logical CPUs. 388 SYSTEM_INFO si; 389 GetNativeSystemInfo(&si); 390 if (si.dwNumberOfProcessors > 32) return nullptr; 391 #endif /* _WIN32 && !_WIN64 */ 392 for (const auto& tbbbind_version : {TBBBIND_2_4_NAME, TBBBIND_2_0_NAME, TBBBIND_NAME}) { 393 if (dynamic_link(tbbbind_version, TbbBindLinkTable, LinkTableSize)) { 394 return tbbbind_version; 395 } 396 } 397 #endif /* _WIN32 || _WIN64 || __linux__ */ 398 return nullptr; 399 } 400 401 int processor_groups_num() { 402 #if _WIN32 403 return NumberOfProcessorGroups(); 404 #else 405 // Stub to improve code readability by reducing number of the compile-time conditions 406 return 1; 407 #endif 408 } 409 } // internal namespace 410 411 // Tries to load TBBbind library API, if success, gets NUMA topology information from it, 412 // in another case, fills NUMA topology by stubs. 413 void initialization_impl() { 414 governor::one_time_init(); 415 416 if (const char* tbbbind_name = load_tbbbind_shared_object()) { 417 initialize_system_topology_ptr( 418 processor_groups_num(), 419 numa_nodes_count, numa_nodes_indexes, 420 core_types_count, core_types_indexes 421 ); 422 423 PrintExtraVersionInfo("TBBBIND", tbbbind_name); 424 return; 425 } 426 427 static int dummy_index = automatic; 428 429 numa_nodes_count = 1; 430 numa_nodes_indexes = &dummy_index; 431 432 core_types_count = 1; 433 core_types_indexes = &dummy_index; 434 435 PrintExtraVersionInfo("TBBBIND", "UNAVAILABLE"); 436 } 437 438 void initialize() { 439 atomic_do_once(initialization_impl, initialization_state); 440 } 441 } // namespace system_topology 442 443 binding_handler* construct_binding_handler(int slot_num, int numa_id, int core_type_id, int max_threads_per_core) { 444 system_topology::initialize(); 445 return allocate_binding_handler_ptr(slot_num, numa_id, core_type_id, max_threads_per_core); 446 } 447 448 void destroy_binding_handler(binding_handler* handler_ptr) { 449 __TBB_ASSERT(deallocate_binding_handler_ptr, "tbbbind loading was not performed"); 450 deallocate_binding_handler_ptr(handler_ptr); 451 } 452 453 void apply_affinity_mask(binding_handler* handler_ptr, int slot_index) { 454 __TBB_ASSERT(slot_index >= 0, "Negative thread index"); 455 __TBB_ASSERT(apply_affinity_ptr, "tbbbind loading was not performed"); 456 apply_affinity_ptr(handler_ptr, slot_index); 457 } 458 459 void restore_affinity_mask(binding_handler* handler_ptr, int slot_index) { 460 __TBB_ASSERT(slot_index >= 0, "Negative thread index"); 461 __TBB_ASSERT(restore_affinity_ptr, "tbbbind loading was not performed"); 462 restore_affinity_ptr(handler_ptr, slot_index); 463 } 464 465 unsigned __TBB_EXPORTED_FUNC numa_node_count() { 466 system_topology::initialize(); 467 return system_topology::numa_nodes_count; 468 } 469 470 void __TBB_EXPORTED_FUNC fill_numa_indices(int* index_array) { 471 system_topology::initialize(); 472 std::memcpy(index_array, system_topology::numa_nodes_indexes, system_topology::numa_nodes_count * sizeof(int)); 473 } 474 475 int __TBB_EXPORTED_FUNC numa_default_concurrency(int node_id) { 476 if (node_id >= 0) { 477 system_topology::initialize(); 478 int result = get_default_concurrency_ptr( 479 node_id, 480 /*core_type*/system_topology::automatic, 481 /*threads_per_core*/system_topology::automatic 482 ); 483 if (result > 0) return result; 484 } 485 return governor::default_num_threads(); 486 } 487 488 unsigned __TBB_EXPORTED_FUNC core_type_count(intptr_t /*reserved*/) { 489 system_topology::initialize(); 490 return system_topology::core_types_count; 491 } 492 493 void __TBB_EXPORTED_FUNC fill_core_type_indices(int* index_array, intptr_t /*reserved*/) { 494 system_topology::initialize(); 495 std::memcpy(index_array, system_topology::core_types_indexes, system_topology::core_types_count * sizeof(int)); 496 } 497 498 void constraints_assertion(d1::constraints c) { 499 bool is_topology_initialized = system_topology::initialization_state == do_once_state::initialized; 500 __TBB_ASSERT_RELEASE(c.max_threads_per_core == system_topology::automatic || c.max_threads_per_core > 0, 501 "Wrong max_threads_per_core constraints field value."); 502 503 auto numa_nodes_begin = system_topology::numa_nodes_indexes; 504 auto numa_nodes_end = system_topology::numa_nodes_indexes + system_topology::numa_nodes_count; 505 __TBB_ASSERT_RELEASE( 506 c.numa_id == system_topology::automatic || 507 (is_topology_initialized && std::find(numa_nodes_begin, numa_nodes_end, c.numa_id) != numa_nodes_end), 508 "The constraints::numa_id value is not known to the library. Use tbb::info::numa_nodes() to get the list of possible values."); 509 510 int* core_types_begin = system_topology::core_types_indexes; 511 int* core_types_end = system_topology::core_types_indexes + system_topology::core_types_count; 512 __TBB_ASSERT_RELEASE(c.core_type == system_topology::automatic || 513 (is_topology_initialized && std::find(core_types_begin, core_types_end, c.core_type) != core_types_end), 514 "The constraints::core_type value is not known to the library. Use tbb::info::core_types() to get the list of possible values."); 515 } 516 517 int __TBB_EXPORTED_FUNC constraints_default_concurrency(const d1::constraints& c, intptr_t /*reserved*/) { 518 constraints_assertion(c); 519 520 if (c.numa_id >= 0 || c.core_type >= 0 || c.max_threads_per_core > 0) { 521 system_topology::initialize(); 522 return get_default_concurrency_ptr(c.numa_id, c.core_type, c.max_threads_per_core); 523 } 524 return governor::default_num_threads(); 525 } 526 527 int __TBB_EXPORTED_FUNC constraints_threads_per_core(const d1::constraints&, intptr_t /*reserved*/) { 528 return system_topology::automatic; 529 } 530 #endif /* __TBB_ARENA_BINDING */ 531 532 } // namespace r1 533 } // namespace detail 534 } // namespace tbb 535