xref: /oneTBB/src/tbb/task_group_context.cpp (revision c4568449)
151c0b2f7Stbbdev /*
2*c4568449SPavel Kumbrasev     Copyright (c) 2005-2023 Intel Corporation
351c0b2f7Stbbdev 
451c0b2f7Stbbdev     Licensed under the Apache License, Version 2.0 (the "License");
551c0b2f7Stbbdev     you may not use this file except in compliance with the License.
651c0b2f7Stbbdev     You may obtain a copy of the License at
751c0b2f7Stbbdev 
851c0b2f7Stbbdev         http://www.apache.org/licenses/LICENSE-2.0
951c0b2f7Stbbdev 
1051c0b2f7Stbbdev     Unless required by applicable law or agreed to in writing, software
1151c0b2f7Stbbdev     distributed under the License is distributed on an "AS IS" BASIS,
1251c0b2f7Stbbdev     WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
1351c0b2f7Stbbdev     See the License for the specific language governing permissions and
1451c0b2f7Stbbdev     limitations under the License.
1551c0b2f7Stbbdev */
1651c0b2f7Stbbdev 
1749e08aacStbbdev #include "oneapi/tbb/detail/_config.h"
1849e08aacStbbdev #include "oneapi/tbb/tbb_allocator.h"
1949e08aacStbbdev #include "oneapi/tbb/task_group.h"
2051c0b2f7Stbbdev #include "governor.h"
2151c0b2f7Stbbdev #include "thread_data.h"
2251c0b2f7Stbbdev #include "scheduler_common.h"
2351c0b2f7Stbbdev #include "itt_notify.h"
2451c0b2f7Stbbdev #include "task_dispatcher.h"
2551c0b2f7Stbbdev 
2651c0b2f7Stbbdev #include <type_traits>
2751c0b2f7Stbbdev 
2851c0b2f7Stbbdev namespace tbb {
2951c0b2f7Stbbdev namespace detail {
3051c0b2f7Stbbdev namespace r1 {
3151c0b2f7Stbbdev 
3251c0b2f7Stbbdev //------------------------------------------------------------------------
3351c0b2f7Stbbdev // tbb_exception_ptr
3451c0b2f7Stbbdev //------------------------------------------------------------------------
allocate()3551c0b2f7Stbbdev tbb_exception_ptr* tbb_exception_ptr::allocate() noexcept {
3651c0b2f7Stbbdev     tbb_exception_ptr* eptr = (tbb_exception_ptr*)allocate_memory(sizeof(tbb_exception_ptr));
3751c0b2f7Stbbdev     return eptr ? new (eptr) tbb_exception_ptr(std::current_exception()) : nullptr;
3851c0b2f7Stbbdev }
3951c0b2f7Stbbdev 
destroy()4051c0b2f7Stbbdev void tbb_exception_ptr::destroy() noexcept {
4151c0b2f7Stbbdev     this->~tbb_exception_ptr();
4251c0b2f7Stbbdev     deallocate_memory(this);
4351c0b2f7Stbbdev }
4451c0b2f7Stbbdev 
throw_self()4551c0b2f7Stbbdev void tbb_exception_ptr::throw_self() {
4651c0b2f7Stbbdev     if (governor::rethrow_exception_broken()) fix_broken_rethrow();
4751c0b2f7Stbbdev     std::rethrow_exception(my_ptr);
4851c0b2f7Stbbdev }
4951c0b2f7Stbbdev 
5051c0b2f7Stbbdev //------------------------------------------------------------------------
5151c0b2f7Stbbdev // task_group_context
5251c0b2f7Stbbdev //------------------------------------------------------------------------
5351c0b2f7Stbbdev 
destroy(d1::task_group_context & ctx)5451c0b2f7Stbbdev void task_group_context_impl::destroy(d1::task_group_context& ctx) {
5535147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
56d86ed7fbStbbdev 
5735147e00SIlya Isaev     if (ctx.my_context_list != nullptr) {
5884efdd2aSAnton Potapov         __TBB_ASSERT(ctx.my_state.load(std::memory_order_relaxed) == d1::task_group_context::state::bound, nullptr);
5951c0b2f7Stbbdev         // The owner can be destroyed at any moment. Access the associate data with caution.
6035147e00SIlya Isaev         ctx.my_context_list->remove(ctx.my_node);
6151c0b2f7Stbbdev     }
6251c0b2f7Stbbdev     d1::cpu_ctl_env* ctl = reinterpret_cast<d1::cpu_ctl_env*>(&ctx.my_cpu_ctl_env);
6351c0b2f7Stbbdev #if _MSC_VER && _MSC_VER <= 1900 && !__INTEL_COMPILER
6451c0b2f7Stbbdev     suppress_unused_warning(ctl);
6551c0b2f7Stbbdev #endif
6651c0b2f7Stbbdev     ctl->~cpu_ctl_env();
6751c0b2f7Stbbdev 
68a080baf9SAlex     auto exception = ctx.my_exception.load(std::memory_order_relaxed);
69a080baf9SAlex     if (exception) {
70a080baf9SAlex         exception->destroy();
71a080baf9SAlex     }
7251c0b2f7Stbbdev     ITT_STACK_DESTROY(ctx.my_itt_caller);
7351c0b2f7Stbbdev 
7451c0b2f7Stbbdev     poison_pointer(ctx.my_parent);
7535147e00SIlya Isaev     poison_pointer(ctx.my_context_list);
7635147e00SIlya Isaev     poison_pointer(ctx.my_node.my_next_node);
7735147e00SIlya Isaev     poison_pointer(ctx.my_node.my_prev_node);
7851c0b2f7Stbbdev     poison_pointer(ctx.my_exception);
7951c0b2f7Stbbdev     poison_pointer(ctx.my_itt_caller);
8035147e00SIlya Isaev 
8184efdd2aSAnton Potapov     ctx.my_state.store(d1::task_group_context::state::dead, std::memory_order_release);
8251c0b2f7Stbbdev }
8351c0b2f7Stbbdev 
initialize(d1::task_group_context & ctx)8451c0b2f7Stbbdev void task_group_context_impl::initialize(d1::task_group_context& ctx) {
8551c0b2f7Stbbdev     ITT_TASK_GROUP(&ctx, ctx.my_name, nullptr);
8651c0b2f7Stbbdev 
8735147e00SIlya Isaev     ctx.my_node.my_next_node = &ctx.my_node;
8835147e00SIlya Isaev     ctx.my_node.my_prev_node = &ctx.my_node;
8951c0b2f7Stbbdev     ctx.my_cpu_ctl_env = 0;
9051c0b2f7Stbbdev     ctx.my_cancellation_requested = 0;
9184efdd2aSAnton Potapov     ctx.my_may_have_children.store(0, std::memory_order_relaxed);
9251c0b2f7Stbbdev     // Set the created state to bound at the first usage.
9384efdd2aSAnton Potapov     ctx.my_state.store(d1::task_group_context::state::created, std::memory_order_relaxed);
9451c0b2f7Stbbdev     ctx.my_parent = nullptr;
9535147e00SIlya Isaev     ctx.my_context_list = nullptr;
96a080baf9SAlex     ctx.my_exception.store(nullptr, std::memory_order_relaxed);
9751c0b2f7Stbbdev     ctx.my_itt_caller = nullptr;
9851c0b2f7Stbbdev 
9951c0b2f7Stbbdev     static_assert(sizeof(d1::cpu_ctl_env) <= sizeof(ctx.my_cpu_ctl_env), "FPU settings storage does not fit to uint64_t");
10051c0b2f7Stbbdev     d1::cpu_ctl_env* ctl = new (&ctx.my_cpu_ctl_env) d1::cpu_ctl_env;
10151c0b2f7Stbbdev     if (ctx.my_traits.fp_settings)
10251c0b2f7Stbbdev         ctl->get_env();
10351c0b2f7Stbbdev }
10451c0b2f7Stbbdev 
register_with(d1::task_group_context & ctx,thread_data * td)10551c0b2f7Stbbdev void task_group_context_impl::register_with(d1::task_group_context& ctx, thread_data* td) {
10635147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
10735147e00SIlya Isaev     __TBB_ASSERT(td, nullptr);
10835147e00SIlya Isaev     ctx.my_context_list = td->my_context_list;
10935147e00SIlya Isaev 
11035147e00SIlya Isaev     ctx.my_context_list->push_front(ctx.my_node);
11151c0b2f7Stbbdev }
11251c0b2f7Stbbdev 
bind_to_impl(d1::task_group_context & ctx,thread_data * td)11351c0b2f7Stbbdev void task_group_context_impl::bind_to_impl(d1::task_group_context& ctx, thread_data* td) {
11435147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
11584efdd2aSAnton Potapov     __TBB_ASSERT(ctx.my_state.load(std::memory_order_relaxed) == d1::task_group_context::state::locked, "The context can be bound only under the lock.");
11651c0b2f7Stbbdev     __TBB_ASSERT(!ctx.my_parent, "Parent is set before initial binding");
11751c0b2f7Stbbdev 
11851c0b2f7Stbbdev     ctx.my_parent = td->my_task_dispatcher->m_execute_data_ext.context;
11935147e00SIlya Isaev     __TBB_ASSERT(ctx.my_parent, nullptr);
12051c0b2f7Stbbdev 
12151c0b2f7Stbbdev     // Inherit FPU settings only if the context has not captured FPU settings yet.
12251c0b2f7Stbbdev     if (!ctx.my_traits.fp_settings)
12351c0b2f7Stbbdev         copy_fp_settings(ctx, *ctx.my_parent);
12451c0b2f7Stbbdev 
12551c0b2f7Stbbdev     // Condition below prevents unnecessary thrashing parent context's cache line
12684efdd2aSAnton Potapov     if (ctx.my_parent->my_may_have_children.load(std::memory_order_relaxed) != d1::task_group_context::may_have_children) {
12784efdd2aSAnton Potapov         ctx.my_parent->my_may_have_children.store(d1::task_group_context::may_have_children, std::memory_order_relaxed); // full fence is below
12851c0b2f7Stbbdev     }
12951c0b2f7Stbbdev     if (ctx.my_parent->my_parent) {
13051c0b2f7Stbbdev         // Even if this context were made accessible for state change propagation
13151c0b2f7Stbbdev         // (by placing store_with_release(td->my_context_list_state.head.my_next, &ctx.my_node)
13251c0b2f7Stbbdev         // above), it still could be missed if state propagation from a grand-ancestor
13351c0b2f7Stbbdev         // was underway concurrently with binding.
13451c0b2f7Stbbdev         // Speculative propagation from the parent together with epoch counters
13551c0b2f7Stbbdev         // detecting possibility of such a race allow to avoid taking locks when
13651c0b2f7Stbbdev         // there is no contention.
13751c0b2f7Stbbdev 
13851c0b2f7Stbbdev         // Acquire fence is necessary to prevent reordering subsequent speculative
13951c0b2f7Stbbdev         // loads of parent state data out of the scope where epoch counters comparison
14051c0b2f7Stbbdev         // can reliably validate it.
14135147e00SIlya Isaev         uintptr_t local_count_snapshot = ctx.my_parent->my_context_list->epoch.load(std::memory_order_acquire);
14251c0b2f7Stbbdev         // Speculative propagation of parent's state. The speculation will be
14351c0b2f7Stbbdev         // validated by the epoch counters check further on.
14451c0b2f7Stbbdev         ctx.my_cancellation_requested.store(ctx.my_parent->my_cancellation_requested.load(std::memory_order_relaxed), std::memory_order_relaxed);
14551c0b2f7Stbbdev         register_with(ctx, td); // Issues full fence
14651c0b2f7Stbbdev 
14751c0b2f7Stbbdev         // If no state propagation was detected by the following condition, the above
14851c0b2f7Stbbdev         // full fence guarantees that the parent had correct state during speculative
14951c0b2f7Stbbdev         // propagation before the fence. Otherwise the propagation from parent is
15051c0b2f7Stbbdev         // repeated under the lock.
15151c0b2f7Stbbdev         if (local_count_snapshot != the_context_state_propagation_epoch.load(std::memory_order_relaxed)) {
15251c0b2f7Stbbdev             // Another thread may be propagating state change right now. So resort to lock.
15351c0b2f7Stbbdev             context_state_propagation_mutex_type::scoped_lock lock(the_context_state_propagation_mutex);
15451c0b2f7Stbbdev             ctx.my_cancellation_requested.store(ctx.my_parent->my_cancellation_requested.load(std::memory_order_relaxed), std::memory_order_relaxed);
15551c0b2f7Stbbdev         }
15651c0b2f7Stbbdev     } else {
15751c0b2f7Stbbdev         register_with(ctx, td); // Issues full fence
15851c0b2f7Stbbdev         // As we do not have grand-ancestors, concurrent state propagation (if any)
15951c0b2f7Stbbdev         // may originate only from the parent context, and thus it is safe to directly
16051c0b2f7Stbbdev         // copy the state from it.
16151c0b2f7Stbbdev         ctx.my_cancellation_requested.store(ctx.my_parent->my_cancellation_requested.load(std::memory_order_relaxed), std::memory_order_relaxed);
16251c0b2f7Stbbdev     }
16351c0b2f7Stbbdev }
16451c0b2f7Stbbdev 
bind_to(d1::task_group_context & ctx,thread_data * td)16551c0b2f7Stbbdev void task_group_context_impl::bind_to(d1::task_group_context& ctx, thread_data* td) {
16684efdd2aSAnton Potapov     d1::task_group_context::state state = ctx.my_state.load(std::memory_order_acquire);
16784efdd2aSAnton Potapov     if (state <= d1::task_group_context::state::locked) {
16884efdd2aSAnton Potapov         if (state == d1::task_group_context::state::created &&
16951c0b2f7Stbbdev #if defined(__INTEL_COMPILER) && __INTEL_COMPILER <= 1910
17084efdd2aSAnton Potapov             ((std::atomic<typename std::underlying_type<d1::task_group_context::state>::type>&)ctx.my_state).compare_exchange_strong(
17184efdd2aSAnton Potapov                 (typename std::underlying_type<d1::task_group_context::state>::type&)state,
17284efdd2aSAnton Potapov                 (typename std::underlying_type<d1::task_group_context::state>::type)d1::task_group_context::state::locked)
17351c0b2f7Stbbdev #else
17484efdd2aSAnton Potapov             ctx.my_state.compare_exchange_strong(state, d1::task_group_context::state::locked)
17551c0b2f7Stbbdev #endif
17651c0b2f7Stbbdev             ) {
177b15aabb3Stbbdev             // If we are in the outermost task dispatch loop of an external thread, then
17851c0b2f7Stbbdev             // there is nothing to bind this context to, and we skip the binding part
17951c0b2f7Stbbdev             // treating the context as isolated.
18051c0b2f7Stbbdev             __TBB_ASSERT(td->my_task_dispatcher->m_execute_data_ext.context != nullptr, nullptr);
18184efdd2aSAnton Potapov             d1::task_group_context::state release_state{};
18251c0b2f7Stbbdev             if (td->my_task_dispatcher->m_execute_data_ext.context == td->my_arena->my_default_ctx || !ctx.my_traits.bound) {
18351c0b2f7Stbbdev                 if (!ctx.my_traits.fp_settings) {
18451c0b2f7Stbbdev                     copy_fp_settings(ctx, *td->my_arena->my_default_ctx);
18551c0b2f7Stbbdev                 }
18684efdd2aSAnton Potapov                 release_state = d1::task_group_context::state::isolated;
18751c0b2f7Stbbdev             } else {
18851c0b2f7Stbbdev                 bind_to_impl(ctx, td);
18984efdd2aSAnton Potapov                 release_state = d1::task_group_context::state::bound;
19051c0b2f7Stbbdev             }
19151c0b2f7Stbbdev             ITT_STACK_CREATE(ctx.my_itt_caller);
19284efdd2aSAnton Potapov             ctx.my_state.store(release_state, std::memory_order_release);
19351c0b2f7Stbbdev         }
19484efdd2aSAnton Potapov         spin_wait_while_eq(ctx.my_state, d1::task_group_context::state::locked);
19551c0b2f7Stbbdev     }
19684efdd2aSAnton Potapov     __TBB_ASSERT(ctx.my_state.load(std::memory_order_relaxed) != d1::task_group_context::state::created, nullptr);
19784efdd2aSAnton Potapov     __TBB_ASSERT(ctx.my_state.load(std::memory_order_relaxed) != d1::task_group_context::state::locked, nullptr);
19851c0b2f7Stbbdev }
19951c0b2f7Stbbdev 
propagate_task_group_state(d1::task_group_context & ctx,std::atomic<std::uint32_t> d1::task_group_context::* mptr_state,d1::task_group_context & src,std::uint32_t new_state)200*c4568449SPavel Kumbrasev void task_group_context_impl::propagate_task_group_state(d1::task_group_context& ctx, std::atomic<std::uint32_t> d1::task_group_context::* mptr_state, d1::task_group_context& src, std::uint32_t new_state) {
20135147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
20235147e00SIlya Isaev     /*  1. if ((ctx.*mptr_state).load(std::memory_order_relaxed) == new_state):
20335147e00SIlya Isaev             Nothing to do, whether descending from "src" or not, so no need to scan.
20435147e00SIlya Isaev             Hopefully this happens often thanks to earlier invocations.
20535147e00SIlya Isaev             This optimization is enabled by LIFO order in the context lists:
20635147e00SIlya Isaev                 - new contexts are bound to the beginning of lists;
20735147e00SIlya Isaev                 - descendants are newer than ancestors;
20835147e00SIlya Isaev                 - earlier invocations are therefore likely to "paint" long chains.
20935147e00SIlya Isaev         2. if (&ctx != &src):
21035147e00SIlya Isaev             This clause is disjunct from the traversal below, which skips src entirely.
21135147e00SIlya Isaev             Note that src.*mptr_state is not necessarily still equal to new_state (another thread may have changed it again).
21235147e00SIlya Isaev             Such interference is probably not frequent enough to aim for optimisation by writing new_state again (to make the other thread back down).
21335147e00SIlya Isaev             Letting the other thread prevail may also be fairer.
21435147e00SIlya Isaev     */
21535147e00SIlya Isaev     if ((ctx.*mptr_state).load(std::memory_order_relaxed) != new_state && &ctx != &src) {
21635147e00SIlya Isaev         for (d1::task_group_context* ancestor = ctx.my_parent; ancestor != nullptr; ancestor = ancestor->my_parent) {
21751c0b2f7Stbbdev             if (ancestor == &src) {
21851c0b2f7Stbbdev                 for (d1::task_group_context* c = &ctx; c != ancestor; c = c->my_parent)
21951c0b2f7Stbbdev                     (c->*mptr_state).store(new_state, std::memory_order_relaxed);
22051c0b2f7Stbbdev                 break;
22151c0b2f7Stbbdev             }
22251c0b2f7Stbbdev         }
22351c0b2f7Stbbdev     }
22451c0b2f7Stbbdev }
22551c0b2f7Stbbdev 
cancel_group_execution(d1::task_group_context & ctx)22651c0b2f7Stbbdev bool task_group_context_impl::cancel_group_execution(d1::task_group_context& ctx) {
22735147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
22851c0b2f7Stbbdev     __TBB_ASSERT(ctx.my_cancellation_requested.load(std::memory_order_relaxed) <= 1, "The cancellation state can be either 0 or 1");
22951c0b2f7Stbbdev     if (ctx.my_cancellation_requested.load(std::memory_order_relaxed) || ctx.my_cancellation_requested.exchange(1)) {
23051c0b2f7Stbbdev         // This task group and any descendants have already been canceled.
23151c0b2f7Stbbdev         // (A newly added descendant would inherit its parent's ctx.my_cancellation_requested,
23251c0b2f7Stbbdev         // not missing out on any cancellation still being propagated, and a context cannot be uncanceled.)
23351c0b2f7Stbbdev         return false;
23451c0b2f7Stbbdev     }
235*c4568449SPavel Kumbrasev     governor::get_thread_data()->my_arena->my_threading_control->propagate_task_group_state(&d1::task_group_context::my_cancellation_requested, ctx, uint32_t(1));
23651c0b2f7Stbbdev     return true;
23751c0b2f7Stbbdev }
23851c0b2f7Stbbdev 
is_group_execution_cancelled(const d1::task_group_context & ctx)23951c0b2f7Stbbdev bool task_group_context_impl::is_group_execution_cancelled(const d1::task_group_context& ctx) {
24051c0b2f7Stbbdev     return ctx.my_cancellation_requested.load(std::memory_order_relaxed) != 0;
24151c0b2f7Stbbdev }
24251c0b2f7Stbbdev 
24351c0b2f7Stbbdev // IMPORTANT: It is assumed that this method is not used concurrently!
reset(d1::task_group_context & ctx)24451c0b2f7Stbbdev void task_group_context_impl::reset(d1::task_group_context& ctx) {
24535147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
24651c0b2f7Stbbdev     //! TODO: Add assertion that this context does not have children
24751c0b2f7Stbbdev     // No fences are necessary since this context can be accessed from another thread
24851c0b2f7Stbbdev     // only after stealing happened (which means necessary fences were used).
249a080baf9SAlex 
250a080baf9SAlex     auto exception = ctx.my_exception.load(std::memory_order_relaxed);
251a080baf9SAlex     if (exception) {
252a080baf9SAlex         exception->destroy();
253a080baf9SAlex         ctx.my_exception.store(nullptr, std::memory_order_relaxed);
25451c0b2f7Stbbdev     }
25551c0b2f7Stbbdev     ctx.my_cancellation_requested = 0;
25651c0b2f7Stbbdev }
25751c0b2f7Stbbdev 
25851c0b2f7Stbbdev // IMPORTANT: It is assumed that this method is not used concurrently!
capture_fp_settings(d1::task_group_context & ctx)25951c0b2f7Stbbdev void task_group_context_impl::capture_fp_settings(d1::task_group_context& ctx) {
26035147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
26151c0b2f7Stbbdev     //! TODO: Add assertion that this context does not have children
26251c0b2f7Stbbdev     // No fences are necessary since this context can be accessed from another thread
26351c0b2f7Stbbdev     // only after stealing happened (which means necessary fences were used).
26451c0b2f7Stbbdev     d1::cpu_ctl_env* ctl = reinterpret_cast<d1::cpu_ctl_env*>(&ctx.my_cpu_ctl_env);
26551c0b2f7Stbbdev     if (!ctx.my_traits.fp_settings) {
26651c0b2f7Stbbdev         ctl = new (&ctx.my_cpu_ctl_env) d1::cpu_ctl_env;
26751c0b2f7Stbbdev         ctx.my_traits.fp_settings = true;
26851c0b2f7Stbbdev     }
26951c0b2f7Stbbdev     ctl->get_env();
27051c0b2f7Stbbdev }
27151c0b2f7Stbbdev 
copy_fp_settings(d1::task_group_context & ctx,const d1::task_group_context & src)27251c0b2f7Stbbdev void task_group_context_impl::copy_fp_settings(d1::task_group_context& ctx, const d1::task_group_context& src) {
27335147e00SIlya Isaev     __TBB_ASSERT(!is_poisoned(ctx.my_context_list), nullptr);
27451c0b2f7Stbbdev     __TBB_ASSERT(!ctx.my_traits.fp_settings, "The context already has FPU settings.");
27551c0b2f7Stbbdev     __TBB_ASSERT(src.my_traits.fp_settings, "The source context does not have FPU settings.");
27651c0b2f7Stbbdev 
27751c0b2f7Stbbdev     const d1::cpu_ctl_env* src_ctl = reinterpret_cast<const d1::cpu_ctl_env*>(&src.my_cpu_ctl_env);
27851c0b2f7Stbbdev     new (&ctx.my_cpu_ctl_env) d1::cpu_ctl_env(*src_ctl);
27951c0b2f7Stbbdev     ctx.my_traits.fp_settings = true;
28051c0b2f7Stbbdev }
28151c0b2f7Stbbdev 
28251c0b2f7Stbbdev /*
28351c0b2f7Stbbdev     Comments:
28451c0b2f7Stbbdev 
28551c0b2f7Stbbdev 1.  The premise of the cancellation support implementation is that cancellations are
28651c0b2f7Stbbdev     not part of the hot path of the program execution. Therefore all changes in its
28751c0b2f7Stbbdev     implementation in order to reduce the overhead of the cancellation control flow
28851c0b2f7Stbbdev     should be done only in ways that do not increase overhead of the normal execution.
28951c0b2f7Stbbdev 
29051c0b2f7Stbbdev     In general, contexts are used by all threads and their descendants are created in
29151c0b2f7Stbbdev     different threads as well. In order to minimize impact of the cross-thread tree
29251c0b2f7Stbbdev     maintenance (first of all because of the synchronization), the tree of contexts
29351c0b2f7Stbbdev     is split into pieces, each of which is handled by a single thread. Such pieces
29451c0b2f7Stbbdev     are represented as lists of contexts, members of which are contexts that were
29551c0b2f7Stbbdev     bound to their parents in the given thread.
29651c0b2f7Stbbdev 
29751c0b2f7Stbbdev     The context tree maintenance and cancellation propagation algorithms are designed
29851c0b2f7Stbbdev     in such a manner that cross-thread access to a context list will take place only
29951c0b2f7Stbbdev     when cancellation signal is sent (by user or when an exception happens), and
30051c0b2f7Stbbdev     synchronization is necessary only then. Thus the normal execution flow (without
30151c0b2f7Stbbdev     exceptions and cancellation) remains free from any synchronization done on
30251c0b2f7Stbbdev     behalf of exception handling and cancellation support.
30351c0b2f7Stbbdev 
30451c0b2f7Stbbdev 2.  Consider parallel cancellations at the different levels of the context tree:
30551c0b2f7Stbbdev 
30651c0b2f7Stbbdev         Ctx1 <- Cancelled by Thread1            |- Thread2 started processing
30751c0b2f7Stbbdev          |                                      |
30851c0b2f7Stbbdev         Ctx2                                    |- Thread1 started processing
30951c0b2f7Stbbdev          |                                   T1 |- Thread2 finishes and syncs up local counters
31051c0b2f7Stbbdev         Ctx3 <- Cancelled by Thread2            |
31151c0b2f7Stbbdev          |                                      |- Ctx5 is bound to Ctx2
31251c0b2f7Stbbdev         Ctx4                                    |
31351c0b2f7Stbbdev                                              T2 |- Thread1 reaches Ctx2
31451c0b2f7Stbbdev 
31551c0b2f7Stbbdev     Thread-propagator of each cancellation increments global counter. However the thread
31651c0b2f7Stbbdev     propagating the cancellation from the outermost context (Thread1) may be the last
31751c0b2f7Stbbdev     to finish. Which means that the local counters may be synchronized earlier (by Thread2,
31851c0b2f7Stbbdev     at Time1) than it propagated cancellation into Ctx2 (at time Time2). If a new context
31951c0b2f7Stbbdev     (Ctx5) is created and bound to Ctx2 between Time1 and Time2, checking its parent only
32051c0b2f7Stbbdev     (Ctx2) may result in cancellation request being lost.
32151c0b2f7Stbbdev 
32251c0b2f7Stbbdev     This issue is solved by doing the whole propagation under the lock.
32351c0b2f7Stbbdev 
32451c0b2f7Stbbdev     If we need more concurrency while processing parallel cancellations, we could try
32551c0b2f7Stbbdev     the following modification of the propagation algorithm:
32651c0b2f7Stbbdev 
32751c0b2f7Stbbdev     advance global counter and remember it
32851c0b2f7Stbbdev     for each thread:
32951c0b2f7Stbbdev         scan thread's list of contexts
33051c0b2f7Stbbdev     for each thread:
33151c0b2f7Stbbdev         sync up its local counter only if the global counter has not been changed
33251c0b2f7Stbbdev 
33351c0b2f7Stbbdev     However this version of the algorithm requires more analysis and verification.
33451c0b2f7Stbbdev */
33551c0b2f7Stbbdev 
initialize(d1::task_group_context & ctx)33651c0b2f7Stbbdev void __TBB_EXPORTED_FUNC initialize(d1::task_group_context& ctx) {
33751c0b2f7Stbbdev     task_group_context_impl::initialize(ctx);
33851c0b2f7Stbbdev }
destroy(d1::task_group_context & ctx)33951c0b2f7Stbbdev void __TBB_EXPORTED_FUNC destroy(d1::task_group_context& ctx) {
34051c0b2f7Stbbdev     task_group_context_impl::destroy(ctx);
34151c0b2f7Stbbdev }
reset(d1::task_group_context & ctx)34251c0b2f7Stbbdev void __TBB_EXPORTED_FUNC reset(d1::task_group_context& ctx) {
34351c0b2f7Stbbdev     task_group_context_impl::reset(ctx);
34451c0b2f7Stbbdev }
cancel_group_execution(d1::task_group_context & ctx)34551c0b2f7Stbbdev bool __TBB_EXPORTED_FUNC cancel_group_execution(d1::task_group_context& ctx) {
34651c0b2f7Stbbdev     return task_group_context_impl::cancel_group_execution(ctx);
34751c0b2f7Stbbdev }
is_group_execution_cancelled(d1::task_group_context & ctx)34851c0b2f7Stbbdev bool __TBB_EXPORTED_FUNC is_group_execution_cancelled(d1::task_group_context& ctx) {
34951c0b2f7Stbbdev     return task_group_context_impl::is_group_execution_cancelled(ctx);
35051c0b2f7Stbbdev }
capture_fp_settings(d1::task_group_context & ctx)35151c0b2f7Stbbdev void __TBB_EXPORTED_FUNC capture_fp_settings(d1::task_group_context& ctx) {
35251c0b2f7Stbbdev     task_group_context_impl::capture_fp_settings(ctx);
35351c0b2f7Stbbdev }
35451c0b2f7Stbbdev 
35551c0b2f7Stbbdev } // namespace r1
35651c0b2f7Stbbdev } // namespace detail
35751c0b2f7Stbbdev } // namespace tbb
35851c0b2f7Stbbdev 
359