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| namespace tf { | |
| // Function: make_find_if_task | |
| template <typename B, typename E, typename T, typename UOP, typename P = DefaultPartitioner> | |
| auto make_find_if_task(B first, E last, T& result, UOP predicate, P part = P()) { | |
| using namespace std::string_literals; | |
| using B_t = std::decay_t<unwrap_ref_decay_t<B>>; | |
| using E_t = std::decay_t<unwrap_ref_decay_t<E>>; | |
| return [=, &result] (Runtime& rt) mutable { | |
| // fetch the stateful values | |
| B_t beg = first; | |
| E_t end = last; | |
| size_t W = rt.executor().num_workers(); | |
| size_t N = std::distance(beg, end); | |
| // only myself - no need to spawn another graph | |
| if(W <= 1 || N <= part.chunk_size()) { | |
| part([=, &result]() mutable { result = std::find_if(beg, end, predicate); })(); | |
| return; | |
| } | |
| PreemptionGuard preemption_guard(rt); | |
| // use no more workers than the iteration count | |
| if(N < W) { | |
| W = N; | |
| } | |
| auto mutex = std::make_shared<std::mutex>(); | |
| const auto origin = beg; | |
| result = std::next(origin, N); | |
| // static partitioner | |
| if constexpr(part.type() == PartitionerType::STATIC) { | |
| for(size_t w=0, curr_b=0; w<W && curr_b < N;) { | |
| auto chunk_size = part.adjusted_chunk_size(N, W, w); | |
| auto task = part([=, &result] () mutable { | |
| part.loop_until(N, W, curr_b, chunk_size, | |
| [=, &result, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable { | |
| std::advance(beg, part_b - prev_e); | |
| for(size_t x = part_b; x<part_e; x++) { | |
| if(predicate(*beg++)) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(size_t offset = std::distance(origin, result); x < offset) { | |
| result = std::next(origin, x); | |
| } | |
| return true; | |
| } | |
| } | |
| prev_e = part_e; | |
| return false; | |
| } | |
| ); | |
| }); | |
| (++w == W || (curr_b += chunk_size) >= N) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| // dynamic partitioner | |
| else { | |
| auto next = std::make_shared<std::atomic<size_t>>(0); | |
| for(size_t w=0; w<W;) { | |
| auto task = part([=, &result] () mutable { | |
| part.loop_until(N, W, *next, | |
| [=, &result, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable { | |
| std::advance(beg, part_b - prev_e); | |
| for(size_t x = part_b; x<part_e; x++) { | |
| if(predicate(*beg++)) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(size_t offset = std::distance(origin, result); x < offset) { | |
| result = std::next(origin, x); | |
| } | |
| return true; | |
| } | |
| } | |
| prev_e = part_e; | |
| return false; | |
| } | |
| ); | |
| }); | |
| (++w == W) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| }; | |
| } | |
| // Function: make_find_if_not_task | |
| template <typename B, typename E, typename T, typename UOP, typename P = DefaultPartitioner> | |
| auto make_find_if_not_task(B first, E last, T& result, UOP predicate, P part = P()) { | |
| using namespace std::string_literals; | |
| using B_t = std::decay_t<unwrap_ref_decay_t<B>>; | |
| using E_t = std::decay_t<unwrap_ref_decay_t<E>>; | |
| return [=, &result] (Runtime& rt) mutable { | |
| // fetch the stateful values | |
| B_t beg = first; | |
| E_t end = last; | |
| size_t W = rt.executor().num_workers(); | |
| size_t N = std::distance(beg, end); | |
| // only myself - no need to spawn another graph | |
| if(W <= 1 || N <= part.chunk_size()) { | |
| part([=, &result] () mutable { result = std::find_if_not(beg, end, predicate); })(); | |
| return; | |
| } | |
| PreemptionGuard preemption_guard(rt); | |
| if(N < W) { | |
| W = N; | |
| } | |
| auto mutex = std::make_shared<std::mutex>(); | |
| const auto origin = beg; | |
| result = std::next(origin, N); | |
| // static partitioner | |
| if constexpr(part.type() == PartitionerType::STATIC) { | |
| for(size_t w=0, curr_b=0; w<W && curr_b < N;) { | |
| auto chunk_size = part.adjusted_chunk_size(N, W, w); | |
| auto task = part([=, &result] () mutable { | |
| part.loop_until(N, W, curr_b, chunk_size, | |
| [=, &result, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable { | |
| std::advance(beg, part_b - prev_e); | |
| for(size_t x = part_b; x<part_e; x++) { | |
| if(!predicate(*beg++)) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(size_t offset = std::distance(origin, result); x < offset) { | |
| result = std::next(origin, x); | |
| } | |
| return true; | |
| } | |
| } | |
| prev_e = part_e; | |
| return false; | |
| } | |
| ); | |
| }); | |
| (++w == W || (curr_b += chunk_size) >= N) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| // dynamic partitioner | |
| else { | |
| auto next = std::make_shared<std::atomic<size_t>>(0); | |
| for(size_t w=0; w<W;) { | |
| auto task = part([=, &result] () mutable { | |
| part.loop_until(N, W, *next, | |
| [=, &result, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable { | |
| std::advance(beg, part_b - prev_e); | |
| for(size_t x = part_b; x<part_e; x++) { | |
| if(!predicate(*beg++)) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(size_t offset = std::distance(origin, result); x < offset) { | |
| result = std::next(origin, x); | |
| } | |
| return true; | |
| } | |
| } | |
| prev_e = part_e; | |
| return false; | |
| } | |
| ); | |
| }); | |
| (++w == W) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| }; | |
| } | |
| // Function: make_min_element_task | |
| template <typename B, typename E, typename T, typename C, typename P = DefaultPartitioner> | |
| auto make_min_element_task(B first, E last, T& result, C comp, P part = P()) { | |
| using namespace std::string_literals; | |
| using B_t = std::decay_t<unwrap_ref_decay_t<B>>; | |
| using E_t = std::decay_t<unwrap_ref_decay_t<E>>; | |
| return [=, &result] (Runtime& rt) mutable { | |
| // fetch the iterator values | |
| B_t beg = first; | |
| E_t end = last; | |
| size_t W = rt.executor().num_workers(); | |
| size_t N = std::distance(beg, end); | |
| // only myself - no need to spawn another graph | |
| if(W <= 1 || N <= part.chunk_size()) { | |
| part([=, &result] () mutable { result = std::min_element(beg, end, comp); })(); | |
| return; | |
| } | |
| PreemptionGuard preemption_guard(rt); | |
| if(N < W) { | |
| W = N; | |
| } | |
| auto mutex = std::make_shared<std::mutex>(); | |
| // initialize the result to the first element | |
| result = beg++; | |
| N--; | |
| // static partitioner | |
| if constexpr(part.type() == PartitionerType::STATIC) { | |
| for(size_t w=0, curr_b=0; w<W && curr_b < N;) { | |
| // we force chunk size to be at least two because the temporary | |
| // variable sum needs to avoid copy at the first step | |
| auto chunk_size = std::max(size_t{2}, part.adjusted_chunk_size(N, W, w)); | |
| auto task = part([=, &result] () mutable { | |
| std::advance(beg, curr_b); | |
| if(N - curr_b == 1) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*beg, *result)) { | |
| result = beg; | |
| } | |
| return; | |
| } | |
| auto beg1 = beg++; | |
| auto beg2 = beg++; | |
| T smallest = comp(*beg1, *beg2) ? beg1 : beg2; | |
| // loop reduce | |
| part.loop(N, W, curr_b, chunk_size, | |
| [=, &smallest, prev_e=curr_b+2](size_t part_b, size_t part_e) mutable { | |
| if(part_b > prev_e) { | |
| std::advance(beg, part_b - prev_e); | |
| } | |
| else { | |
| part_b = prev_e; | |
| } | |
| for(size_t x=part_b; x<part_e; x++, beg++) { | |
| if(comp(*beg, *smallest)) { | |
| smallest = beg; | |
| } | |
| } | |
| prev_e = part_e; | |
| } | |
| ); | |
| // final reduce | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*smallest, *result)) { | |
| result = smallest; | |
| } | |
| }); | |
| (++w == W || (curr_b += chunk_size) >= N) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| // dynamic partitioner | |
| else { | |
| auto next = std::make_shared<std::atomic<size_t>>(0); | |
| for(size_t w=0; w<W;) { | |
| auto task = part([=, &result] () mutable { | |
| // pre-reduce | |
| size_t s0 = next->fetch_add(2, std::memory_order_relaxed); | |
| if(s0 >= N) { | |
| return; | |
| } | |
| std::advance(beg, s0); | |
| if(N - s0 == 1) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*beg, *result)) { | |
| result = beg; | |
| } | |
| return; | |
| } | |
| auto beg1 = beg++; | |
| auto beg2 = beg++; | |
| T smallest = comp(*beg1, *beg2) ? beg1 : beg2; | |
| // loop reduce | |
| part.loop(N, W, *next, | |
| [=, &smallest, prev_e=s0+2](size_t part_b, size_t part_e) mutable { | |
| std::advance(beg, part_b - prev_e); | |
| for(size_t x=part_b; x<part_e; x++, beg++) { | |
| if(comp(*beg, *smallest)) { | |
| smallest = beg; | |
| } | |
| } | |
| prev_e = part_e; | |
| } | |
| ); | |
| // final reduce | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*smallest, *result)) { | |
| result = smallest; | |
| } | |
| }); | |
| (++w == W) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| }; | |
| } | |
| // Function: make_max_element_task | |
| template <typename B, typename E, typename T, typename C, typename P = DefaultPartitioner> | |
| auto make_max_element_task(B first, E last, T& result, C comp, P part = P()) { | |
| using namespace std::string_literals; | |
| using B_t = std::decay_t<unwrap_ref_decay_t<B>>; | |
| using E_t = std::decay_t<unwrap_ref_decay_t<E>>; | |
| return [=, &result] (Runtime& rt) mutable { | |
| // fetch the iterator values | |
| B_t beg = first; | |
| E_t end = last; | |
| size_t W = rt.executor().num_workers(); | |
| size_t N = std::distance(beg, end); | |
| // only myself - no need to spawn another graph | |
| if(W <= 1 || N <= part.chunk_size()) { | |
| part([=, &result] () mutable { result = std::max_element(beg, end, comp); })(); | |
| return; | |
| } | |
| PreemptionGuard preemption_guard(rt); | |
| if(N < W) { | |
| W = N; | |
| } | |
| auto mutex = std::make_shared<std::mutex>(); | |
| // initialize the result to the first element | |
| result = beg++; | |
| N--; | |
| // static partitioner | |
| if constexpr(part.type() == PartitionerType::STATIC) { | |
| for(size_t w=0, curr_b=0; w<W && curr_b < N;) { | |
| // we force chunk size to be at least two because the temporary | |
| // variable sum needs to avoid copy at the first step | |
| auto chunk_size = std::max(size_t{2}, part.adjusted_chunk_size(N, W, w)); | |
| auto task = part([=, &result] () mutable { | |
| std::advance(beg, curr_b); | |
| if(N - curr_b == 1) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*result, *beg)) { | |
| result = beg; | |
| } | |
| return; | |
| } | |
| auto beg1 = beg++; | |
| auto beg2 = beg++; | |
| T largest = comp(*beg1, *beg2) ? beg2 : beg1; | |
| // loop reduce | |
| part.loop(N, W, curr_b, chunk_size, | |
| [=, &largest, prev_e=curr_b+2](size_t part_b, size_t part_e) mutable { | |
| if(part_b > prev_e) { | |
| std::advance(beg, part_b - prev_e); | |
| } | |
| else { | |
| part_b = prev_e; | |
| } | |
| for(size_t x=part_b; x<part_e; x++, beg++) { | |
| if(comp(*largest, *beg)) { | |
| largest = beg; | |
| } | |
| } | |
| prev_e = part_e; | |
| } | |
| ); | |
| // final reduce | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*result, *largest)) { | |
| result = largest; | |
| } | |
| }); | |
| (++w == W || (curr_b += chunk_size) >= N) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| // dynamic partitioner | |
| else { | |
| auto next = std::make_shared<std::atomic<size_t>>(0); | |
| for(size_t w=0; w<W;) { | |
| auto task = part([=, &result] () mutable { | |
| // pre-reduce | |
| size_t s0 = next->fetch_add(2, std::memory_order_relaxed); | |
| if(s0 >= N) { | |
| return; | |
| } | |
| std::advance(beg, s0); | |
| if(N - s0 == 1) { | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*result, *beg)) { | |
| result = beg; | |
| } | |
| return; | |
| } | |
| auto beg1 = beg++; | |
| auto beg2 = beg++; | |
| T largest = comp(*beg1, *beg2) ? beg2 : beg1; | |
| // loop reduce | |
| part.loop(N, W, *next, | |
| [=, &largest, prev_e=s0+2](size_t part_b, size_t part_e) mutable { | |
| std::advance(beg, part_b - prev_e); | |
| for(size_t x=part_b; x<part_e; x++, beg++) { | |
| if(comp(*largest, *beg)) { | |
| largest = beg; | |
| } | |
| } | |
| prev_e = part_e; | |
| } | |
| ); | |
| // final reduce | |
| std::lock_guard<std::mutex> lock(*mutex); | |
| if(comp(*result, *largest)) { | |
| result = largest; | |
| } | |
| }); | |
| (++w == W) ? task() : rt.silent_async(task); | |
| } | |
| } | |
| }; | |
| } | |
| // Function: find_if | |
| template <typename B, typename E, typename T, typename UOP, typename P> | |
| Task tf::FlowBuilder::find_if(B first, E last, T& result, UOP predicate, P part) { | |
| return emplace(make_find_if_task(first, last, result, predicate, part)); | |
| } | |
| // Function: find_if_not | |
| template <typename B, typename E, typename T, typename UOP, typename P> | |
| Task tf::FlowBuilder::find_if_not(B first, E last, T& result, UOP predicate, P part) { | |
| return emplace(make_find_if_not_task(first, last, result, predicate, part)); | |
| } | |
| // ---------------------------------------------------------------------------- | |
| // min_element | |
| // ---------------------------------------------------------------------------- | |
| // Function: min_element | |
| template <typename B, typename E, typename T, typename C, typename P> | |
| Task FlowBuilder::min_element(B first, E last, T& result, C comp, P part) { | |
| return emplace(make_min_element_task(first, last, result, comp, part)); | |
| } | |
| // ---------------------------------------------------------------------------- | |
| // max_element | |
| // ---------------------------------------------------------------------------- | |
| // Function: max_element | |
| template <typename B, typename E, typename T, typename C, typename P> | |
| Task FlowBuilder::max_element(B first, E last, T& result, C comp, P part) { | |
| return emplace(make_max_element_task(first, last, result, comp, part)); | |
| } | |
| } // end of namespace tf ----------------------------------------------------- | |