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#pragma once
#include "../taskflow.hpp"
namespace tf {
// Function: make_transform_task
template <
typename B, typename E, typename O, typename C, typename P = DefaultPartitioner,
std::enable_if_t<is_partitioner_v<std::decay_t<P>>, void>* = nullptr
>
auto make_transform_task(B first1, E last1, O d_first, C c, 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>>;
using O_t = std::decay_t<unwrap_ref_decay_t<O>>;
return [=] (Runtime& rt) mutable {
// fetch the stateful values
B_t beg = first1;
E_t end = last1;
O_t d_beg = d_first;
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([=]() mutable { std::transform(beg, end, d_beg, c); })();
return;
}
PreemptionGuard preemption_guard(rt);
if(N < W) {
W = 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([=] () mutable {
part.loop(N, W, curr_b, chunk_size, [=, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable {
std::advance(beg, part_b - prev_e);
std::advance(d_beg, part_b - prev_e);
for(size_t x = part_b; x<part_e; x++) {
*d_beg++ = c(*beg++);
}
prev_e = part_e;
});
});
(++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([=] () mutable {
part.loop(N, W, *next, [=, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable {
std::advance(beg, part_b - prev_e);
std::advance(d_beg, part_b - prev_e);
for(size_t x = part_b; x<part_e; x++) {
*d_beg++ = c(*beg++);
}
prev_e = part_e;
});
});
(++w == W) ? task() : rt.silent_async(task);
}
}
};
}
// Function: make_transform_task
template <
typename B1, typename E1, typename B2, typename O, typename C, typename P = DefaultPartitioner,
std::enable_if_t<!is_partitioner_v<std::decay_t<C>>, void>* = nullptr
>
auto make_transform_task(B1 first1, E1 last1, B2 first2, O d_first, C c, P part = P()) {
using namespace std::string_literals;
using B1_t = std::decay_t<unwrap_ref_decay_t<B1>>;
using E1_t = std::decay_t<unwrap_ref_decay_t<E1>>;
using B2_t = std::decay_t<unwrap_ref_decay_t<B2>>;
using O_t = std::decay_t<unwrap_ref_decay_t<O>>;
return [=] (Runtime& rt) mutable {
// fetch the stateful values
B1_t beg1 = first1;
E1_t end1 = last1;
B2_t beg2 = first2;
O_t d_beg = d_first;
size_t W = rt.executor().num_workers();
size_t N = std::distance(beg1, end1);
// only myself - no need to spawn another graph
if(W <= 1 || N <= part.chunk_size()) {
part([=]() mutable { std::transform(beg1, end1, beg2, d_beg, c); })();
return;
}
PreemptionGuard preemption_guard(rt);
if(N < W) {
W = 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([=] () mutable {
part.loop(N, W, curr_b, chunk_size, [=, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable {
std::advance(beg1, part_b - prev_e);
std::advance(beg2, part_b - prev_e);
std::advance(d_beg, part_b - prev_e);
for(size_t x = part_b; x<part_e; x++) {
*d_beg++ = c(*beg1++, *beg2++);
}
prev_e = part_e;
});
});
(++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([=] () mutable {
part.loop(N, W, *next, [=, prev_e=size_t{0}](size_t part_b, size_t part_e) mutable {
std::advance(beg1, part_b - prev_e);
std::advance(beg2, part_b - prev_e);
std::advance(d_beg, part_b - prev_e);
for(size_t x = part_b; x<part_e; x++) {
*d_beg++ = c(*beg1++, *beg2++);
}
prev_e = part_e;
});
});
(++w == W) ? task() : rt.silent_async(task);
}
}
};
}
// ----------------------------------------------------------------------------
// transform
// ----------------------------------------------------------------------------
// Function: transform
template <typename B, typename E, typename O, typename C, typename P,
std::enable_if_t<is_partitioner_v<std::decay_t<P>>, void>*
>
Task FlowBuilder::transform(B first1, E last1, O d_first, C c, P part) {
return emplace(
make_transform_task(first1, last1, d_first, c, part)
);
}
// ----------------------------------------------------------------------------
// transform2
// ----------------------------------------------------------------------------
// Function: transform
template <
typename B1, typename E1, typename B2, typename O, typename C, typename P,
std::enable_if_t<!is_partitioner_v<std::decay_t<C>>, void>*
>
Task FlowBuilder::transform(
B1 first1, E1 last1, B2 first2, O d_first, C c, P part
) {
return emplace(make_transform_task(
first1, last1, first2, d_first, c, part
));
}
} // end of namespace tf -----------------------------------------------------