#ifndef LLVM_LIBC_SRC___SUPPORT_RPC_RPC_H
#define LLVM_LIBC_SRC___SUPPORT_RPC_RPC_H
#include "rpc_util.h"
#include "src/__support/CPP/algorithm.h"
#include "src/__support/CPP/atomic.h"
#include "src/__support/CPP/functional.h"
#include "src/__support/CPP/optional.h"
#include "src/__support/GPU/utils.h"
#include "src/__support/macros/config.h"
#include <stdint.h>
namespace LIBC_NAMESPACE_DECL {
namespace rpc {
struct Buffer {
uint64_t data[8];
};
static_assert(sizeof(Buffer) == 64, "Buffer size mismatch");
struct Header {
uint64_t mask;
uint16_t opcode;
};
constexpr uint64_t MAX_PORT_COUNT = 4096;
template <bool Invert> struct Process {
LIBC_INLINE Process() = default;
LIBC_INLINE Process(const Process &) = delete;
LIBC_INLINE Process &operator=(const Process &) = delete;
LIBC_INLINE Process(Process &&) = default;
LIBC_INLINE Process &operator=(Process &&) = default;
LIBC_INLINE ~Process() = default;
uint32_t port_count = 0;
cpp::Atomic<uint32_t> *inbox = nullptr;
cpp::Atomic<uint32_t> *outbox = nullptr;
Header *header = nullptr;
Buffer *packet = nullptr;
static constexpr uint64_t NUM_BITS_IN_WORD = sizeof(uint32_t) * 8;
cpp::Atomic<uint32_t> lock[MAX_PORT_COUNT / NUM_BITS_IN_WORD] = {0};
LIBC_INLINE Process(uint32_t port_count, void *buffer)
: port_count(port_count), inbox(reinterpret_cast<cpp::Atomic<uint32_t> *>(
advance(buffer, inbox_offset(port_count)))),
outbox(reinterpret_cast<cpp::Atomic<uint32_t> *>(
advance(buffer, outbox_offset(port_count)))),
header(reinterpret_cast<Header *>(
advance(buffer, header_offset(port_count)))),
packet(reinterpret_cast<Buffer *>(
advance(buffer, buffer_offset(port_count)))) {}
LIBC_INLINE static constexpr uint64_t allocation_size(uint32_t port_count,
uint32_t lane_size) {
return buffer_offset(port_count) + buffer_bytes(port_count, lane_size);
}
LIBC_INLINE uint32_t load_inbox(uint64_t lane_mask, uint32_t index) const {
return gpu::broadcast_value(
lane_mask,
inbox[index].load(cpp::MemoryOrder::RELAXED, cpp::MemoryScope::SYSTEM));
}
LIBC_INLINE uint32_t load_outbox(uint64_t lane_mask, uint32_t index) const {
return gpu::broadcast_value(lane_mask,
outbox[index].load(cpp::MemoryOrder::RELAXED,
cpp::MemoryScope::SYSTEM));
}
LIBC_INLINE uint32_t invert_outbox(uint32_t index, uint32_t current_outbox) {
uint32_t inverted_outbox = !current_outbox;
atomic_thread_fence(cpp::MemoryOrder::RELEASE);
outbox[index].store(inverted_outbox, cpp::MemoryOrder::RELAXED,
cpp::MemoryScope::SYSTEM);
return inverted_outbox;
}
LIBC_INLINE void wait_for_ownership(uint64_t lane_mask, uint32_t index,
uint32_t outbox, uint32_t in) {
while (buffer_unavailable(in, outbox)) {
sleep_briefly();
in = load_inbox(lane_mask, index);
}
atomic_thread_fence(cpp::MemoryOrder::ACQUIRE);
}
LIBC_INLINE Buffer *get_packet(uint32_t index, uint32_t lane_size) {
return &packet[index * lane_size];
}
LIBC_INLINE static bool buffer_unavailable(uint32_t in, uint32_t out) {
bool cond = in != out;
return Invert ? !cond : cond;
}
[[clang::convergent]] LIBC_INLINE bool try_lock(uint64_t lane_mask,
uint32_t index) {
uint32_t id = gpu::get_lane_id();
bool id_in_lane_mask = lane_mask & (1ul << id);
bool before = set_nth(lock, index, id_in_lane_mask);
uint64_t packed = gpu::ballot(lane_mask, before);
bool holding_lock = lane_mask != packed;
if (holding_lock)
atomic_thread_fence(cpp::MemoryOrder::ACQUIRE);
return holding_lock;
}
[[clang::convergent]] LIBC_INLINE void unlock(uint64_t lane_mask,
uint32_t index) {
atomic_thread_fence(cpp::MemoryOrder::RELEASE);
clear_nth(lock, index, gpu::is_first_lane(lane_mask));
gpu::sync_lane(lane_mask);
}
LIBC_INLINE static constexpr uint64_t mailbox_bytes(uint32_t port_count) {
return port_count * sizeof(cpp::Atomic<uint32_t>);
}
LIBC_INLINE static constexpr uint64_t buffer_bytes(uint32_t port_count,
uint32_t lane_size) {
return port_count * lane_size * sizeof(Buffer);
}
LIBC_INLINE static constexpr uint64_t inbox_offset(uint32_t port_count) {
return Invert ? mailbox_bytes(port_count) : 0;
}
LIBC_INLINE static constexpr uint64_t outbox_offset(uint32_t port_count) {
return Invert ? 0 : mailbox_bytes(port_count);
}
LIBC_INLINE static constexpr uint64_t header_offset(uint32_t port_count) {
return align_up(2 * mailbox_bytes(port_count), alignof(Header));
}
LIBC_INLINE static constexpr uint64_t buffer_offset(uint32_t port_count) {
return align_up(header_offset(port_count) + port_count * sizeof(Header),
alignof(Buffer));
}
LIBC_INLINE static constexpr uint32_t set_nth(cpp::Atomic<uint32_t> *bits,
uint32_t index, bool cond) {
uint32_t slot = index / NUM_BITS_IN_WORD;
uint32_t bit = index % NUM_BITS_IN_WORD;
return bits[slot].fetch_or(static_cast<uint32_t>(cond) << bit,
cpp::MemoryOrder::RELAXED,
cpp::MemoryScope::DEVICE) &
(1u << bit);
}
LIBC_INLINE static constexpr uint32_t clear_nth(cpp::Atomic<uint32_t> *bits,
uint32_t index, bool cond) {
uint32_t slot = index / NUM_BITS_IN_WORD;
uint32_t bit = index % NUM_BITS_IN_WORD;
return bits[slot].fetch_and(~0u ^ (static_cast<uint32_t>(cond) << bit),
cpp::MemoryOrder::RELAXED,
cpp::MemoryScope::DEVICE) &
(1u << bit);
}
};
static LIBC_INLINE void invoke_rpc(cpp::function<void(Buffer *)> fn,
uint32_t lane_size, uint64_t lane_mask,
Buffer *slot) {
if constexpr (is_process_gpu()) {
fn(&slot[gpu::get_lane_id()]);
} else {
for (uint32_t i = 0; i < lane_size; i += gpu::get_lane_size())
if (lane_mask & (1ul << i))
fn(&slot[i]);
}
}
static LIBC_INLINE void invoke_rpc(cpp::function<void(Buffer *, uint32_t)> fn,
uint32_t lane_size, uint64_t lane_mask,
Buffer *slot) {
if constexpr (is_process_gpu()) {
fn(&slot[gpu::get_lane_id()], gpu::get_lane_id());
} else {
for (uint32_t i = 0; i < lane_size; i += gpu::get_lane_size())
if (lane_mask & (1ul << i))
fn(&slot[i], i);
}
}
template <bool T> struct Port {
LIBC_INLINE Port(Process<T> &process, uint64_t lane_mask, uint32_t lane_size,
uint32_t index, uint32_t out)
: process(process), lane_mask(lane_mask), lane_size(lane_size),
index(index), out(out), receive(false), owns_buffer(true) {}
LIBC_INLINE ~Port() = default;
private:
LIBC_INLINE Port(const Port &) = delete;
LIBC_INLINE Port &operator=(const Port &) = delete;
LIBC_INLINE Port(Port &&) = default;
LIBC_INLINE Port &operator=(Port &&) = default;
friend struct Client;
friend struct Server;
friend class cpp::optional<Port<T>>;
public:
template <typename U> LIBC_INLINE void recv(U use);
template <typename F> LIBC_INLINE void send(F fill);
template <typename F, typename U>
LIBC_INLINE void send_and_recv(F fill, U use);
template <typename W> LIBC_INLINE void recv_and_send(W work);
LIBC_INLINE void send_n(const void *const *src, uint64_t *size);
LIBC_INLINE void send_n(const void *src, uint64_t size);
template <typename A>
LIBC_INLINE void recv_n(void **dst, uint64_t *size, A &&alloc);
LIBC_INLINE uint16_t get_opcode() const {
return process.header[index].opcode;
}
LIBC_INLINE uint16_t get_index() const { return index; }
LIBC_INLINE void close() {
gpu::sync_lane(lane_mask);
if (owns_buffer && T)
out = process.invert_outbox(index, out);
process.unlock(lane_mask, index);
}
private:
Process<T> &process;
uint64_t lane_mask;
uint32_t lane_size;
uint32_t index;
uint32_t out;
bool receive;
bool owns_buffer;
};
struct Client {
LIBC_INLINE Client() = default;
LIBC_INLINE Client(const Client &) = delete;
LIBC_INLINE Client &operator=(const Client &) = delete;
LIBC_INLINE ~Client() = default;
LIBC_INLINE Client(uint32_t port_count, void *buffer)
: process(port_count, buffer) {}
using Port = rpc::Port<false>;
template <uint16_t opcode> LIBC_INLINE Port open();
private:
Process<false> process;
};
static_assert(cpp::is_trivially_copyable<Client>::value &&
sizeof(Process<true>) == sizeof(Process<false>),
"The client is not trivially copyable from the server");
struct Server {
LIBC_INLINE Server() = default;
LIBC_INLINE Server(const Server &) = delete;
LIBC_INLINE Server &operator=(const Server &) = delete;
LIBC_INLINE ~Server() = default;
LIBC_INLINE Server(uint32_t port_count, void *buffer)
: process(port_count, buffer) {}
using Port = rpc::Port<true>;
LIBC_INLINE cpp::optional<Port> try_open(uint32_t lane_size,
uint32_t start = 0);
LIBC_INLINE Port open(uint32_t lane_size);
LIBC_INLINE static uint64_t allocation_size(uint32_t lane_size,
uint32_t port_count) {
return Process<true>::allocation_size(port_count, lane_size);
}
private:
Process<true> process;
};
template <bool T> template <typename F> LIBC_INLINE void Port<T>::send(F fill) {
uint32_t in = owns_buffer ? out ^ T : process.load_inbox(lane_mask, index);
process.wait_for_ownership(lane_mask, index, out, in);
invoke_rpc(fill, lane_size, process.header[index].mask,
process.get_packet(index, lane_size));
out = process.invert_outbox(index, out);
owns_buffer = false;
receive = false;
}
template <bool T> template <typename U> LIBC_INLINE void Port<T>::recv(U use) {
if (receive) {
out = process.invert_outbox(index, out);
owns_buffer = false;
}
uint32_t in = owns_buffer ? out ^ T : process.load_inbox(lane_mask, index);
process.wait_for_ownership(lane_mask, index, out, in);
invoke_rpc(use, lane_size, process.header[index].mask,
process.get_packet(index, lane_size));
receive = true;
owns_buffer = true;
}
template <bool T>
template <typename F, typename U>
LIBC_INLINE void Port<T>::send_and_recv(F fill, U use) {
send(fill);
recv(use);
}
template <bool T>
template <typename W>
LIBC_INLINE void Port<T>::recv_and_send(W work) {
recv(work);
send([](Buffer *) { });
}
template <bool T>
LIBC_INLINE void Port<T>::send_n(const void *src, uint64_t size) {
const void **src_ptr = &src;
uint64_t *size_ptr = &size;
send_n(src_ptr, size_ptr);
}
template <bool T>
LIBC_INLINE void Port<T>::send_n(const void *const *src, uint64_t *size) {
uint64_t num_sends = 0;
send([&](Buffer *buffer, uint32_t id) {
reinterpret_cast<uint64_t *>(buffer->data)[0] = lane_value(size, id);
num_sends = is_process_gpu() ? lane_value(size, id)
: cpp::max(lane_value(size, id), num_sends);
uint64_t len =
lane_value(size, id) > sizeof(Buffer::data) - sizeof(uint64_t)
? sizeof(Buffer::data) - sizeof(uint64_t)
: lane_value(size, id);
rpc_memcpy(&buffer->data[1], lane_value(src, id), len);
});
uint64_t idx = sizeof(Buffer::data) - sizeof(uint64_t);
uint64_t mask = process.header[index].mask;
while (gpu::ballot(mask, idx < num_sends)) {
send([=](Buffer *buffer, uint32_t id) {
uint64_t len = lane_value(size, id) - idx > sizeof(Buffer::data)
? sizeof(Buffer::data)
: lane_value(size, id) - idx;
if (idx < lane_value(size, id))
rpc_memcpy(buffer->data, advance(lane_value(src, id), idx), len);
});
idx += sizeof(Buffer::data);
}
}
template <bool T>
template <typename A>
LIBC_INLINE void Port<T>::recv_n(void **dst, uint64_t *size, A &&alloc) {
uint64_t num_recvs = 0;
recv([&](Buffer *buffer, uint32_t id) {
lane_value(size, id) = reinterpret_cast<uint64_t *>(buffer->data)[0];
lane_value(dst, id) =
reinterpret_cast<uint8_t *>(alloc(lane_value(size, id)));
num_recvs = is_process_gpu() ? lane_value(size, id)
: cpp::max(lane_value(size, id), num_recvs);
uint64_t len =
lane_value(size, id) > sizeof(Buffer::data) - sizeof(uint64_t)
? sizeof(Buffer::data) - sizeof(uint64_t)
: lane_value(size, id);
rpc_memcpy(lane_value(dst, id), &buffer->data[1], len);
});
uint64_t idx = sizeof(Buffer::data) - sizeof(uint64_t);
uint64_t mask = process.header[index].mask;
while (gpu::ballot(mask, idx < num_recvs)) {
recv([=](Buffer *buffer, uint32_t id) {
uint64_t len = lane_value(size, id) - idx > sizeof(Buffer::data)
? sizeof(Buffer::data)
: lane_value(size, id) - idx;
if (idx < lane_value(size, id))
rpc_memcpy(advance(lane_value(dst, id), idx), buffer->data, len);
});
idx += sizeof(Buffer::data);
}
}
template <uint16_t opcode>
[[clang::convergent]] LIBC_INLINE Client::Port Client::open() {
for (uint32_t index = gpu::get_cluster_id();; ++index) {
if (index >= process.port_count)
index = 0;
uint64_t lane_mask = gpu::get_lane_mask();
if (!process.try_lock(lane_mask, index))
continue;
uint32_t in = process.load_inbox(lane_mask, index);
uint32_t out = process.load_outbox(lane_mask, index);
if (process.buffer_unavailable(in, out)) {
process.unlock(lane_mask, index);
continue;
}
if (gpu::is_first_lane(lane_mask)) {
process.header[index].opcode = opcode;
process.header[index].mask = lane_mask;
}
gpu::sync_lane(lane_mask);
return Port(process, lane_mask, gpu::get_lane_size(), index, out);
}
}
[[clang::convergent]] LIBC_INLINE cpp::optional<typename Server::Port>
Server::try_open(uint32_t lane_size, uint32_t start) {
for (uint32_t index = start; index < process.port_count; ++index) {
uint64_t lane_mask = gpu::get_lane_mask();
uint32_t in = process.load_inbox(lane_mask, index);
uint32_t out = process.load_outbox(lane_mask, index);
if (process.buffer_unavailable(in, out))
continue;
if (!process.try_lock(lane_mask, index))
continue;
in = process.load_inbox(lane_mask, index);
out = process.load_outbox(lane_mask, index);
if (process.buffer_unavailable(in, out)) {
process.unlock(lane_mask, index);
continue;
}
return Port(process, lane_mask, lane_size, index, out);
}
return cpp::nullopt;
}
LIBC_INLINE Server::Port Server::open(uint32_t lane_size) {
for (;;) {
if (cpp::optional<Server::Port> p = try_open(lane_size))
return cpp::move(p.value());
sleep_briefly();
}
}
}
}
#endif