// Copyright (c) Vitaliy Filippov, 2019+ // License: VNPL-1.1 or GNU GPL-2.0+ (see README.md for details) #define _XOPEN_SOURCE #include #include #include "messenger.h" void osd_messenger_t::outbox_push(osd_op_t *cur_op) { assert(cur_op->client_id); auto cl_it = clients.find(cur_op->client_id); if (cl_it == clients.end() || cl_it->second->peer_state == PEER_STOPPED) { delete cur_op; return; } osd_client_t *cl = cl_it->second; if (cur_op->op_type == OSD_OP_OUT) { clock_gettime(CLOCK_REALTIME, &cur_op->tv_begin); cur_op->req.hdr.id = ++cl->send_op_id; cl->sent_ops[cur_op->req.hdr.id] = cur_op; } else { // Remove the operation from received op list bool found = false; for (auto it = cl->received_ops.begin(); it != cl->received_ops.end(); it++) { if (*it == cur_op) { found = true; cl->received_ops.erase(it, it+1); break; } } // Can't be not found because client IDs are unique assert(found); measure_exec(cur_op); } cl->write_ops.push_back(cur_op); #ifdef WITH_RDMA if (cl->peer_state == PEER_RDMA) { try_send_rdma(cl); return; } #endif if (!ringloop) { // FIXME: It's worse because it doesn't allow batching while (cl->write_op || cl->write_ops.size()) { try_send(cl); } } else { if ((cl->write_msg.msg_iovlen > 0 || !try_send(cl)) && (cl->write_state == 0)) { cl->write_state = CL_WRITE_READY; write_ready_clients.push_back(cur_op->client_id); } ringloop->wakeup(); } } void osd_messenger_t::inc_op_stats(osd_op_stats_t & stats, uint64_t opcode, timespec & tv_begin, timespec & tv_end, uint64_t len) { uint64_t usecs = ( (tv_end.tv_sec - tv_begin.tv_sec)*1000000 + (tv_end.tv_nsec - tv_begin.tv_nsec)/1000 ); stats.op_stat_count[opcode]++; if (!stats.op_stat_count[opcode]) { stats.op_stat_count[opcode] = 1; stats.op_stat_sum[opcode] = 0; stats.op_stat_bytes[opcode] = 0; } stats.op_stat_sum[opcode] += usecs; stats.op_stat_bytes[opcode] += len; } void osd_messenger_t::measure_exec(osd_op_t *cur_op) { // Measure execution latency if (cur_op->req.hdr.opcode > OSD_OP_MAX) { return; } if (!cur_op->tv_end.tv_sec) { clock_gettime(CLOCK_REALTIME, &cur_op->tv_end); } uint64_t len = 0; if (cur_op->req.hdr.opcode == OSD_OP_READ || cur_op->req.hdr.opcode == OSD_OP_WRITE || cur_op->req.hdr.opcode == OSD_OP_SCRUB) { // req.rw.len is internally set to the full object size for scrubs len = cur_op->req.rw.len; } else if (cur_op->req.hdr.opcode == OSD_OP_SEC_READ || cur_op->req.hdr.opcode == OSD_OP_SEC_WRITE || cur_op->req.hdr.opcode == OSD_OP_SEC_WRITE_STABLE) { len = cur_op->req.sec_rw.len; } inc_op_stats(stats, cur_op->req.hdr.opcode, cur_op->tv_begin, cur_op->tv_end, len); if (cur_op->is_recovery_related()) { inc_op_stats(recovery_stats, cur_op->req.hdr.opcode, cur_op->tv_begin, cur_op->tv_end, len); } } bool osd_messenger_t::try_send(osd_client_t *cl) { if (!cl->write_op && !cl->write_ops.size() || cl->write_msg.msg_iovlen > 0 || cl->peer_state == PEER_STOPPED || cl->peer_fd < 0) { return true; } assert(cl->peer_state != PEER_RDMA); while ((cl->write_op || cl->write_ops.size()) && cl->send_list.size() < IOV_MAX) { if (!cl->write_op) { cl->write_op = cl->write_ops.front(); cl->write_ops.pop_front(); } osd_op_t *op = cl->write_op; op_get_write_buffers(cl, cl->send_list); if (!cl->write_op && op->op_type == OSD_OP_IN) { cl->send_free_ops.push_back(op); } } if (ringloop && !use_sync_send_recv) { auto iothread = iothreads.size() ? iothreads[cl->peer_fd % iothreads.size()] : NULL; io_uring_sqe sqe_local; ring_data_t data_local; io_uring_sqe* sqe = (iothread ? &sqe_local : ringloop->get_sqe()); if (iothread) { sqe_local = { .user_data = (uint64_t)&data_local }; data_local = {}; } if (!sqe) { return false; } cl->send_list_size = 0; for (auto & iov: cl->send_list) { cl->send_list_size += iov.iov_len; } cl->write_msg.msg_iov = cl->send_list.data(); cl->write_msg.msg_iovlen = cl->send_list.size() < IOV_MAX ? cl->send_list.size() : IOV_MAX; cl->refs++; ring_data_t* data = ((ring_data_t*)sqe->user_data); data->callback = [this, cl](ring_data_t *data) { handle_send(data->res, data->prev, data->more, cl); }; bool use_zc = has_sendmsg_zc && min_zerocopy_send_size >= 0; if (use_zc && min_zerocopy_send_size > 0 && cl->send_list_size/cl->write_msg.msg_iovlen < min_zerocopy_send_size) { use_zc = false; } if (use_zc) { io_uring_prep_sendmsg_zc(sqe, cl->peer_fd, &cl->write_msg, MSG_WAITALL); } else { io_uring_prep_sendmsg(sqe, cl->peer_fd, &cl->write_msg, MSG_WAITALL); } if (iothread) { iothread->add_sqe(sqe_local); } } else { cl->write_msg.msg_iov = cl->send_list.data(); cl->write_msg.msg_iovlen = cl->send_list.size() < IOV_MAX ? cl->send_list.size() : IOV_MAX; cl->refs++; int result = sendmsg(cl->peer_fd, &cl->write_msg, MSG_NOSIGNAL); if (result < 0) { result = -errno; } // like set_immediate tfd->set_timer_us(0, false, [this, result, cl](int){ handle_send(result, false, false, cl); }); } return true; } void osd_messenger_t::send_replies() { for (int i = 0; i < write_ready_clients.size(); i++) { uint64_t client_id = write_ready_clients[i]; auto cl_it = clients.find(client_id); if (cl_it != clients.end() && cl_it->second->peer_state != PEER_RDMA && !try_send(cl_it->second)) { write_ready_clients.erase(write_ready_clients.begin(), write_ready_clients.begin() + i); return; } } write_ready_clients.clear(); } void osd_messenger_t::handle_send(int result, bool prev, bool more, osd_client_t *cl) { if (!prev) { cl->write_msg.msg_iovlen = 0; cl->send_list.clear(); } if (!more) { cl->refs--; } if (cl->peer_state == PEER_STOPPED) { if (cl->refs <= 0) { destroy_client(cl); } return; } if (result < 0 && result != -EAGAIN && result != -EINTR) { // this is a client socket, so don't panic. just disconnect it fprintf(stderr, "Client %ju socket write error: %d (%s). Disconnecting client\n", cl->client_id, -result, strerror(-result)); stop_client(cl->client_id); return; } if (result >= 0) { if (prev) { // Second notification - only free a batch of postponed ops int i = 0; for (; i < cl->zc_free_list.size() && cl->zc_free_list[i]; i++) delete cl->zc_free_list[i]; if (i > 0) cl->zc_free_list.erase(cl->zc_free_list.begin(), cl->zc_free_list.begin()+i+1); return; } if (cl->send_list_size > result) { fprintf(stderr, "Client %ju socket write error: expected to send " "%zu bytes with MSG_WAITALL but sent %u. Disconnecting client\n", cl->client_id, cl->send_list_size, result); stop_client(cl->peer_fd); return; } for (auto op: cl->send_free_ops) { if (more) cl->zc_free_list.push_back(op); else delete op; } if (more) cl->zc_free_list.push_back(NULL); // end marker cl->send_free_ops.clear(); cl->write_state = cl->write_op || cl->write_ops.size() ? CL_WRITE_READY : 0; #ifdef WITH_RDMA if (cl->rdma_conn && !cl->write_op && !cl->write_ops.size() && cl->peer_state == PEER_RDMA_CONNECTING) { // FIXME: Ignore pings during RDMA state transition if (log_level > 0) { fprintf(stderr, "Successfully connected with client %ju using RDMA\n", cl->client_id); } cl->peer_state = PEER_RDMA; // Add the initial receive request init_recv_rdma(cl); } #endif } if (cl->write_state != 0) { write_ready_clients.push_back(cl->client_id); } } static inline bool op_write_headers(osd_op_t *op, std::function op_write_buf) { // Header if (!op_write_buf((op->op_type == OSD_OP_IN ? op->reply.buf : op->req.buf), OSD_PACKET_SIZE)) return false; // Bitmap if (op->op_type == OSD_OP_IN && op->req.hdr.opcode == OSD_OP_SEC_READ && op->reply.sec_rw.attr_len > 0) { if (!op_write_buf((uint8_t*)op->bitmap, op->reply.sec_rw.attr_len)) return false; } else if (op->op_type == OSD_OP_OUT && (op->req.hdr.opcode == OSD_OP_SEC_WRITE || op->req.hdr.opcode == OSD_OP_SEC_WRITE_STABLE) && op->req.sec_rw.attr_len > 0) { if (!op_write_buf((uint8_t*)op->bitmap, op->req.sec_rw.attr_len)) return false; } if (op->req.hdr.opcode == OSD_OP_SEC_READ_BMP) { if (op->op_type == OSD_OP_IN && op->reply.hdr.retval > 0) { if (!op_write_buf((uint8_t*)op->buf, (size_t)op->reply.hdr.retval)) return false; } else if (op->op_type == OSD_OP_OUT && op->req.sec_read_bmp.len > 0) { if (!op_write_buf((uint8_t*)op->buf, (size_t)op->req.sec_read_bmp.len)) return false; } } return true; } static inline bool op_has_data(osd_op_t *op) { return (op->op_type == OSD_OP_IN ? (op->req.hdr.opcode == OSD_OP_READ || op->req.hdr.opcode == OSD_OP_SEC_READ || op->req.hdr.opcode == OSD_OP_SEC_LIST || op->req.hdr.opcode == OSD_OP_SHOW_CONFIG || op->req.hdr.opcode == OSD_OP_DESCRIBE) : (op->req.hdr.opcode == OSD_OP_WRITE || op->req.hdr.opcode == OSD_OP_SEC_WRITE || op->req.hdr.opcode == OSD_OP_SEC_WRITE_STABLE || op->req.hdr.opcode == OSD_OP_SEC_STABILIZE || op->req.hdr.opcode == OSD_OP_SEC_ROLLBACK || op->req.hdr.opcode == OSD_OP_SHOW_CONFIG)) && op->iov.count > 0; } size_t osd_messenger_t::op_copy_to(osd_client_t *cl, uint8_t *dst, size_t dst_len) { size_t done = 0; size_t from = cl->write_op_pos; auto op_write_buf = [&](uint8_t *src, size_t src_len) { if (from < src_len) { size_t n = src_len-from; if (n > dst_len-done) n = dst_len-done; memcpy(dst+done, src+from, n); done += n; cl->write_op_pos += n; from += n; if (from < src_len) return false; from = 0; } else from -= src_len; return true; }; if (!op_write_headers(cl->write_op, op_write_buf)) { return done; } // Operation data if (op_has_data(cl->write_op)) { if (cl->write_op->enc) { if (!op_encrypted_copy_data_to(cl, dst, dst_len, from, done)) { return done; } } else { for (int i = 0; i < cl->write_op->iov.count; i++) { if (!op_write_buf((uint8_t*)cl->write_op->iov.buf[i].iov_base, cl->write_op->iov.buf[i].iov_len)) return done; } } } cl->write_op = NULL; cl->write_op_pos = 0; return done; } void osd_messenger_t::op_get_write_buffers(osd_client_t *cl, std::vector & lst) { size_t from = cl->write_op_pos; auto op_write_buf = [&](uint8_t *src, size_t src_len) { if (lst.size() >= IOV_MAX) return false; if (from < src_len) { lst.push_back((iovec){ .iov_base = src+from, .iov_len = src_len-from }); cl->write_op_pos += src_len-from; from = 0; } else from -= src_len; return true; }; if (!op_write_headers(cl->write_op, op_write_buf)) { return; } // Operation data if (op_has_data(cl->write_op)) { if (cl->write_op->enc) { if (lst.size() >= IOV_MAX) return; // No way except to allocate a temporary buffer and encrypt data to it assert(cl->write_op->req.hdr.opcode == OSD_OP_WRITE); size_t remsize = cl->write_op->req.rw.len - from + (from % 16); assert(remsize > 0); assert(!cl->write_op->enc_buf); cl->write_op->enc_buf = (uint8_t*)malloc_or_die(remsize); size_t done = 0; bool end = op_encrypted_copy_data_to(cl, cl->write_op->enc_buf, remsize, from, done); assert(end); lst.push_back((iovec){ .iov_base = cl->write_op->enc_buf, .iov_len = remsize }); } else { for (int i = 0; i < cl->write_op->iov.count; i++) { if (!op_write_buf((uint8_t*)cl->write_op->iov.buf[i].iov_base, cl->write_op->iov.buf[i].iov_len)) return; } } } cl->write_op = NULL; cl->write_op_pos = 0; }