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lib/eal/linux/eal.c
1 064 строки
27 KB
Anatoly Burakov
mem: store default segment limits in config
04 июн 2026, 11:16
04 июн 2026, 11:16
51c066f
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/* SPDX-License-Identifier: BSD-3-Clause * Copyright(c) 2010-2018 Intel Corporation. * Copyright(c) 2012-2014 6WIND S.A. */ #include <ctype.h> #include <stdio.h> #include <stdlib.h> #include <stdint.h> #include <string.h> #include <unistd.h> #include <pthread.h> #include <getopt.h> #include <sys/file.h> #include <dirent.h> #include <fcntl.h> #include <fnmatch.h> #include <stddef.h> #include <errno.h> #include <limits.h> #include <sys/mman.h> #include <sys/stat.h> #if defined(RTE_ARCH_X86) #include <sys/io.h> #endif #include <linux/version.h> #include <rte_common.h> #include <rte_debug.h> #include <rte_memory.h> #include <rte_launch.h> #include <rte_eal.h> #include <rte_eal_memconfig.h> #include <rte_eal_paging.h> #include <rte_errno.h> #include <rte_lcore.h> #include <rte_service_component.h> #include <rte_log.h> #include <rte_string_fns.h> #include <rte_cpuflags.h> #include <rte_bus.h> #include <rte_version.h> #include <malloc_heap.h> #include <rte_vfio.h> #include <telemetry_internal.h> #include <eal_export.h> #include "eal_private.h" #include "eal_thread.h" #include "eal_lcore_var.h" #include "eal_internal_cfg.h" #include "eal_filesystem.h" #include "eal_hugepages.h" #include "eal_memcfg.h" #include "eal_trace.h" #include "eal_options.h" #include "eal_vfio.h" #include "hotplug_mp.h" #include "log_internal.h" #define MEMSIZE_IF_NO_HUGE_PAGE (64ULL * 1024ULL * 1024ULL) #define KERNEL_IOMMU_GROUPS_PATH "/sys/kernel/iommu_groups" /* define fd variable here, because file needs to be kept open for the * duration of the program, as we hold a write lock on it in the primary proc */ static int mem_cfg_fd = -1; static struct flock wr_lock = { .l_type = F_WRLCK, .l_whence = SEEK_SET, .l_start = offsetof(struct rte_mem_config, memsegs), .l_len = RTE_SIZEOF_FIELD(struct rte_mem_config, memsegs), }; /* internal configuration (per-core) */ struct lcore_config lcore_config[RTE_MAX_LCORE]; /* used by rte_rdtsc() */ RTE_EXPORT_SYMBOL(rte_cycles_vmware_tsc_map) int rte_cycles_vmware_tsc_map; int eal_clean_runtime_dir(void) { const char *runtime_dir = rte_eal_get_runtime_dir(); DIR *dir; struct dirent *dirent; int dir_fd, fd, lck_result; static const char * const filters[] = { "fbarray_*", "mp_socket_*" }; /* open directory */ dir = opendir(runtime_dir); if (!dir) { EAL_LOG(ERR, "Unable to open runtime directory %s", runtime_dir); goto error; } dir_fd = dirfd(dir); /* lock the directory before doing anything, to avoid races */ if (flock(dir_fd, LOCK_EX) < 0) { EAL_LOG(ERR, "Unable to lock runtime directory %s", runtime_dir); goto error; } dirent = readdir(dir); if (!dirent) { EAL_LOG(ERR, "Unable to read runtime directory %s", runtime_dir); goto error; } while (dirent != NULL) { unsigned int f_idx; bool skip = true; /* skip files that don't match the patterns */ for (f_idx = 0; f_idx < RTE_DIM(filters); f_idx++) { const char *filter = filters[f_idx]; if (fnmatch(filter, dirent->d_name, 0) == 0) { skip = false; break; } } if (skip) { dirent = readdir(dir); continue; } /* try and lock the file */ fd = openat(dir_fd, dirent->d_name, O_RDONLY); /* skip to next file */ if (fd == -1) { dirent = readdir(dir); continue; } /* non-blocking lock */ lck_result = flock(fd, LOCK_EX | LOCK_NB); /* if lock succeeds, remove the file */ if (lck_result != -1) unlinkat(dir_fd, dirent->d_name, 0); close(fd); dirent = readdir(dir); } /* closedir closes dir_fd and drops the lock */ closedir(dir); return 0; error: if (dir) closedir(dir); EAL_LOG(ERR, "Error while clearing runtime dir: %s", strerror(errno)); return -1; } /* create memory configuration in shared/mmap memory. Take out * a write lock on the memsegs, so we can auto-detect primary/secondary. * This means we never close the file while running (auto-close on exit). * We also don't lock the whole file, so that in future we can use read-locks * on other parts, e.g. memzones, to detect if there are running secondary * processes. */ static int rte_eal_config_create(void) { struct rte_config *config = rte_eal_get_configuration(); size_t page_sz = rte_mem_page_size(); size_t cfg_len = sizeof(*config->mem_config); size_t cfg_len_aligned = RTE_ALIGN(cfg_len, page_sz); void *rte_mem_cfg_addr, *mapped_mem_cfg_addr; int retval; const struct internal_config *internal_conf = eal_get_internal_configuration(); const char *pathname = eal_runtime_config_path(); if (internal_conf->no_shconf) return 0; /* map the config before hugepage address so that we don't waste a page */ if (internal_conf->base_virtaddr != 0) rte_mem_cfg_addr = (void *) RTE_ALIGN_FLOOR(internal_conf->base_virtaddr - sizeof(struct rte_mem_config), page_sz); else rte_mem_cfg_addr = NULL; if (mem_cfg_fd < 0){ mem_cfg_fd = open(pathname, O_RDWR | O_CREAT, 0600); if (mem_cfg_fd < 0) { EAL_LOG(ERR, "Cannot open '%s' for rte_mem_config", pathname); return -1; } } retval = ftruncate(mem_cfg_fd, cfg_len); if (retval < 0){ close(mem_cfg_fd); mem_cfg_fd = -1; EAL_LOG(ERR, "Cannot resize '%s' for rte_mem_config", pathname); return -1; } retval = fcntl(mem_cfg_fd, F_SETLK, &wr_lock); if (retval < 0){ close(mem_cfg_fd); mem_cfg_fd = -1; EAL_LOG(ERR, "Cannot create lock on '%s'. Is another primary " "process running?", pathname); return -1; } /* reserve space for config */ rte_mem_cfg_addr = eal_get_virtual_area(rte_mem_cfg_addr, &cfg_len_aligned, page_sz, 0, 0); if (rte_mem_cfg_addr == NULL) { EAL_LOG(ERR, "Cannot mmap memory for rte_config"); close(mem_cfg_fd); mem_cfg_fd = -1; return -1; } /* remap the actual file into the space we've just reserved */ mapped_mem_cfg_addr = mmap(rte_mem_cfg_addr, cfg_len_aligned, PROT_READ | PROT_WRITE, MAP_SHARED | MAP_FIXED, mem_cfg_fd, 0); if (mapped_mem_cfg_addr == MAP_FAILED) { munmap(rte_mem_cfg_addr, cfg_len); close(mem_cfg_fd); mem_cfg_fd = -1; EAL_LOG(ERR, "Cannot remap memory for rte_config"); return -1; } memcpy(rte_mem_cfg_addr, config->mem_config, sizeof(struct rte_mem_config)); config->mem_config = rte_mem_cfg_addr; /* store address of the config in the config itself so that secondary * processes could later map the config into this exact location */ config->mem_config->mem_cfg_addr = (uintptr_t) rte_mem_cfg_addr; config->mem_config->dma_maskbits = 0; return 0; } /* attach to an existing shared memory config */ static int rte_eal_config_attach(void) { struct rte_config *config = rte_eal_get_configuration(); struct rte_mem_config *mem_config; const struct internal_config *internal_conf = eal_get_internal_configuration(); const char *pathname = eal_runtime_config_path(); if (internal_conf->no_shconf) return 0; if (mem_cfg_fd < 0){ mem_cfg_fd = open(pathname, O_RDWR); if (mem_cfg_fd < 0) { EAL_LOG(ERR, "Cannot open '%s' for rte_mem_config", pathname); return -1; } } /* map it as read-only first */ mem_config = (struct rte_mem_config *) mmap(NULL, sizeof(*mem_config), PROT_READ, MAP_SHARED, mem_cfg_fd, 0); if (mem_config == MAP_FAILED) { close(mem_cfg_fd); mem_cfg_fd = -1; EAL_LOG(ERR, "Cannot mmap memory for rte_config! error %i (%s)", errno, strerror(errno)); return -1; } config->mem_config = mem_config; return 0; } /* reattach the shared config at exact memory location primary process has it */ static int rte_eal_config_reattach(void) { struct rte_config *config = rte_eal_get_configuration(); struct rte_mem_config *mem_config; void *rte_mem_cfg_addr; const struct internal_config *internal_conf = eal_get_internal_configuration(); if (internal_conf->no_shconf) return 0; /* save the address primary process has mapped shared config to */ rte_mem_cfg_addr = (void *) (uintptr_t) config->mem_config->mem_cfg_addr; /* unmap original config */ munmap(config->mem_config, sizeof(struct rte_mem_config)); /* remap the config at proper address */ mem_config = (struct rte_mem_config *) mmap(rte_mem_cfg_addr, sizeof(*mem_config), PROT_READ | PROT_WRITE, MAP_SHARED, mem_cfg_fd, 0); close(mem_cfg_fd); mem_cfg_fd = -1; if (mem_config == MAP_FAILED || mem_config != rte_mem_cfg_addr) { if (mem_config != MAP_FAILED) { /* errno is stale, don't use */ EAL_LOG(ERR, "Cannot mmap memory for rte_config at [%p], got [%p] - please use '--base-virtaddr' option", rte_mem_cfg_addr, mem_config); munmap(mem_config, sizeof(struct rte_mem_config)); return -1; } EAL_LOG(ERR, "Cannot mmap memory for rte_config! error %i (%s)", errno, strerror(errno)); return -1; } config->mem_config = mem_config; return 0; } /* Detect if we are a primary or a secondary process */ enum rte_proc_type_t eal_proc_type_detect(void) { enum rte_proc_type_t ptype = RTE_PROC_PRIMARY; const char *pathname = eal_runtime_config_path(); const struct internal_config *internal_conf = eal_get_internal_configuration(); /* if there no shared config, there can be no secondary processes */ if (!internal_conf->no_shconf) { /* if we can open the file but not get a write-lock we are a * secondary process. NOTE: if we get a file handle back, we * keep that open and don't close it to prevent a race condition * between multiple opens. */ if (((mem_cfg_fd = open(pathname, O_RDWR)) >= 0) && (fcntl(mem_cfg_fd, F_SETLK, &wr_lock) < 0)) ptype = RTE_PROC_SECONDARY; } EAL_LOG(INFO, "Auto-detected process type: %s", ptype == RTE_PROC_PRIMARY ? "PRIMARY" : "SECONDARY"); return ptype; } /* Sets up rte_config structure with the pointer to shared memory config.*/ static int rte_config_init(void) { struct rte_config *config = rte_eal_get_configuration(); const struct internal_config *internal_conf = eal_get_internal_configuration(); config->process_type = internal_conf->process_type; switch (config->process_type) { case RTE_PROC_PRIMARY: if (rte_eal_config_create() < 0) return -1; eal_mcfg_update_from_internal(); break; case RTE_PROC_SECONDARY: if (rte_eal_config_attach() < 0) return -1; eal_mcfg_wait_complete(); if (eal_mcfg_check_version() < 0) { EAL_LOG(ERR, "Primary and secondary process DPDK version mismatch"); return -1; } if (rte_eal_config_reattach() < 0) return -1; if (!__rte_mp_enable()) { EAL_LOG(ERR, "Primary process refused secondary attachment"); return -1; } eal_mcfg_update_internal(); break; case RTE_PROC_AUTO: case RTE_PROC_INVALID: EAL_LOG(ERR, "Invalid process type %d", config->process_type); return -1; } return 0; } /* Unlocks hugepage directories that were locked by eal_hugepage_info_init */ static void eal_hugedirs_unlock(void) { int i; struct internal_config *internal_conf = eal_get_internal_configuration(); for (i = 0; i < MAX_HUGEPAGE_SIZES; i++) { /* skip uninitialized */ if (internal_conf->hugepage_info[i].lock_descriptor < 0) continue; /* unlock hugepage file */ flock(internal_conf->hugepage_info[i].lock_descriptor, LOCK_UN); close(internal_conf->hugepage_info[i].lock_descriptor); /* reset the field */ internal_conf->hugepage_info[i].lock_descriptor = -1; } } static int check_socket(const struct rte_memseg_list *msl, void *arg) { int *socket_id = arg; if (msl->external) return 0; return *socket_id == msl->socket_id; } static void eal_check_mem_on_local_socket(void) { int socket_id; const struct rte_config *config = rte_eal_get_configuration(); socket_id = rte_lcore_to_socket_id(config->main_lcore); if (rte_memseg_list_walk(check_socket, &socket_id) == 0) EAL_LOG(WARNING, "WARNING: Main core has no memory on local socket!"); } static int sync_func(__rte_unused void *arg) { return 0; } /* * Request iopl privilege for all RPL, returns 0 on success * iopl() call is mostly for the i386 architecture. For other architectures, * return -1 to indicate IO privilege can't be changed in this way. */ RTE_EXPORT_SYMBOL(rte_eal_iopl_init) int rte_eal_iopl_init(void) { #if defined(RTE_ARCH_X86) if (iopl(3) != 0) return -1; #endif return 0; } static void rte_eal_init_alert(const char *msg) { EAL_LOG(ALERT, "%s", msg); } /* * On Linux 3.6+, even if VFIO is not loaded, whenever IOMMU is enabled in the * BIOS and in the kernel, /sys/kernel/iommu_groups path will contain kernel * IOMMU groups. If IOMMU is not enabled, that path would be empty. * Therefore, checking if the path is empty will tell us if IOMMU is enabled. */ static bool is_iommu_enabled(void) { DIR *dir = opendir(KERNEL_IOMMU_GROUPS_PATH); struct dirent *d; int n = 0; /* if directory doesn't exist, assume IOMMU is not enabled */ if (dir == NULL) return false; while ((d = readdir(dir)) != NULL) { /* skip dot and dot-dot */ if (++n > 2) break; } closedir(dir); return n > 2; } static __rte_noreturn void * eal_worker_thread_loop(void *arg) { eal_thread_loop(arg); } static int eal_worker_thread_create(unsigned int lcore_id) { pthread_attr_t *attrp = NULL; void *stack_ptr = NULL; pthread_attr_t attr; size_t stack_size; int ret = -1; stack_size = eal_get_internal_configuration()->huge_worker_stack_size; if (stack_size != 0) { /* Allocate NUMA aware stack memory and set pthread attributes */ stack_ptr = rte_zmalloc_socket("lcore_stack", stack_size, RTE_CACHE_LINE_SIZE, rte_lcore_to_socket_id(lcore_id)); if (stack_ptr == NULL) { rte_eal_init_alert("Cannot allocate worker lcore stack memory"); rte_errno = ENOMEM; goto out; } if (pthread_attr_init(&attr) != 0) { rte_eal_init_alert("Cannot init pthread attributes"); rte_errno = EFAULT; goto out; } attrp = &attr; if (pthread_attr_setstack(attrp, stack_ptr, stack_size) != 0) { rte_eal_init_alert("Cannot set pthread stack attributes"); rte_errno = EFAULT; goto out; } } if (pthread_create((pthread_t *)&lcore_config[lcore_id].thread_id.opaque_id, attrp, eal_worker_thread_loop, (void *)(uintptr_t)lcore_id) == 0) ret = 0; out: if (ret != 0) rte_free(stack_ptr); if (attrp != NULL) pthread_attr_destroy(attrp); return ret; } /* Launch threads, called at application init(). */ RTE_EXPORT_SYMBOL(rte_eal_init) int rte_eal_init(int argc, char **argv) { int i, fctret, ret; static RTE_ATOMIC(uint32_t) run_once; uint32_t has_run = 0; char cpuset[RTE_CPU_AFFINITY_STR_LEN]; char thread_name[RTE_THREAD_NAME_SIZE]; bool phys_addrs; const struct rte_config *config = rte_eal_get_configuration(); struct internal_config *internal_conf = eal_get_internal_configuration(); /* first check if we have been run before */ if (!rte_atomic_compare_exchange_strong_explicit(&run_once, &has_run, 1, rte_memory_order_relaxed, rte_memory_order_relaxed)) { rte_eal_init_alert("already called initialization."); rte_errno = EALREADY; return -1; } /* clone argv to report out later in telemetry */ eal_save_args(argc, argv); fctret = eal_collate_args(argc, argv); if (fctret < 0) { rte_eal_init_alert("Invalid command line arguments."); rte_errno = EINVAL; goto err_out; } /* setup log as early as possible */ if (eal_parse_log_options() < 0) { rte_eal_init_alert("invalid log arguments."); rte_errno = EINVAL; goto err_out; } eal_log_init(program_invocation_short_name); /* checks if the machine is adequate */ if (!rte_cpu_is_supported()) { rte_eal_init_alert("unsupported cpu type."); rte_errno = ENOTSUP; goto err_out; } /* verify if DPDK supported on architecture MMU */ if (!eal_mmu_supported()) { rte_eal_init_alert("unsupported MMU type."); rte_errno = ENOTSUP; goto err_out; } eal_reset_internal_config(internal_conf); if (rte_eal_cpu_init() < 0) { rte_eal_init_alert("Cannot detect lcores."); rte_errno = ENOTSUP; goto err_out; } if (eal_parse_args() < 0) { rte_eal_init_alert("Error parsing command line arguments."); rte_errno = EINVAL; goto err_out; } if (eal_plugins_init() < 0) { rte_eal_init_alert("Cannot init plugins"); rte_errno = EINVAL; goto err_out; } if (eal_trace_init() < 0) { rte_eal_init_alert("Cannot init trace"); rte_errno = EFAULT; goto err_out; } if (eal_option_device_parse()) { rte_errno = ENODEV; goto err_out; } if (rte_config_init() < 0) { rte_eal_init_alert("Cannot init config"); goto err_out; } if (rte_eal_intr_init() < 0) { rte_eal_init_alert("Cannot init interrupt-handling thread"); goto err_out; } if (rte_eal_alarm_init() < 0) { rte_eal_init_alert("Cannot init alarm"); /* rte_eal_alarm_init sets rte_errno on failure. */ goto err_out; } /* Put mp channel init before bus scan so that we can init the vdev * bus through mp channel in the secondary process before the bus scan. */ if (rte_mp_channel_init() < 0 && rte_errno != ENOTSUP) { rte_eal_init_alert("failed to init mp channel"); if (rte_eal_process_type() == RTE_PROC_PRIMARY) { rte_errno = EFAULT; goto err_out; } } if (rte_bus_scan()) { rte_eal_init_alert("Cannot scan the buses for devices"); rte_errno = ENODEV; goto err_out; } phys_addrs = rte_eal_using_phys_addrs() != 0; /* Always call rte_bus_get_iommu_class() to trigger DMA mask detection and validation */ enum rte_iova_mode bus_iova_mode = rte_bus_get_iommu_class(); /* if no EAL option "--iova-mode=<pa|va>", use bus IOVA scheme */ if (internal_conf->iova_mode == RTE_IOVA_DC) { /* autodetect the IOVA mapping mode */ enum rte_iova_mode iova_mode = bus_iova_mode; if (iova_mode == RTE_IOVA_DC) { EAL_LOG(DEBUG, "Buses did not request a specific IOVA mode."); if (!RTE_IOVA_IN_MBUF) { iova_mode = RTE_IOVA_VA; EAL_LOG(DEBUG, "IOVA as VA mode is forced by build option."); } else if (!phys_addrs) { /* if we have no access to physical addresses, * pick IOVA as VA mode. */ iova_mode = RTE_IOVA_VA; EAL_LOG(DEBUG, "Physical addresses are unavailable, selecting IOVA as VA mode."); } else if (is_iommu_enabled()) { /* we have an IOMMU, pick IOVA as VA mode */ iova_mode = RTE_IOVA_VA; EAL_LOG(DEBUG, "IOMMU is available, selecting IOVA as VA mode."); } else { /* physical addresses available, and no IOMMU * found, so pick IOVA as PA. */ iova_mode = RTE_IOVA_PA; EAL_LOG(DEBUG, "IOMMU is not available, selecting IOVA as PA mode."); } } rte_eal_get_configuration()->iova_mode = iova_mode; } else { rte_eal_get_configuration()->iova_mode = internal_conf->iova_mode; } if (rte_eal_iova_mode() == RTE_IOVA_PA && !phys_addrs) { rte_eal_init_alert("Cannot use IOVA as 'PA' since physical addresses are not available"); rte_errno = EINVAL; goto err_out; } if (rte_eal_iova_mode() == RTE_IOVA_PA && !RTE_IOVA_IN_MBUF) { rte_eal_init_alert("Cannot use IOVA as 'PA' as it is disabled during build"); rte_errno = EINVAL; goto err_out; } EAL_LOG(INFO, "Selected IOVA mode '%s'", rte_eal_iova_mode() == RTE_IOVA_PA ? "PA" : "VA"); if (internal_conf->no_hugetlbfs == 0) { /* rte_config isn't initialized yet */ ret = internal_conf->process_type == RTE_PROC_PRIMARY ? eal_hugepage_info_init() : eal_hugepage_info_read(); if (ret < 0) { rte_eal_init_alert("Cannot get hugepage information."); rte_errno = EACCES; goto err_out; } if (internal_conf->process_type == RTE_PROC_PRIMARY && eal_apply_hugepage_mem_sz_limits(internal_conf) < 0) { rte_eal_init_alert("Cannot apply hugepage memory limits."); rte_errno = EINVAL; goto err_out; } } if (internal_conf->memory == 0 && internal_conf->force_numa == 0) { if (internal_conf->no_hugetlbfs) internal_conf->memory = MEMSIZE_IF_NO_HUGE_PAGE; } if (internal_conf->vmware_tsc_map == 1) { #ifdef RTE_LIBRTE_EAL_VMWARE_TSC_MAP_SUPPORT rte_cycles_vmware_tsc_map = 1; EAL_LOG(DEBUG, "Using VMWARE TSC MAP, " "you must have monitor_control.pseudo_perfctr = TRUE"); #else EAL_LOG(WARNING, "Ignoring --vmware-tsc-map because " "RTE_LIBRTE_EAL_VMWARE_TSC_MAP_SUPPORT is not set"); #endif } if (rte_vfio_enable("vfio")) { rte_eal_init_alert("Cannot init VFIO"); rte_errno = EAGAIN; goto err_out; } /* in secondary processes, memory init may allocate additional fbarrays * not present in primary processes, so to avoid any potential issues, * initialize memzones first. */ if (rte_eal_memzone_init() < 0) { rte_eal_init_alert("Cannot init memzone"); rte_errno = ENODEV; goto err_out; } rte_mcfg_mem_read_lock(); if (rte_eal_memory_init() < 0) { rte_mcfg_mem_read_unlock(); rte_eal_init_alert("Cannot init memory"); rte_errno = ENOMEM; goto err_out; } /* the directories are locked during eal_hugepage_info_init */ eal_hugedirs_unlock(); if (rte_eal_malloc_heap_init() < 0) { rte_mcfg_mem_read_unlock(); rte_eal_init_alert("Cannot init malloc heap"); rte_errno = ENODEV; goto err_out; } rte_mcfg_mem_read_unlock(); if (rte_eal_malloc_heap_populate() < 0) { rte_eal_init_alert("Cannot init malloc heap"); rte_errno = ENODEV; goto err_out; } /* register multi-process action callbacks for hotplug after memory init */ if (eal_mp_dev_hotplug_init() < 0) { rte_eal_init_alert("failed to register mp callback for hotplug"); goto err_out; } if (rte_eal_tailqs_init() < 0) { rte_eal_init_alert("Cannot init tail queues for objects"); rte_errno = EFAULT; goto err_out; } if (rte_eal_timer_init() < 0) { rte_eal_init_alert("Cannot init HPET or TSC timers"); rte_errno = ENOTSUP; goto err_out; } eal_rand_init(); eal_check_mem_on_local_socket(); if (rte_thread_set_affinity_by_id(rte_thread_self(), &lcore_config[config->main_lcore].cpuset) != 0) { rte_eal_init_alert("Cannot set affinity"); rte_errno = EINVAL; goto err_out; } __rte_thread_init(config->main_lcore, &lcore_config[config->main_lcore].cpuset); ret = eal_thread_dump_current_affinity(cpuset, sizeof(cpuset)); EAL_LOG(DEBUG, "Main lcore %u is ready (tid=%zx;cpuset=[%s%s])", config->main_lcore, (uintptr_t)pthread_self(), cpuset, ret == 0 ? "" : "..."); RTE_LCORE_FOREACH_WORKER(i) { /* * create communication pipes between main thread * and children */ if (pipe(lcore_config[i].pipe_main2worker) < 0) rte_panic("Cannot create pipe\n"); if (pipe(lcore_config[i].pipe_worker2main) < 0) rte_panic("Cannot create pipe\n"); lcore_config[i].state = WAIT; /* create a thread for each lcore */ ret = eal_worker_thread_create(i); if (ret != 0) rte_panic("Cannot create thread\n"); /* Set thread_name for aid in debugging. */ ret = snprintf(thread_name, sizeof(thread_name), "dpdk-worker%d", i); if (ret >= RTE_THREAD_NAME_SIZE) EAL_LOG(INFO, "Worker thread name %s truncated", thread_name); rte_thread_set_name(lcore_config[i].thread_id, thread_name); ret = rte_thread_set_affinity_by_id(lcore_config[i].thread_id, &lcore_config[i].cpuset); if (ret != 0) rte_panic("Cannot set affinity\n"); } /* * Launch a dummy function on all worker lcores, so that main lcore * knows they are all ready when this function returns. */ rte_eal_mp_remote_launch(sync_func, NULL, SKIP_MAIN); rte_eal_mp_wait_lcore(); /* initialize services so vdevs register service during bus_probe. */ ret = rte_service_init(); if (ret) { rte_eal_init_alert("rte_service_init() failed"); rte_errno = -ret; goto err_out; } /* Probe all the buses and devices/drivers on them */ if (rte_bus_probe()) { rte_eal_init_alert("Cannot probe devices"); rte_errno = ENOTSUP; goto err_out; } /* initialize default service/lcore mappings and start running. Ignore * -ENOTSUP, as it indicates no service coremask passed to EAL. */ ret = rte_service_start_with_defaults(); if (ret < 0 && ret != -ENOTSUP) { rte_errno = -ret; goto err_out; } /* * Clean up unused files in runtime directory. We do this at the end of * init and not at the beginning because we want to clean stuff up * whether we are primary or secondary process, but we cannot remove * primary process' files because secondary should be able to run even * if primary process is dead. * * In no_shconf mode, no runtime directory is created in the first * place, so no cleanup needed. */ if (!internal_conf->no_shconf && eal_clean_runtime_dir() < 0) { rte_eal_init_alert("Cannot clear runtime directory"); goto err_out; } if (rte_eal_process_type() == RTE_PROC_PRIMARY && !internal_conf->no_telemetry) { if (rte_telemetry_init(rte_eal_get_runtime_dir(), rte_version(), &internal_conf->ctrl_cpuset) != 0) goto err_out; } eal_mcfg_complete(); return fctret; err_out: rte_atomic_store_explicit(&run_once, 0, rte_memory_order_relaxed); eal_clean_saved_args(); return -1; } static int mark_freeable(const struct rte_memseg_list *msl, const struct rte_memseg *ms, void *arg __rte_unused) { /* ms is const, so find this memseg */ struct rte_memseg *found; if (msl->external) return 0; found = rte_mem_virt2memseg(ms->addr, msl); found->flags &= ~RTE_MEMSEG_FLAG_DO_NOT_FREE; return 0; } RTE_EXPORT_SYMBOL(rte_eal_cleanup) int rte_eal_cleanup(void) { static RTE_ATOMIC(uint32_t) run_once; uint32_t has_run = 0; if (!rte_atomic_compare_exchange_strong_explicit(&run_once, &has_run, 1, rte_memory_order_relaxed, rte_memory_order_relaxed)) { EAL_LOG(WARNING, "Already called cleanup"); rte_errno = EALREADY; return -1; } /* if we're in a primary process, we need to mark hugepages as freeable * so that finalization can release them back to the system. */ struct internal_config *internal_conf = eal_get_internal_configuration(); if (rte_eal_process_type() == RTE_PROC_PRIMARY && internal_conf->hugepage_file.unlink_existing) rte_memseg_walk(mark_freeable, NULL); rte_service_finalize(); eal_bus_cleanup(); vfio_mp_sync_cleanup(); rte_mp_channel_cleanup(); rte_eal_alarm_cleanup(); rte_trace_save(); eal_trace_fini(); eal_mp_dev_hotplug_cleanup(); /* after this point, any DPDK pointers will become dangling */ rte_eal_memory_detach(); rte_eal_malloc_heap_cleanup(); eal_cleanup_config(internal_conf); eal_lcore_var_cleanup(); rte_eal_log_cleanup(); return 0; } RTE_EXPORT_SYMBOL(rte_eal_create_uio_dev) int rte_eal_create_uio_dev(void) { const struct internal_config *internal_conf = eal_get_internal_configuration(); return internal_conf->create_uio_dev; } RTE_EXPORT_SYMBOL(rte_eal_vfio_intr_mode) enum rte_intr_mode rte_eal_vfio_intr_mode(void) { const struct internal_config *internal_conf = eal_get_internal_configuration(); return internal_conf->vfio_intr_mode; } RTE_EXPORT_SYMBOL(rte_eal_vfio_get_vf_token) void rte_eal_vfio_get_vf_token(rte_uuid_t vf_token) { struct internal_config *cfg = eal_get_internal_configuration(); rte_uuid_copy(vf_token, cfg->vfio_vf_token); } int rte_eal_check_module(const char *module_name) { char sysfs_mod_name[PATH_MAX]; struct stat st; int n; if (NULL == module_name) return -1; /* Check if there is sysfs mounted */ if (stat("/sys/module", &st) != 0) { EAL_LOG(DEBUG, "sysfs is not mounted! error %i (%s)", errno, strerror(errno)); return -1; } /* A module might be built-in, therefore try sysfs */ n = snprintf(sysfs_mod_name, PATH_MAX, "/sys/module/%s", module_name); if (n < 0 || n > PATH_MAX) { EAL_LOG(DEBUG, "Could not format module path"); return -1; } if (stat(sysfs_mod_name, &st) != 0) { EAL_LOG(DEBUG, "Module %s not found! error %i (%s)", sysfs_mod_name, errno, strerror(errno)); return 0; } /* Module has been found */ return 1; }