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Before: ``` struct foobar { avl avl; ... } ``` After: ``` struct foobar { avl_t avl; ... }; ``` Which makes figuring out the type from field name easier.
377 lines
12 KiB
C
377 lines
12 KiB
C
// SPDX-License-Identifier: GPL-3.0-or-later
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#include "spawn.h"
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static uv_loop_t *loop;
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static uv_pipe_t server_pipe;
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static int server_shutdown = 0;
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static uv_thread_t thread;
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/* spawn outstanding execution structure */
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static avl_tree_lock spawn_outstanding_exec_tree;
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static char prot_buffer[MAX_COMMAND_LENGTH];
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static unsigned prot_buffer_len = 0;
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struct spawn_execution_info {
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avl_t avl;
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void *handle;
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int exit_status;
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pid_t pid;
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struct spawn_execution_info *next;
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};
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int spawn_exec_compare(void *a, void *b)
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{
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struct spawn_execution_info *spwna = a, *spwnb = b;
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if (spwna->pid < spwnb->pid) return -1;
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if (spwna->pid > spwnb->pid) return 1;
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return 0;
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}
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/* wake up waiter thread to reap the spawned processes */
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static uv_mutex_t wait_children_mutex;
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static uv_cond_t wait_children_cond;
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static uint8_t spawned_processes;
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static struct spawn_execution_info *child_waited_list;
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static uv_async_t child_waited_async;
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static inline struct spawn_execution_info *dequeue_child_waited_list(void)
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{
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struct spawn_execution_info *exec_info;
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uv_mutex_lock(&wait_children_mutex);
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if (NULL == child_waited_list) {
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exec_info = NULL;
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} else {
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exec_info = child_waited_list;
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child_waited_list = exec_info->next;
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}
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uv_mutex_unlock(&wait_children_mutex);
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return exec_info;
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}
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static inline void enqueue_child_waited_list(struct spawn_execution_info *exec_info)
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{
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uv_mutex_lock(&wait_children_mutex);
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exec_info->next = child_waited_list;
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child_waited_list = exec_info;
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uv_mutex_unlock(&wait_children_mutex);
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}
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static void after_pipe_write(uv_write_t *req, int status)
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{
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(void)status;
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#ifdef SPAWN_DEBUG
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fprintf(stderr, "SERVER %s called status=%d\n", __func__, status);
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#endif
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freez(req->data);
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}
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static void child_waited_async_cb(uv_async_t *async_handle)
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{
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uv_buf_t writebuf[2];
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int ret;
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struct spawn_execution_info *exec_info;
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struct write_context *write_ctx;
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(void)async_handle;
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while (NULL != (exec_info = dequeue_child_waited_list())) {
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write_ctx = mallocz(sizeof(*write_ctx));
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write_ctx->write_req.data = write_ctx;
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write_ctx->header.opcode = SPAWN_PROT_CMD_EXIT_STATUS;
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write_ctx->header.handle = exec_info->handle;
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write_ctx->exit_status.exec_exit_status = exec_info->exit_status;
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writebuf[0] = uv_buf_init((char *) &write_ctx->header, sizeof(write_ctx->header));
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writebuf[1] = uv_buf_init((char *) &write_ctx->exit_status, sizeof(write_ctx->exit_status));
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#ifdef SPAWN_DEBUG
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fprintf(stderr, "SERVER %s SPAWN_PROT_CMD_EXIT_STATUS\n", __func__);
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#endif
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ret = uv_write(&write_ctx->write_req, (uv_stream_t *) &server_pipe, writebuf, 2, after_pipe_write);
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fatal_assert(ret == 0);
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freez(exec_info);
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}
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}
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static void wait_children(void *arg)
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{
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siginfo_t i;
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struct spawn_execution_info tmp, *exec_info;
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avl_t *ret_avl;
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(void)arg;
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while (!server_shutdown) {
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uv_mutex_lock(&wait_children_mutex);
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while (!spawned_processes) {
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uv_cond_wait(&wait_children_cond, &wait_children_mutex);
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}
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spawned_processes = 0;
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uv_mutex_unlock(&wait_children_mutex);
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while (!server_shutdown) {
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i.si_pid = 0;
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if (waitid(P_ALL, (id_t) 0, &i, WEXITED) == -1) {
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if (errno != ECHILD)
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fprintf(stderr, "SPAWN: Failed to wait: %s\n", strerror(errno));
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break;
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}
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if (i.si_pid == 0) {
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fprintf(stderr, "SPAWN: No child exited.\n");
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break;
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}
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#ifdef SPAWN_DEBUG
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fprintf(stderr, "SPAWN: Successfully waited for pid:%d.\n", (int) i.si_pid);
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#endif
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fatal_assert(CLD_EXITED == i.si_code);
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tmp.pid = (pid_t)i.si_pid;
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while (NULL == (ret_avl = avl_remove_lock(&spawn_outstanding_exec_tree, (avl_t *)&tmp))) {
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fprintf(stderr,
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"SPAWN: race condition detected, waiting for child process %d to be indexed.\n",
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(int)tmp.pid);
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(void)sleep_usec(10000); /* 10 msec */
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}
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exec_info = (struct spawn_execution_info *)ret_avl;
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exec_info->exit_status = i.si_status;
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enqueue_child_waited_list(exec_info);
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/* wake up event loop */
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fatal_assert(0 == uv_async_send(&child_waited_async));
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}
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}
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}
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void spawn_protocol_execute_command(void *handle, char *command_to_run, uint16_t command_length)
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{
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uv_buf_t writebuf[2];
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int ret;
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avl_t *avl_ret;
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struct spawn_execution_info *exec_info;
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struct write_context *write_ctx;
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write_ctx = mallocz(sizeof(*write_ctx));
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write_ctx->write_req.data = write_ctx;
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command_to_run[command_length] = '\0';
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#ifdef SPAWN_DEBUG
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fprintf(stderr, "SPAWN: executing command '%s'\n", command_to_run);
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#endif
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if (netdata_spawn(command_to_run, &write_ctx->spawn_result.exec_pid)) {
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fprintf(stderr, "SPAWN: Cannot spawn(\"%s\", \"r\").\n", command_to_run);
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write_ctx->spawn_result.exec_pid = 0;
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} else { /* successfully spawned command */
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write_ctx->spawn_result.exec_run_timestamp = now_realtime_sec();
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/* record it for when the process finishes execution */
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exec_info = mallocz(sizeof(*exec_info));
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exec_info->handle = handle;
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exec_info->pid = write_ctx->spawn_result.exec_pid;
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avl_ret = avl_insert_lock(&spawn_outstanding_exec_tree, (avl_t *)exec_info);
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fatal_assert(avl_ret == (avl_t *)exec_info);
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/* wake up the thread that blocks waiting for processes to exit */
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uv_mutex_lock(&wait_children_mutex);
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spawned_processes = 1;
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uv_cond_signal(&wait_children_cond);
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uv_mutex_unlock(&wait_children_mutex);
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}
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write_ctx->header.opcode = SPAWN_PROT_SPAWN_RESULT;
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write_ctx->header.handle = handle;
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writebuf[0] = uv_buf_init((char *)&write_ctx->header, sizeof(write_ctx->header));
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writebuf[1] = uv_buf_init((char *)&write_ctx->spawn_result, sizeof(write_ctx->spawn_result));
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#ifdef SPAWN_DEBUG
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fprintf(stderr, "SERVER %s SPAWN_PROT_SPAWN_RESULT\n", __func__);
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#endif
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ret = uv_write(&write_ctx->write_req, (uv_stream_t *)&server_pipe, writebuf, 2, after_pipe_write);
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fatal_assert(ret == 0);
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}
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static void server_parse_spawn_protocol(unsigned source_len, char *source)
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{
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unsigned required_len;
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struct spawn_prot_header *header;
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struct spawn_prot_exec_cmd *payload;
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uint16_t command_length;
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while (source_len) {
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required_len = sizeof(*header);
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if (prot_buffer_len < required_len)
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copy_to_prot_buffer(prot_buffer, &prot_buffer_len, required_len - prot_buffer_len, &source, &source_len);
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if (prot_buffer_len < required_len)
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return; /* Source buffer ran out */
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header = (struct spawn_prot_header *)prot_buffer;
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fatal_assert(SPAWN_PROT_EXEC_CMD == header->opcode);
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fatal_assert(NULL != header->handle);
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required_len += sizeof(*payload);
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if (prot_buffer_len < required_len)
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copy_to_prot_buffer(prot_buffer, &prot_buffer_len, required_len - prot_buffer_len, &source, &source_len);
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if (prot_buffer_len < required_len)
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return; /* Source buffer ran out */
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payload = (struct spawn_prot_exec_cmd *)(header + 1);
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command_length = payload->command_length;
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required_len += command_length;
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if (unlikely(required_len > MAX_COMMAND_LENGTH - 1)) {
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fprintf(stderr, "SPAWN: Ran out of protocol buffer space.\n");
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command_length = (MAX_COMMAND_LENGTH - 1) - (sizeof(*header) + sizeof(*payload));
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required_len = MAX_COMMAND_LENGTH - 1;
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}
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if (prot_buffer_len < required_len)
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copy_to_prot_buffer(prot_buffer, &prot_buffer_len, required_len - prot_buffer_len, &source, &source_len);
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if (prot_buffer_len < required_len)
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return; /* Source buffer ran out */
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spawn_protocol_execute_command(header->handle, payload->command_to_run, command_length);
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prot_buffer_len = 0;
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}
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}
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static void on_pipe_read(uv_stream_t *pipe, ssize_t nread, const uv_buf_t *buf)
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{
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if (0 == nread) {
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fprintf(stderr, "SERVER %s: Zero bytes read from spawn pipe.\n", __func__);
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} else if (UV_EOF == nread) {
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fprintf(stderr, "EOF found in spawn pipe.\n");
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} else if (nread < 0) {
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fprintf(stderr, "%s: %s\n", __func__, uv_strerror(nread));
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}
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if (nread < 0) { /* stop spawn server due to EOF or error */
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int error;
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uv_mutex_lock(&wait_children_mutex);
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server_shutdown = 1;
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spawned_processes = 1;
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uv_cond_signal(&wait_children_cond);
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uv_mutex_unlock(&wait_children_mutex);
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fprintf(stderr, "Shutting down spawn server event loop.\n");
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/* cleanup operations of the event loop */
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(void)uv_read_stop((uv_stream_t *) pipe);
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uv_close((uv_handle_t *)&server_pipe, NULL);
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error = uv_thread_join(&thread);
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if (error) {
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fprintf(stderr, "uv_thread_create(): %s", uv_strerror(error));
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}
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/* After joining it is safe to destroy child_waited_async */
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uv_close((uv_handle_t *)&child_waited_async, NULL);
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} else if (nread) {
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#ifdef SPAWN_DEBUG
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fprintf(stderr, "SERVER %s nread %u\n", __func__, (unsigned)nread);
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#endif
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server_parse_spawn_protocol(nread, buf->base);
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}
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if (buf && buf->len) {
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freez(buf->base);
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}
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}
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static void on_read_alloc(uv_handle_t *handle,
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size_t suggested_size,
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uv_buf_t* buf)
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{
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(void)handle;
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buf->base = mallocz(suggested_size);
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buf->len = suggested_size;
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}
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static void ignore_signal_handler(int signo) {
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/*
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* By having a signal handler we allow spawned processes to reset default signal dispositions. Setting SIG_IGN
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* would be inherited by the spawned children which is not desirable.
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*/
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(void)signo;
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}
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void spawn_server(void)
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{
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int error;
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test_clock_boottime();
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test_clock_monotonic_coarse();
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// close all open file descriptors, except the standard ones
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// the caller may have left open files (lxc-attach has this issue)
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int fd;
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for(fd = (int)(sysconf(_SC_OPEN_MAX) - 1) ; fd > 2 ; --fd)
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if(fd_is_valid(fd))
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close(fd);
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// Have the libuv IPC pipe be closed when forking child processes
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(void) fcntl(0, F_SETFD, FD_CLOEXEC);
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fprintf(stderr, "Spawn server is up.\n");
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// Define signals we want to ignore
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struct sigaction sa;
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int signals_to_ignore[] = {SIGPIPE, SIGINT, SIGQUIT, SIGTERM, SIGHUP, SIGUSR1, SIGUSR2, SIGBUS, SIGCHLD};
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unsigned ignore_length = sizeof(signals_to_ignore) / sizeof(signals_to_ignore[0]);
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unsigned i;
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for (i = 0; i < ignore_length ; ++i) {
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sa.sa_flags = 0;
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sigemptyset(&sa.sa_mask);
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sa.sa_handler = ignore_signal_handler;
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if(sigaction(signals_to_ignore[i], &sa, NULL) == -1)
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fprintf(stderr, "SPAWN: Failed to change signal handler for signal: %d.\n", signals_to_ignore[i]);
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}
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signals_unblock();
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loop = uv_default_loop();
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loop->data = NULL;
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error = uv_pipe_init(loop, &server_pipe, 1);
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if (error) {
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fprintf(stderr, "uv_pipe_init(): %s\n", uv_strerror(error));
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exit(error);
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}
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fatal_assert(server_pipe.ipc);
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error = uv_pipe_open(&server_pipe, 0 /* UV_STDIN_FD */);
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if (error) {
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fprintf(stderr, "uv_pipe_open(): %s\n", uv_strerror(error));
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exit(error);
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}
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avl_init_lock(&spawn_outstanding_exec_tree, spawn_exec_compare);
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spawned_processes = 0;
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fatal_assert(0 == uv_cond_init(&wait_children_cond));
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fatal_assert(0 == uv_mutex_init(&wait_children_mutex));
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child_waited_list = NULL;
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error = uv_async_init(loop, &child_waited_async, child_waited_async_cb);
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if (error) {
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fprintf(stderr, "uv_async_init(): %s\n", uv_strerror(error));
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exit(error);
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}
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error = uv_thread_create(&thread, wait_children, NULL);
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if (error) {
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fprintf(stderr, "uv_thread_create(): %s\n", uv_strerror(error));
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exit(error);
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}
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prot_buffer_len = 0;
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error = uv_read_start((uv_stream_t *)&server_pipe, on_read_alloc, on_pipe_read);
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fatal_assert(error == 0);
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while (!server_shutdown) {
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uv_run(loop, UV_RUN_DEFAULT);
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}
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fprintf(stderr, "Shutting down spawn server loop complete.\n");
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fatal_assert(0 == uv_loop_close(loop));
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exit(0);
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}
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