608 lines
11 KiB
C
608 lines
11 KiB
C
/*
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* MIT License
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*
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* Copyright (c) 2021 Barcelona Supercomputing Center (BSC)
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*
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* Permission is hereby granted, free of charge, to any person obtaining a copy
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* of this software and associated documentation files (the "Software"), to deal
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* in the Software without restriction, including without limitation the rights
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* to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
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* copies of the Software, and to permit persons to whom the Software is
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* furnished to do so, subject to the following conditions:
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*
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* The above copyright notice and this permission notice shall be included in all
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* copies or substantial portions of the Software.
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*
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* THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
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* IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
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* FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
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* AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
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* LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
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* OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
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* SOFTWARE.
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*/
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#define _GNU_SOURCE
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#include <unistd.h>
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#include <stdio.h>
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#include <stdint.h>
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#include <stdlib.h>
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#include <time.h>
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#include <string.h>
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#include <linux/limits.h>
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#include <errno.h>
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#include <sys/stat.h>
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#include <sys/mman.h>
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#include <stdatomic.h>
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#include <assert.h>
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#include <unistd.h>
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#include <sys/stat.h>
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#include <fcntl.h>
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#include <dirent.h>
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#include "ovni.h"
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#include "common.h"
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#include "parson.h"
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#ifndef gettid
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# include <sys/syscall.h>
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# define gettid() ((pid_t)syscall(SYS_gettid))
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#endif
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//#define ENABLE_SLOW_CHECKS
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//#define USE_RDTSC
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/* Data per process */
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struct ovni_rproc rproc = {0};
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/* Data per thread */
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_Thread_local struct ovni_rthread rthread = {0};
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static int
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create_trace_dirs(char *tracedir, const char *loom, int proc)
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{
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char path[PATH_MAX];
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snprintf(path, PATH_MAX, "%s", tracedir);
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/* May fail if another loom created the directory already */
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mkdir(path, 0755);
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snprintf(path, PATH_MAX, "%s/loom.%s", tracedir, loom);
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/* Also may fail */
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mkdir(path, 0755);
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snprintf(rproc.dir, PATH_MAX, "%s/loom.%s/proc.%d", tracedir, loom, proc);
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/* But this one shall not fail */
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if(mkdir(rproc.dir, 0755))
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{
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fprintf(stderr, "mkdir %s: %s\n", rproc.dir, strerror(errno));
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return -1;
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}
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return 0;
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}
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static int
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create_trace_stream(void)
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{
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char path[PATH_MAX];
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if(snprintf(path, PATH_MAX, "%s/thread.%d", rproc.dir, rthread.tid)
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>= PATH_MAX)
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{
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abort();
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}
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//rthread.streamfd = open(path, O_WRONLY | O_CREAT | O_DSYNC, 0644);
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rthread.streamfd = open(path, O_WRONLY | O_CREAT, 0644);
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if(rthread.streamfd == -1)
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{
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fprintf(stderr, "open %s failed: %s\n", path, strerror(errno));
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return -1;
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}
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return 0;
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}
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static int
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proc_metadata_init(struct ovni_rproc *proc)
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{
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proc->meta = json_value_init_object();
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if(proc->meta == NULL)
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{
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err("failed to create json object\n");
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abort();
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}
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return 0;
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}
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static int
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proc_metadata_store(struct ovni_rproc *proc)
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{
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char path[PATH_MAX];
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if(snprintf(path, PATH_MAX, "%s/metadata.json", proc->dir) >= PATH_MAX)
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abort();
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assert(proc->meta != NULL);
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if(json_serialize_to_file_pretty(proc->meta, path) != JSONSuccess)
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{
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err("failed to write proc metadata\n");
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abort();
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}
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return 0;
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}
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void
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ovni_add_cpu(int index, int phyid)
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{
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JSON_Array *cpuarray;
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JSON_Object *cpu;
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JSON_Object *meta;
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JSON_Value *valcpu, *valcpuarray;
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int append = 0;
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assert(rproc.ready == 1);
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assert(rproc.meta != NULL);
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meta = json_value_get_object(rproc.meta);
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assert(meta);
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/* Find the CPU array and create it if needed */
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cpuarray = json_object_dotget_array(meta, "cpus");
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if(cpuarray == NULL)
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{
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valcpuarray = json_value_init_array();
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assert(valcpuarray);
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cpuarray = json_array(valcpuarray);
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assert(cpuarray);
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append = 1;
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}
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valcpuarray = json_array_get_wrapping_value(cpuarray);
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assert(valcpuarray);
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valcpu = json_value_init_object();
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assert(valcpu);
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cpu = json_object(valcpu);
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assert(cpu);
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if(json_object_set_number(cpu, "index", index) != 0)
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abort();
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if(json_object_set_number(cpu, "phyid", phyid) != 0)
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abort();
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if(json_array_append_value(cpuarray, valcpu) != 0)
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abort();
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if(append && json_object_set_value(meta, "cpus", valcpuarray) != 0)
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abort();
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//puts(json_serialize_to_string_pretty(rproc.meta));
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}
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static void
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proc_set_app(int appid)
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{
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JSON_Object *meta;
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assert(rproc.ready == 1);
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assert(rproc.meta != NULL);
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meta = json_value_get_object(rproc.meta);
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assert(meta);
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if(json_object_set_number(meta, "app_id", appid) != 0)
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abort();
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}
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int
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ovni_proc_init(int app, const char *loom, int proc)
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{
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assert(rproc.ready == 0);
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memset(&rproc, 0, sizeof(rproc));
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/* FIXME: strcpy is insecure */
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strcpy(rproc.loom, loom);
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rproc.proc = proc;
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rproc.app = app;
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/* By default we use the monotonic clock */
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rproc.clockid = CLOCK_MONOTONIC;
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if(create_trace_dirs(OVNI_TRACEDIR, loom, proc))
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abort();
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if(proc_metadata_init(&rproc) != 0)
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abort();
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rproc.ready = 1;
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proc_set_app(app);
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return 0;
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}
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int
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ovni_proc_fini(void)
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{
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if(proc_metadata_store(&rproc) != 0)
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abort();
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return 0;
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}
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int
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ovni_thread_init(pid_t tid)
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{
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assert(tid != 0);
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if(rthread.ready)
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{
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fprintf(stderr, "warning: thread tid=%d already initialized\n",
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tid);
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return 0;
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}
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assert(rthread.ready == 0);
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assert(rthread.tid == 0);
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assert(rthread.cpu == 0);
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assert(rproc.ready == 1);
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memset(&rthread, 0, sizeof(rthread));
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rthread.tid = tid;
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rthread.cpu = -666;
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rthread.evlen = 0;
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rthread.evbuf = malloc(OVNI_MAX_EV_BUF);
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if(rthread.evbuf == NULL)
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{
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perror("malloc");
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abort();
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}
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if(create_trace_stream())
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abort();
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rthread.ready = 1;
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return 0;
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}
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void
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ovni_thread_free(void)
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{
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assert(rthread.ready);
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free(rthread.evbuf);
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}
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int
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ovni_thread_isready(void)
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{
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return rthread.ready;
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}
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#ifdef USE_RDTSC
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static inline
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uint64_t rdtsc(void)
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{
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uint32_t lo, hi;
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// RDTSC copies contents of 64-bit TSC into EDX:EAX
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__asm__ volatile("rdtsc" : "=a" (lo), "=d" (hi));
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return (uint64_t) hi << 32 | lo;
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}
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#endif
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uint64_t
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ovni_get_clock(void)
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{
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struct timespec tp;
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uint64_t ns = 1000LL * 1000LL * 1000LL;
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uint64_t raw;
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#ifdef USE_RDTSC
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raw = rdtsc();
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#else
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#ifdef ENABLE_SLOW_CHECKS
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int ret = clock_gettime(rproc.clockid, &tp);
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if(ret) abort();
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#else
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clock_gettime(rproc.clockid, &tp);
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#endif /* ENABLE_SLOW_CHECKS */
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raw = tp.tv_sec * ns + tp.tv_nsec;
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rthread.clockvalue = (uint64_t) raw;
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#endif /* USE_RDTSC */
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return raw;
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}
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/* Sets the current time so that all subsequent events have the new
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* timestamp */
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void
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ovni_clock_update(void)
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{
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rthread.clockvalue = ovni_get_clock();
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}
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//static void
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//hexdump(uint8_t *buf, size_t size)
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//{
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// size_t i, j;
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//
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// //printf("writing %ld bytes in cpu=%d\n", size, rthread.cpu);
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//
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// for(i=0; i<size; i+=16)
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// {
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// for(j=0; j<16 && i+j < size; j++)
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// {
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// err("%02x ", buf[i+j]);
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// }
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// err("\n");
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// }
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//}
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static int
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ovni_write(uint8_t *buf, size_t size)
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{
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ssize_t written;
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do
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{
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written = write(rthread.streamfd, buf, size);
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if(written < 0)
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{
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perror("write");
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return -1;
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}
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size -= written;
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buf += written;
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} while(size > 0);
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return 0;
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}
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static int
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flush_evbuf(void)
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{
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int ret;
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assert(rthread.ready);
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assert(rproc.ready);
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ret = ovni_write(rthread.evbuf, rthread.evlen);
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rthread.evlen = 0;
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return ret;
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}
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static void
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ovni_ev_set_clock(struct ovni_ev *ev)
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{
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ev->header.clock = rthread.clockvalue;
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}
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uint64_t
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ovni_ev_get_clock(const struct ovni_ev *ev)
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{
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return ev->header.clock;
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}
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void
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ovni_ev_set_mcv(struct ovni_ev *ev, const char *mcv)
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{
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ev->header.model = mcv[0];
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ev->header.category = mcv[1];
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ev->header.value = mcv[2];
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}
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static size_t
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get_jumbo_payload_size(const struct ovni_ev *ev)
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{
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return sizeof(ev->payload.jumbo.size) + ev->payload.jumbo.size;
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}
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int
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ovni_payload_size(const struct ovni_ev *ev)
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{
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int size;
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if(ev->header.flags & OVNI_EV_JUMBO)
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return get_jumbo_payload_size(ev);
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size = ev->header.flags & 0x0f;
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if(size == 0)
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return 0;
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/* The minimum size is 2 bytes, so we can encode a length of 16
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* bytes using 4 bits (0x0f) */
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size++;
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return size;
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}
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void
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ovni_payload_add(struct ovni_ev *ev, const uint8_t *buf, int size)
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{
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size_t payload_size;
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assert((ev->header.flags & OVNI_EV_JUMBO) == 0);
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assert(size >= 2);
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payload_size = ovni_payload_size(ev);
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/* Ensure we have room */
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assert(payload_size + size <= sizeof(ev->payload));
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memcpy(&ev->payload.u8[payload_size], buf, size);
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payload_size += size;
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ev->header.flags = (ev->header.flags & 0xf0) | ((payload_size-1) & 0x0f);
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}
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int
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ovni_ev_size(const struct ovni_ev *ev)
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{
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return sizeof(ev->header) + ovni_payload_size(ev);
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}
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static void
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ovni_ev_add(struct ovni_ev *ev);
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int
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ovni_flush(void)
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{
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int ret = 0;
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struct ovni_ev pre={0}, post={0};
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assert(rthread.ready);
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assert(rproc.ready);
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ovni_clock_update();
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ovni_ev_set_clock(&pre);
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ovni_ev_set_mcv(&pre, "OF[");
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ret = flush_evbuf();
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ovni_clock_update();
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ovni_ev_set_clock(&post);
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ovni_ev_set_mcv(&post, "OF]");
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/* Add the two flush events */
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ovni_ev_add(&pre);
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ovni_ev_add(&post);
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return ret;
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}
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static void
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add_flush_events(uint64_t t0, uint64_t t1)
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{
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struct ovni_ev pre={0}, post={0};
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pre.header.clock = t0;
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ovni_ev_set_mcv(&pre, "OF[");
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post.header.clock = t1;
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ovni_ev_set_mcv(&post, "OF]");
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/* Add the two flush events */
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ovni_ev_add(&pre);
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ovni_ev_add(&post);
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}
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static void
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ovni_ev_add_jumbo(struct ovni_ev *ev, const uint8_t *buf, uint32_t bufsize)
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{
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size_t evsize, totalsize;
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int flushed = 0;
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uint64_t t0, t1;
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assert(ovni_payload_size(ev) == 0);
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ovni_payload_add(ev, (uint8_t *) &bufsize, sizeof(bufsize));
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evsize = ovni_ev_size(ev);
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totalsize = evsize + bufsize;
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/* Check if the event fits or flush first otherwise */
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if(rthread.evlen + totalsize >= OVNI_MAX_EV_BUF)
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{
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/* Measure the flush times */
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t0 = ovni_get_clock();
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flush_evbuf();
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t1 = ovni_get_clock();
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flushed = 1;
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}
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/* Se the jumbo flag here, so we capture the previous evsize
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* properly, ignoring the jumbo buffer */
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ev->header.flags |= OVNI_EV_JUMBO;
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memcpy(&rthread.evbuf[rthread.evlen], ev, evsize);
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rthread.evlen += evsize;
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memcpy(&rthread.evbuf[rthread.evlen], buf, bufsize);
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rthread.evlen += bufsize;
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assert(rthread.evlen < OVNI_MAX_EV_BUF);
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if(flushed)
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{
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/* Emit the flush events *after* the user event */
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add_flush_events(t0, t1);
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/* Set the current clock to the last event */
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rthread.clockvalue = t1;
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}
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}
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static void
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ovni_ev_add(struct ovni_ev *ev)
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{
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int size, flushed = 0;
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uint64_t t0, t1;
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size = ovni_ev_size(ev);
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/* Check if the event fits or flush first otherwise */
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if(rthread.evlen + size >= OVNI_MAX_EV_BUF)
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{
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/* Measure the flush times */
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t0 = ovni_get_clock();
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flush_evbuf();
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t1 = ovni_get_clock();
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flushed = 1;
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}
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memcpy(&rthread.evbuf[rthread.evlen], ev, size);
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rthread.evlen += size;
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if(flushed)
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{
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/* Emit the flush events *after* the user event */
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add_flush_events(t0, t1);
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/* Set the current clock to the last event */
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rthread.clockvalue = t1;
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}
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}
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void
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ovni_ev_jumbo_emit(struct ovni_ev *ev, const uint8_t *buf, uint32_t bufsize)
|
|
{
|
|
ovni_ev_set_clock(ev);
|
|
ovni_ev_add_jumbo(ev, buf, bufsize);
|
|
}
|
|
|
|
void
|
|
ovni_ev_emit(struct ovni_ev *ev)
|
|
{
|
|
ovni_ev_set_clock(ev);
|
|
ovni_ev_add(ev);
|
|
}
|