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277 lines
7.8 KiB
277 lines
7.8 KiB
#!/usr/bin/python |
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# @lint-avoid-python-3-compatibility-imports |
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# |
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# runqlat Run queue (scheduler) latency as a histogram. |
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# For Linux, uses BCC, eBPF. |
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# |
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# USAGE: runqlat [-h] [-T] [-m] [-P] [-L] [-p PID] [interval] [count] |
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# |
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# This measures the time a task spends waiting on a run queue for a turn |
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# on-CPU, and shows this time as a histogram. This time should be small, but a |
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# task may need to wait its turn due to CPU load. |
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# |
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# This measures two types of run queue latency: |
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# 1. The time from a task being enqueued on a run queue to its context switch |
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# and execution. This traces ttwu_do_wakeup(), wake_up_new_task() -> |
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# finish_task_switch() with either raw tracepoints (if supported) or kprobes |
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# and instruments the run queue latency after a voluntary context switch. |
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# 2. The time from when a task was involuntary context switched and still |
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# in the runnable state, to when it next executed. This is instrumented |
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# from finish_task_switch() alone. |
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# |
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# Copyright 2016 Netflix, Inc. |
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# Licensed under the Apache License, Version 2.0 (the "License") |
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# |
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# 07-Feb-2016 Brendan Gregg Created this. |
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from __future__ import print_function |
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from bcc import BPF |
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from time import sleep, strftime |
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import argparse |
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# arguments |
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examples = """examples: |
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./runqlat # summarize run queue latency as a histogram |
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./runqlat 1 10 # print 1 second summaries, 10 times |
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./runqlat -mT 1 # 1s summaries, milliseconds, and timestamps |
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./runqlat -P # show each PID separately |
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./runqlat -p 185 # trace PID 185 only |
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""" |
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parser = argparse.ArgumentParser( |
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description="Summarize run queue (scheduler) latency as a histogram", |
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formatter_class=argparse.RawDescriptionHelpFormatter, |
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epilog=examples) |
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parser.add_argument("-T", "--timestamp", action="store_true", |
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help="include timestamp on output") |
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parser.add_argument("-m", "--milliseconds", action="store_true", |
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help="millisecond histogram") |
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parser.add_argument("-P", "--pids", action="store_true", |
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help="print a histogram per process ID") |
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# PID options are --pid and --pids, so namespaces should be --pidns (not done |
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# yet) and --pidnss: |
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parser.add_argument("--pidnss", action="store_true", |
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help="print a histogram per PID namespace") |
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parser.add_argument("-L", "--tids", action="store_true", |
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help="print a histogram per thread ID") |
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parser.add_argument("-p", "--pid", |
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help="trace this PID only") |
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parser.add_argument("interval", nargs="?", default=99999999, |
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help="output interval, in seconds") |
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parser.add_argument("count", nargs="?", default=99999999, |
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help="number of outputs") |
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parser.add_argument("--ebpf", action="store_true", |
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help=argparse.SUPPRESS) |
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args = parser.parse_args() |
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countdown = int(args.count) |
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debug = 0 |
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# define BPF program |
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bpf_text = """ |
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#include <uapi/linux/ptrace.h> |
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#include <linux/sched.h> |
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#include <linux/nsproxy.h> |
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#include <linux/pid_namespace.h> |
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typedef struct pid_key { |
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u64 id; // work around |
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u64 slot; |
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} pid_key_t; |
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typedef struct pidns_key { |
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u64 id; // work around |
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u64 slot; |
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} pidns_key_t; |
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BPF_HASH(start, u32); |
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STORAGE |
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struct rq; |
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// record enqueue timestamp |
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static int trace_enqueue(u32 tgid, u32 pid) |
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{ |
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if (FILTER || pid == 0) |
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return 0; |
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u64 ts = bpf_ktime_get_ns(); |
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start.update(&pid, &ts); |
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return 0; |
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} |
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""" |
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bpf_text_kprobe = """ |
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int trace_wake_up_new_task(struct pt_regs *ctx, struct task_struct *p) |
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{ |
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return trace_enqueue(p->tgid, p->pid); |
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} |
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int trace_ttwu_do_wakeup(struct pt_regs *ctx, struct rq *rq, struct task_struct *p, |
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int wake_flags) |
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{ |
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return trace_enqueue(p->tgid, p->pid); |
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} |
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// calculate latency |
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int trace_run(struct pt_regs *ctx, struct task_struct *prev) |
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{ |
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u32 pid, tgid; |
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// ivcsw: treat like an enqueue event and store timestamp |
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if (prev->state == TASK_RUNNING) { |
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tgid = prev->tgid; |
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pid = prev->pid; |
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if (!(FILTER || pid == 0)) { |
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u64 ts = bpf_ktime_get_ns(); |
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start.update(&pid, &ts); |
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} |
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} |
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tgid = bpf_get_current_pid_tgid() >> 32; |
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pid = bpf_get_current_pid_tgid(); |
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if (FILTER || pid == 0) |
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return 0; |
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u64 *tsp, delta; |
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// fetch timestamp and calculate delta |
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tsp = start.lookup(&pid); |
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if (tsp == 0) { |
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return 0; // missed enqueue |
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} |
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delta = bpf_ktime_get_ns() - *tsp; |
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FACTOR |
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// store as histogram |
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STORE |
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start.delete(&pid); |
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return 0; |
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} |
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""" |
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bpf_text_raw_tp = """ |
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RAW_TRACEPOINT_PROBE(sched_wakeup) |
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{ |
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// TP_PROTO(struct task_struct *p) |
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struct task_struct *p = (struct task_struct *)ctx->args[0]; |
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return trace_enqueue(p->tgid, p->pid); |
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} |
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RAW_TRACEPOINT_PROBE(sched_wakeup_new) |
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{ |
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// TP_PROTO(struct task_struct *p) |
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struct task_struct *p = (struct task_struct *)ctx->args[0]; |
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return trace_enqueue(p->tgid, p->pid); |
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} |
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RAW_TRACEPOINT_PROBE(sched_switch) |
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{ |
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// TP_PROTO(bool preempt, struct task_struct *prev, struct task_struct *next) |
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struct task_struct *prev = (struct task_struct *)ctx->args[1]; |
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struct task_struct *next = (struct task_struct *)ctx->args[2]; |
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u32 pid, tgid; |
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// ivcsw: treat like an enqueue event and store timestamp |
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if (prev->state == TASK_RUNNING) { |
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tgid = prev->tgid; |
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pid = prev->pid; |
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if (!(FILTER || pid == 0)) { |
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u64 ts = bpf_ktime_get_ns(); |
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start.update(&pid, &ts); |
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} |
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} |
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tgid = next->tgid; |
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pid = next->pid; |
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if (FILTER || pid == 0) |
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return 0; |
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u64 *tsp, delta; |
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// fetch timestamp and calculate delta |
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tsp = start.lookup(&pid); |
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if (tsp == 0) { |
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return 0; // missed enqueue |
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} |
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delta = bpf_ktime_get_ns() - *tsp; |
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FACTOR |
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// store as histogram |
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STORE |
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start.delete(&pid); |
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return 0; |
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} |
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""" |
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is_support_raw_tp = BPF.support_raw_tracepoint() |
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if is_support_raw_tp: |
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bpf_text += bpf_text_raw_tp |
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else: |
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bpf_text += bpf_text_kprobe |
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# code substitutions |
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if args.pid: |
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# pid from userspace point of view is thread group from kernel pov |
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bpf_text = bpf_text.replace('FILTER', 'tgid != %s' % args.pid) |
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else: |
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bpf_text = bpf_text.replace('FILTER', '0') |
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if args.milliseconds: |
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bpf_text = bpf_text.replace('FACTOR', 'delta /= 1000000;') |
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label = "msecs" |
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else: |
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bpf_text = bpf_text.replace('FACTOR', 'delta /= 1000;') |
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label = "usecs" |
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if args.pids or args.tids: |
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section = "pid" |
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pid = "tgid" |
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if args.tids: |
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pid = "pid" |
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section = "tid" |
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bpf_text = bpf_text.replace('STORAGE', |
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'BPF_HISTOGRAM(dist, pid_key_t);') |
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bpf_text = bpf_text.replace('STORE', |
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'pid_key_t key = {.id = ' + pid + ', .slot = bpf_log2l(delta)}; ' + |
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'dist.increment(key);') |
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elif args.pidnss: |
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section = "pidns" |
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bpf_text = bpf_text.replace('STORAGE', |
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'BPF_HISTOGRAM(dist, pidns_key_t);') |
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bpf_text = bpf_text.replace('STORE', 'pidns_key_t key = ' + |
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'{.id = prev->nsproxy->pid_ns_for_children->ns.inum, ' + |
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'.slot = bpf_log2l(delta)}; dist.increment(key);') |
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else: |
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section = "" |
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bpf_text = bpf_text.replace('STORAGE', 'BPF_HISTOGRAM(dist);') |
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bpf_text = bpf_text.replace('STORE', |
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'dist.increment(bpf_log2l(delta));') |
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if debug or args.ebpf: |
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print(bpf_text) |
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if args.ebpf: |
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exit() |
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# load BPF program |
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b = BPF(text=bpf_text) |
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if not is_support_raw_tp: |
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b.attach_kprobe(event="ttwu_do_wakeup", fn_name="trace_ttwu_do_wakeup") |
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b.attach_kprobe(event="wake_up_new_task", fn_name="trace_wake_up_new_task") |
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b.attach_kprobe(event="finish_task_switch", fn_name="trace_run") |
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print("Tracing run queue latency... Hit Ctrl-C to end.") |
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# output |
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exiting = 0 if args.interval else 1 |
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dist = b.get_table("dist") |
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while (1): |
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try: |
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sleep(int(args.interval)) |
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except KeyboardInterrupt: |
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exiting = 1 |
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print() |
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if args.timestamp: |
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print("%-8s\n" % strftime("%H:%M:%S"), end="") |
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dist.print_log2_hist(label, section, section_print_fn=int) |
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dist.clear() |
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countdown -= 1 |
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if exiting or countdown == 0: |
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exit()
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