The profile was captured against the spin-enabled build. With the RFC 004 spinning experiment excised from master, the ~12% hot-path futex_wake it attributed to the spinning submit-rule no longer exists (idle wait is back to thread::sleep). Add a provenance note, mark the futex_wake row/finding as excised spin machinery, and drop the now-moot 'gate the submit wake' lead. Spin-independent findings (shims ~1%, schedule_loop + run-queue ~33%) unchanged.
4.7 KiB
Per-switch cost — N=1 local profile (spike findings)
Measured with benches/switch_cost.rs (local mode: one actor, one scheduler,
tight yield_now() loop = one park/unpark round-trip with no IO/channel/timer
and no cross-core traffic). Sandbox: 1 core, kernel 6.18, no PMU (hardware
counters unavailable), so attribution is from perf record -e task-clock
(software timer sampling) plus the bench's own rdtsc/wall brackets.
Provenance (post-excision). This profile was captured against the spin-enabled build (the pre-excision HEAD, with the RFC 004 spinning workers live in
src/runtime.rs). The RFC 004 spinning experiment has since been excised frommaster; idle schedulers are back to the historicalthread::sleepwait. Thefutex_wakeattribution below therefore reflects spinning machinery that is no longer present on current master — see the per-row and per-finding notes. The shim,schedule_loop, and run-queue findings are spin-independent and remain valid.
Numbers (stable across runs)
- Round-trip p50 ≈ 303 ns ≈ 828 cyc (instrumentation floor subtracted).
- Derived effective clock ≈ 2.73 GHz (rdtsc cyc / wall ns — the two lenses corroborate, so the cycle counts are trustworthy).
- p90 316 ns, p99 472 ns; max is a multi-ms OS-deschedule outlier (1 shared core) — ignore the max, trust the percentiles (the harness pools them).
Attribution (perf task-clock, self-time, 28.6k samples / 12M round-trips)
| share | symbol | bucket |
|---|---|---|
| 24.8% | runtime::schedule_loop |
scheduler logic (slot-word/epoch + dispatch) |
| 8.6% | MutexQueue::push/pop/len |
run-queue ops |
| ~12% | do_syscall_64+syscall+futex_* |
futex_wake on the hot path — spinning submit-rule wake; removed by the RFC 004 excision (not on current master) |
| 3.5% | IoThread::drain_completions |
the always-on IO thread (run() starts one) |
| ~30% | main + clock_gettime/Timespec + quicksort |
instrumentation (timing + percentile sort) |
| ~1% | switch_to_scheduler+switch_to_actor_asm+ sp accessors |
the context shims + TLS |
Headline finding — revises the handoff hypothesis
The handoff named the context shims (context.rs: two calls into the
TLS sp accessors per switch) as the prime suspect for the per-switch cost.
At N=1 that is not where the time goes — the shims + TLS are ~1% of
self-time. The N=1 cost is dominated by:
schedule_loop+ run-queue ops (~33%) — the epoch/slot-word transition and the mutex run-queue push/pop on every re-queue.- A
futex_wakesyscall (~12%) fired on the hot path even though nothing was parked. This was the spinning submit-rule wake introduced by the RFC 004 experiment — a parallelism/latency optimisation, not a liveness guard. In a single-scheduler always-runnable loop it was pure cost (no one was ever parked to wake). The RFC 004 excision removed this wake with the rest of the spinning machinery: on current master idle schedulers usethread::sleepagain, so the N=1 hot path no longer makes this syscall.
What this does and does NOT show
- The handoff's shim hypothesis was a many-core hypothesis: its evidence was
the N=1→N=8 jump (0.18→1.2µs), attributed to TLS access mode (
__tls_get_addrvs#[thread_local]) and cross-core coherency on the sp/epoch words. None of that is observable at N=1 on one core. This profile does NOT refute it; it establishes that the shim is cheap until cores contend. - So the spike question sharpens into two separable costs:
- N=1 floor: scheduler logic (
schedule_loop+ run-queue ops). The futex_wake component was spinning machinery and is gone post-excision, so the remaining N=1 floor is the scheduler core itself. - N→8 slope: the shim/TLS/coherency cost. Needs the many-core box + a
remotebench mode (wake straddling two schedulers) + hardware PMU counters (cache-misses,MEM_LOAD…HITMfor coherency) — none available in this sandbox.
- N=1 floor: scheduler logic (
Reproduce
. "$HOME/.cargo/env"
cargo build --release --bench switch_cost
BIN=$(ls -t target/release/deps/switch_cost-* | grep -v '\.d$' | head -1)
PERF=/usr/lib/linux-tools-6.8.0-124/perf # 6.8 perf on 6.18 kernel; sw events only here
# bench alone (numbers):
SMARM_SWITCH_ROUNDS=3000000 SMARM_SWITCH_WARMUP=50000 SMARM_SWITCH_RUNS=4 "$BIN"
# attribution (sw task-clock; HW counters need a real PMU / the 5900X):
SMARM_SWITCH_ROUNDS=3000000 "$PERF" record -F 4000 -g --call-graph fp -o /tmp/switch.data -- "$BIN"
"$PERF" report -i /tmp/switch.data --stdio --no-children
On the 5900X with a real PMU, drop -e task-clock for -e cycles,instructions, cache-misses,mem_load_retired.l3_miss to get the coherency picture the N=8 case
needs.