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FS SFP-10G-T-100 (Broadcom BCM84891L)

Documented, robust — survived the whole poking campaign un-bricked. Honest EEPROM (RJ45/10GBASE-T codes), which is what trips stock ixgbe qualification (../README.md).

References in this directory: bcm84891l-mdio-commands.md (command handler, transcribed), bcm84891l-sfp-registers.md (transport reference, transcribed), and their source PDFs.

SMI transport (I2C→MDIO bridge)

PHY at I2C 8-bit 0xAC write / 0xAD read.

Op Frames
Clause-45 write one I2C write to 0xAC: [000+DevAD, RegH, RegL, DataH, DataL]
Clause-45 read I2C write to 0xAC: [001+DevAD, RegH, RegL]delay >1 ms (3 ms proven) → I2C read 2 B from 0xAD
  • Single-byte reads see the bridge as inert (returns 0) — the DevAD-prefixed frame + delay is mandatory. This is why early probing wrongly declared 0x56 dead. Treat 0x0000 reads as retry-with-longer-delay: 0 is also the bridge's not-ready signature.
  • Recorded for a future multi-byte firmware transport (mlx5 MCIA shape): read = write [001+devad,RegH,RegL] offset_size=1, STOP, >1 ms, read 2 B offset_size=0; write = offset_size=2, addr = devad<<8|RegH, data = [RegL,DataH,DataL].

MDIO command handler

Protocol and full verified catalog: bcm84891l-mdio-commands.md. Traps:

  • SET commands execute stale DATA — the handler never clears DATA registers; write every parameter register explicitly before any SET.
  • GETs must be invoked bare — pre-writing any DATA register, not just the documented DATA1 display flag, leaves the handler executing as a no-op with results never written (sentinel pre-fills survived GET_SNR untouched, proven on hardware).
  • STATUS must never be written — any user value (0x0000 and 0x0008 both tried) closes the mailbox: the next command is silently ignored until firmware restores it.
  • PASS cannot prove completion. The previous command's PASS stays latched while a slow firmware still executes, and until then the DATA registers are firmware scratch — the die temperature turns up in them (0x004E0x0051 observed as "SNR" and "EEE mode"; the campaign's "anomalous 0x0047" was this same race).
  • Handler writes during firmware-busy windows wedge the µC permanently — DATA/CMD writes landing while firmware does post-AN provisioning or training work (a window stretching ~10 s past relink) killed the SMI service four times; reads alone never once. The windowed protocol keeps steady-state writes clear of the temp poll's busy windows; bringup-era writes run unwindowed (they fire pre-AN, where writes have never wedged) and post-AN provisioning exposure remains as the diag path's accepted risk.
  • Bridge reads carry no fetch identity — a fetch that outruns the delay leaves the previous transaction's data at 0xAD with no error. A killed host can also leave the pipeline latched a response behind persistently (PHY ID served a stuck stale value across processes until driver re-init); every appliance boot clears it by loading the driver, so only bench runs reusing a loaded driver see it, and the identity check at startup dies loudly on it.
  • Stale reads poisoned the corrected-error channel — caught with per-register instrumentation: 3.33 reads served 1.147's resident 0x0011 (decoding as exactly 17 errored blocks — the recurring "+17"), SNR DATA values (+21/22), and 1.147 reads served 3.33's 0x8000 (count 16, charged twice by the rollover delta) and the die temperature. Every such burst decodes as a neighbor register. The source is the firmware's own temp poll and the fix is the windowed protocol (firmware-reliability notes): work confined to a fixed window after each observed poll ends the poisoning — reproduced at will by aiming reads at the poll, eliminated by avoiding it.
  • Poll STATUS ~100 ms; frozen up to 2 s during 10GBASE-T training — only run after link-up.

Proven diagnostics

Capability How Observed
Per-pair SNR CMD_GET_SNR 0x8030, invoked bare (writing the documented DATA1 display flag returns zeros; IEEE 1.1331.140 never populate — constant 0x8080) DATA25 = SNR AD ×0.1 dB; ≈ 2732 dB absolute on bench, 0.10.4 dB jitter. 10GBASE-T operating point ≈ 26.5 dB, so margin ≈ value 26.5. cabletest shows the margin classified green ≥ 3 dB / amber ≥ 1 dB / red below — provisional thresholds until the graded-noise correlation run
Die temperature CMD_GET_CURRENT_TEMP 0x8031 ~6870 °C on bench
Supply rails GET_CURRENT_VOLTAGE 0x802F 0.8 V and 1.88 V rails, tenths of mV
Error counters IEEE PCS 3.32/3.33 — block lock, latched errored-block/BER, clear-on-read The noise-stress error proxy
Retrain on demand IEEE AN restart 7.0 |= bit9 Relinks in ~56 s

Probed configuration states

Item Command State
EEE / AutogrEEEn 0x8008/0x8009 The famous 0x0047 GET reading was the die temperature in DATA1 (firmware scratch — see reliability notes), not an AutogrEEEn mode; GET 0x8008 is unusable. cabletest forces all-off every boot (SET with explicit params (0, 0, 0x7A12, 0x480, 0) + AN restart, proven) and verifies 7.60 reads 0 after relink (phy.go)
EEE wire-truth arm 0x801A after link-up, read 0x801B Zero LPI events/duration on idle link; repeat under traffic
Fast retrain 0x800A (datasheet titles it EMI_MODE; description is fast retrain) Enabled 10G/5G/2.5G; IEEE 1.147 = 0x0019, count bits zero. Keep enabled; read the 1.147 count per run — a marginal cable that fast-retrains still gets counted
Pair map 0x8000 DATA2 = 0x00E4 = identity (A/B/C/D straight through) — MDI wiring verification works
Fault pass-through 0x800D 0 = LF/RF pass to the line (0x8011/0x8010 could mask them as IDLE — leave off)
Host interface 0x802B/0x802D/0x8027 XFI polarity normal; TX FIR = main tap 0x3C only; MAC/PHY frequency locked; KR/SyncE/USXGMII/WOL disabled; temp warnings off
Jumbo 0x801C/0x801D GET 0x801D answers in DATA1 — scratch-prone, unusable — and bringup cannot assume a cable to probe through, so cabletest forces enable every boot (SET 0x801C + AN restart); the running mix's 9018-byte frames are the standing wire truth (phy.go). The FS at its 9K option passes them at line rate with zero loss/corrupt
1588 0x8004 Disabled (engine registers undocumented — see asks below)
Limited reach 0x8006 Disabled — its DATA3 "linked in LR mode" bit, the only handler-visible trace of the DSP length estimate, is unavailable without a config change

Firmware-reliability notes

The firmware is its own mailbox client — the handler is a shared, unarbitrated resource. Watched read-only on an idle module: CMD sits at 0x0031 (CMD_GET_CURRENT_TEMP, bit 15 consumed) and DATA1 tracks the live die temperature (0x4F0x52 ≈ 7982 °C under load) — the firmware issues its own temperature command through the same CMD/STATUS/DATA registers the host uses, with no arbitration. Every mystery this explains: temperature appearing in DATA1 (it is that command's output — the campaign's "anomalous 0x0047" included), PASS satisfying a host poll when it belongs to the internal command, and the µC wedges (two writers colliding on CMD/DATA, likeliest when internal management activity spikes after AN events). Any GET whose answer lives in DATA1 is unusable; corroborate through IEEE registers or the wire. The hard rule that stands: write every DATA register explicitly before any SET — the handler executes stale DATA. The internal poll is not silenceable through the handler: disabling the temperature warning (SET 0x8032 (0x007D, 5, 0, 0, 0) and 0x8034 (0xFFD8, 5, 0, 0, 0) — DATA3 = 0 = warning off — both PASS) leaves CMD resident at 0x0031 with DATA1 tracking the die within seconds of the host going quiet; the poll is independent of the warning machinery. GET 0x8033/0x8035 read DATA13 = 0 before and after those SETs (DATA4/5 leftover scratch) — DATA1-answer readbacks, unusable as verification either way.

The internal poll's clock, measured on hardware. One poll every 3.494.22 s, regime-dependent but rock-stable within a regime (±15 ms): ≈3.50 s warm and idle, ≈3.70 s, ≈4.01 s cool and idle, ≈4.21 s under continuous host mailbox load — host traffic defers the poll, never advances it, and nothing observed brings two polls closer than 3.49 s. The poll is link-independent: it runs straight through an AN restart and the whole retrain without missing a beat. Around each poll's service the bridge serves stale data for ~50 ms: every read returns the last value successfully fetched before the µC went busy (stuck-at-last-fetch, not one-behind), which is exactly how 3.33 inherits 1.147's 0x0011. The window closes before the poll is detectable — a CMD read returning the fresh resident 0x0031 is itself proof the µC serviced the fetch, so flip detection doubles as the all-clear.

The windowed protocol (phy.go admit) — contention resolved by time-division. Since the poll cannot be silenced, the host schedules around it: after bringup, every operation is admitted only inside a fixed 3.4 s window following each observed poll (CMD flipping to resident 0x0031, polled at 10 ms); at the cutoff the host goes quiet until the next flip. 3.4 s sits below every observed cadence, so a regime switch mid-run lands harmlessly in vacated time — no prediction, no period tracking, just the last observed flip plus two constants. The host's own commands re-arm detection (they leave CMD ≠ 0x0031); a missing heartbeat free-runs one window rather than stall (never observed — the heartbeat survives retrains); bringup runs before windowing is enabled and never waits. Validated on hardware in ~/work/phydiag-work/bcm_phaselock_bench.py: aiming read bursts at the poll reproduces the poisoning on 100% of polls (the "+17" manufactured on demand); windowed operation ran 2,881 back-to-back batches — 16× the production rate, riding the cutoff — with zero stale values, and the production 1 Hz stream is unperturbed (blackout hides inside natural gaps, worst sample gap ~1.6 s). Corrected bursts since windowing no longer decode as neighbor registers (historically every one did) and correlate with amber SNR margin under full-rate traffic — real line corrections; the graded-noise correlation run is the confirmation path.

ECD — recovered from the OpenBCM SDK, proven on hardware

The ECD register mechanism is absent from the handler catalog and the datasheet excerpts here, but the OpenBCM SDK's copper-XGPHY driver (sdk-6.5.27/src/soc/phy/phy8481.c phy_8481_cable_diag + phy8481.h) carries it for the 8483x/8485x/8488x family — and the same SDK drives the identical command-handler registers (1E.0x4005/0x4037/0x40383C) as the BCM84891L datasheet, confirming the shared map. Validated on the FS:

Register Role
1E.0x4006 Control/status. Write under mask {15,14,13,12,10}: bit 15 = run now, bit 14 = run at AN, bit 12 = break link, bit 10 = length in meters (SDK writes value 0x8400 = run now + meters). Bit 11 = busy — poll until clear (SDK allows up to 50 s; observed < 0.5 s)
1.0xA896 Verdicts, 4 bits per pair: 1 = OK, 2 = open, 3 = short, 4 = inter-pair short
1.0xA8970xA89A Per-pair lengths (pairs 1/2, 3/4, 5/6, 7/8), meters

Observed on a plugged, linked, healthy cable: verdicts OK×4 and per-pair lengths of [45, 45, 41, 46] on a ~45 m cable — meter-accurate with no calibration, and this ECD reports length for healthy pairs, not just faults, resolving the terminated-far-end concern in ../README.md. Caveats:

  • The run blips the link (PMA 1.1 latch-low catches a drop even with the break-link bit clear) — do not run mid-measurement until the disturbance is characterized.
  • An interrupted run can wedge the µC's SMI service (observed after a process died mid-diag): the bridge ACKs I2C but serves 0x0000 for every register at any delay and silently drops MDIO writes — no in-band recovery, not even PMA reset — while the EEPROM path and the trained link keep working. Recovery: a driver unbind/rebind of the port (the SFP re-initialization resets the µC); a reseat would do the same.
  • Fault verdicts (open/short/inter-pair) are unexercised — deliberately: the product is a closed-loop tester, both ends always plugged.
  • Family constraints from the SDK: port must be enabled; unsupported at forced 100M.
  • bcm_ecd_probe.py in phydiag-work implements the recipe.

Missing datasheet chapters

Chapters the datasheet TOC lists but the excerpts here omit — to source elsewhere:

  1. The ECD chapter — now for confirming bit meanings rather than unblocking.
  2. The 1588 operation chapter.
  3. Datasheet §1.20 loopback (copper line loopback) and §1.17 EEE/fast-retrain monitoring.
  4. Chapter 2 register summary. The excerpt's TOC names them all.