Voltage-changing tests can't sleep a fixed amount and assume the
rail is there — Owon settling is bench-dependent and typically
asymmetric (up-step ≠ down-step). New shared helpers and tests use
the rail's measured value to drive timing.
- tests/hardware/psu_helpers.py:
wait_until_settled(psu, target_v, ...)
polls measure_voltage_v() until within tol, returns
(elapsed_s, trace) or (None, trace) on timeout
apply_voltage_and_settle(psu, target_v, validation_time, ...)
composite: set setpoint → wait until measured matches →
sleep validation_time so the firmware-side observer can
detect and republish status. Raises on settle timeout.
downsample_trace, plus DEFAULT_VOLTAGE_TOL_V (0.10),
DEFAULT_POLL_INTERVAL_S (0.05), DEFAULT_SETTLE_TIMEOUT_S (10.0),
DEFAULT_VALIDATION_TIME_S (1.0).
- test_overvolt.py: voltage-tolerance suite. Each test (over,
under, parametrized sweep) uses apply_voltage_and_settle for the
procedure, the autouse _park_at_nominal fixture (also via the
helper), and a single deterministic ALM_Status read after the
validation hold instead of polling-the-bus.
- test_psu_voltage_settling.py: characterization test, opt-in via
the new psu_settling marker. Walks four (start_v, target_v)
transitions and records settling_time_s + voltage_trace per case.
Values feed directly into test_overvolt's ECU_VALIDATION_TIME_S
budgeting.
- pytest.ini:
junit_family = legacy → record_property() entries now actually
appear in reports/junit.xml (the default xunit2 silently
dropped them with a collect-time warning, breaking the
conftest plugin's metadata round-trip)
psu_settling marker registered
Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
405 lines
20 KiB
Python
405 lines
20 KiB
Python
"""Voltage-tolerance tests: drive the PSU and observe the LIN bus.
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WHAT THIS FILE COVERS
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---------------------
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Voltage-tolerance, brown-out, over-voltage, and "supply transient"
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behaviour. Tests perturb the bench supply (Owon PSU) and observe the
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ECU's reaction on the LIN bus, using the
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SETUP / PROCEDURE / ASSERT / TEARDOWN pattern so each case stays
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independent of the others even when it raises mid-flight.
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PATTERN — settle-then-validate
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------------------------------
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The Owon PSU does NOT slew instantaneously, and the slew time depends
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on the bench (PSU model, load, cable drop). The test_psu_voltage_settling
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characterization showed e.g. up-step ≠ down-step time. Instead of
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guessing a fixed sleep, every voltage change in this file goes through
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:func:`apply_voltage_and_settle` from ``psu_helpers``, which:
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1. Issues the setpoint.
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2. **Polls** ``measure_voltage_v()`` until the rail is actually at
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the target (within tolerance, or raises on timeout).
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3. Holds for ``ECU_VALIDATION_TIME_S`` so the firmware-side voltage
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monitor can detect and republish status.
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After that, a **single read** of ``ALM_Status.ALMVoltageStatus``
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gives an unambiguous answer — no polling-on-the-bus race.
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THREE FLAVORS
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-------------
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A) ``test_template_overvoltage_status`` — over-voltage detection.
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B) ``test_template_undervoltage_status`` — under-voltage detection.
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C) ``test_template_voltage_status_parametrized`` — sweep.
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SAFETY — three layers keep the bench safe
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-----------------------------------------
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1. The session-scoped ``psu`` fixture (in
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``tests/hardware/conftest.py``) parks the supply at nominal
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voltage with output ON at session start, and closes with
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``output 0`` at session end (``safe_off_on_close=True``).
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2. The autouse ``_park_at_nominal`` fixture in this file restores
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nominal voltage before AND after every test in this module
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(using the same settle helper, so the next test starts steady).
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3. Every test wraps its voltage change in ``try``/``finally`` so an
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assertion failure cannot leave the bench at an over/undervoltage
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rail.
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NEVER call ``psu.set_output(False)`` or ``psu.close()`` from a test —
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the Owon PSU powers the ECU on this bench, so toggling output kills
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LIN communication for every test that follows in the same session.
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The session fixture owns the PSU lifecycle.
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"""
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from __future__ import annotations
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import pytest
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from ecu_framework.config import EcuTestConfig
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from ecu_framework.lin.base import LinInterface
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from ecu_framework.power import OwonPSU
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from frame_io import FrameIO
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from alm_helpers import AlmTester
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from psu_helpers import apply_voltage_and_settle, downsample_trace
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# ╔══════════════════════════════════════════════════════════════════════╗
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# ║ MODULE MARKERS ║
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# ╚══════════════════════════════════════════════════════════════════════╝
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# ``hardware`` excludes from default mock-only runs; ``mum`` selects the
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# Melexis Universal Master adapter for the LIN side.
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pytestmark = [pytest.mark.hardware, pytest.mark.mum]
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# ╔══════════════════════════════════════════════════════════════════════╗
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# ║ CONSTANTS ║
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# ╚══════════════════════════════════════════════════════════════════════╝
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#
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# ALM_Status.ALMVoltageStatus values, taken verbatim from the LDF's
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# Signal_encoding_types: VoltageStatus block. Hard-coding them as named
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# constants makes the assertions self-explanatory and gives readers
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# something to grep for.
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VOLTAGE_STATUS_NORMAL = 0x00 # 'Normal Voltage'
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VOLTAGE_STATUS_UNDER = 0x01 # 'Power UnderVoltage'
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VOLTAGE_STATUS_OVER = 0x02 # 'Power OverVoltage'
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# Bench voltage profile. **TUNE THESE TO YOUR ECU'S DATASHEET** before
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# running the test on real hardware. Values shown are conservative
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# automotive ranges; many ECUs trip earlier.
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NOMINAL_VOLTAGE = 13.0 # V — typical 12 V automotive nominal
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OVERVOLTAGE_V = 19.0 # V — comfortably above the OV threshold
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UNDERVOLTAGE_V = 7.0 # V — below most brown-out points
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# Time we hold the rail steady AFTER the PSU has reached the target,
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# before reading ``ALMVoltageStatus``. This is the firmware-dependent
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# budget — the ECU's voltage monitor needs to sample, debounce, and
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# republish on its 10 ms LIN cycle. **Tune to your firmware spec.**
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# 1.0 s is a conservative starting point.
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ECU_VALIDATION_TIME_S = 1.0
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# ╔══════════════════════════════════════════════════════════════════════╗
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# ║ FIXTURES ║
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# ╚══════════════════════════════════════════════════════════════════════╝
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#
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# ``psu`` is provided by ``tests/hardware/conftest.py`` at SESSION
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# scope (autouse) — the bench is powered up once at session start and
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# stays on. Tests in this file just READ the psu fixture and perturb
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# voltage; they MUST NOT close it or toggle output.
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#
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# ``fio`` and ``alm`` are module-scoped here. As soon as a third test
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# file needs them, move both to ``tests/hardware/conftest.py``.
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@pytest.fixture(scope="module")
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def fio(config: EcuTestConfig, lin: LinInterface, ldf) -> FrameIO:
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"""Generic LDF-driven LIN I/O for any frame in the project's LDF."""
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if config.interface.type != "mum":
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pytest.skip("interface.type must be 'mum' for this suite")
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return FrameIO(lin, ldf)
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@pytest.fixture(scope="module")
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def alm(fio: FrameIO) -> AlmTester:
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"""ALM_Node domain helper bound to the live NAD reported by ALM_Status."""
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decoded = fio.receive("ALM_Status", timeout=1.0)
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if decoded is None:
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pytest.skip("ECU not responding on ALM_Status — check wiring/power")
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nad = int(decoded["ALMNadNo"])
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if not (0x01 <= nad <= 0xFE):
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pytest.skip(f"ECU reports invalid NAD {nad:#x} — auto-addressing first")
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return AlmTester(fio, nad)
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@pytest.fixture(autouse=True)
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def _park_at_nominal(psu: OwonPSU, alm: AlmTester):
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"""Per-test baseline: PSU voltage at NOMINAL_VOLTAGE + LED off.
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Uses :func:`apply_voltage_and_settle` so the rail is *measurably*
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at nominal before the test body runs — and afterwards, even on
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assertion failure. Validation time is short here: we just need
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the rail steady, not the ECU to react to it (the test body will
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do its own settle+validation in the PROCEDURE).
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"""
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# SETUP — nominal voltage, then LED off
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apply_voltage_and_settle(psu, NOMINAL_VOLTAGE, validation_time=0.2)
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alm.force_off()
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yield
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# TEARDOWN — back to nominal even on test failure
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apply_voltage_and_settle(psu, NOMINAL_VOLTAGE, validation_time=0.2)
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alm.force_off()
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# ╔══════════════════════════════════════════════════════════════════════╗
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# ║ TEST FLAVOR A — overvoltage detection ║
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# ╚══════════════════════════════════════════════════════════════════════╝
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def test_template_overvoltage_status(psu: OwonPSU, fio: FrameIO, alm: AlmTester, rp):
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"""
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Title: ECU reports OverVoltage when supply exceeds the threshold
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Description:
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Drive the PSU above the firmware's overvoltage threshold,
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wait for the rail to actually be there, give the ECU
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``ECU_VALIDATION_TIME_S`` to detect and republish, then read
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``ALM_Status.ALMVoltageStatus`` once and assert it equals
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``VOLTAGE_STATUS_OVER`` (0x02).
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Requirements: REQ-OVP-001
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Test Steps:
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1. SETUP: confirm baseline ALMVoltageStatus == Normal
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(the autouse fixture parked us at nominal and
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waited for the rail to settle)
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2. PROCEDURE: apply OVERVOLTAGE_V, wait until measured rail
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reaches it, hold ECU_VALIDATION_TIME_S
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3. ASSERT: single read of ALMVoltageStatus == OverVoltage
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4. TEARDOWN: restore NOMINAL_VOLTAGE via the same helper,
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then verify the ECU returns to Normal
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Expected Result:
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- Baseline status is Normal
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- After settle + validation hold at OVERVOLTAGE_V,
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ALMVoltageStatus reads OverVoltage
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- After settle + validation hold at NOMINAL_VOLTAGE again,
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ALMVoltageStatus reads Normal
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"""
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# ── SETUP ─────────────────────────────────────────────────────────
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# Sanity-check the baseline. If the ECU isn't reporting Normal at
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# nominal supply, our test premise is broken — fail fast rather
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# than hunt the wrong issue later.
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baseline = fio.read_signal("ALM_Status", "ALMVoltageStatus", default=-1)
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rp("baseline_voltage_status", int(baseline))
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assert int(baseline) == VOLTAGE_STATUS_NORMAL, (
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f"Expected Normal at nominal supply but got {baseline!r}; "
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f"check PSU output and ECU power rail before continuing."
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)
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try:
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# ── PROCEDURE ─────────────────────────────────────────────────
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# Apply the OV setpoint and wait for the rail to actually be
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# there, then hold for ECU_VALIDATION_TIME_S so the firmware
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# can sample, debounce, and republish ALM_Status.
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result = apply_voltage_and_settle(
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psu, OVERVOLTAGE_V,
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validation_time=ECU_VALIDATION_TIME_S,
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)
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# Single, deterministic read after the rail is steady AND the
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# ECU has had its validation budget.
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status = fio.read_signal(
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"ALM_Status", "ALMVoltageStatus", default=-1,
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)
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# ── ASSERT ────────────────────────────────────────────────────
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rp("psu_setpoint_v", OVERVOLTAGE_V)
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rp("psu_settled_s", round(result["settled_s"], 4))
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rp("psu_final_v", result["final_v"])
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rp("validation_time_s", result["validation_s"])
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rp("voltage_status_after", int(status))
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rp("voltage_trace", downsample_trace(result["trace"]))
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assert int(status) == VOLTAGE_STATUS_OVER, (
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f"ALMVoltageStatus = 0x{int(status):02X} after applying "
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f"{OVERVOLTAGE_V} V (settled in {result['settled_s']:.3f} s, "
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f"held {result['validation_s']} s). Expected "
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f"0x{VOLTAGE_STATUS_OVER:02X} (OverVoltage)."
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)
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finally:
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# ── TEARDOWN ──────────────────────────────────────────────────
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# ALWAYS runs, even on assertion failure. Belt-and-suspenders:
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# the autouse fixture also restores nominal on the way out.
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apply_voltage_and_settle(
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psu, NOMINAL_VOLTAGE,
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validation_time=ECU_VALIDATION_TIME_S,
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)
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# Regression check: after restoring nominal supply and validation
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# hold, status returns to Normal. Outside the try/finally so a
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# failure here doesn't mask the primary OV assertion.
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recovery_status = fio.read_signal(
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"ALM_Status", "ALMVoltageStatus", default=-1,
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)
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rp("voltage_status_recovery", int(recovery_status))
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assert int(recovery_status) == VOLTAGE_STATUS_NORMAL, (
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f"ECU did not return to Normal after restoring nominal supply. "
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f"Got 0x{int(recovery_status):02X}."
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)
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# ╔══════════════════════════════════════════════════════════════════════╗
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# ║ TEST FLAVOR B — undervoltage detection ║
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# ╚══════════════════════════════════════════════════════════════════════╝
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def test_template_undervoltage_status(psu: OwonPSU, fio: FrameIO, alm: AlmTester, rp):
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"""
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Title: ECU reports UnderVoltage when supply drops below the threshold
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Description:
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Symmetric counterpart to flavor A — drop the supply below the
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firmware's brown-out threshold, wait for the rail to be there,
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hold for the ECU validation window, then assert
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``ALMVoltageStatus = 0x01`` (Power UnderVoltage).
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Note that at very low voltages the ECU may stop publishing
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ALM_Status entirely (full brown-out). Pick UNDERVOLTAGE_V high
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enough to keep the LIN node alive but low enough to trip the
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UV flag — your firmware spec defines the right value.
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Test Steps:
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1. SETUP: confirm baseline ALMVoltageStatus == Normal
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2. PROCEDURE: apply UNDERVOLTAGE_V via apply_voltage_and_settle
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3. ASSERT: single read of ALMVoltageStatus == UnderVoltage
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4. TEARDOWN: restore NOMINAL_VOLTAGE and verify recovery
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Expected Result:
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- Baseline status is Normal
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- After settle + validation hold at UNDERVOLTAGE_V,
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ALMVoltageStatus reads UnderVoltage
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- After restoring nominal, ALMVoltageStatus returns to Normal
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"""
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# ── SETUP ─────────────────────────────────────────────────────────
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baseline = fio.read_signal("ALM_Status", "ALMVoltageStatus", default=-1)
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rp("baseline_voltage_status", int(baseline))
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assert int(baseline) == VOLTAGE_STATUS_NORMAL, (
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f"Expected Normal at nominal supply but got {baseline!r}"
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)
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try:
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# ── PROCEDURE ─────────────────────────────────────────────────
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result = apply_voltage_and_settle(
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psu, UNDERVOLTAGE_V,
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validation_time=ECU_VALIDATION_TIME_S,
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)
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status = fio.read_signal(
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"ALM_Status", "ALMVoltageStatus", default=-1,
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)
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# ── ASSERT ────────────────────────────────────────────────────
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rp("psu_setpoint_v", UNDERVOLTAGE_V)
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rp("psu_settled_s", round(result["settled_s"], 4))
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rp("psu_final_v", result["final_v"])
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rp("validation_time_s", result["validation_s"])
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rp("voltage_status_after", int(status))
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rp("voltage_trace", downsample_trace(result["trace"]))
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assert int(status) == VOLTAGE_STATUS_UNDER, (
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f"ALMVoltageStatus = 0x{int(status):02X} after applying "
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f"{UNDERVOLTAGE_V} V (settled in {result['settled_s']:.3f} s, "
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f"held {result['validation_s']} s). Expected "
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f"0x{VOLTAGE_STATUS_UNDER:02X} (UnderVoltage). "
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f"If status == -1 the slave likely browned out — raise "
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f"UNDERVOLTAGE_V toward the trip point so the node stays alive."
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)
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finally:
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# ── TEARDOWN ──────────────────────────────────────────────────
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apply_voltage_and_settle(
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psu, NOMINAL_VOLTAGE,
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validation_time=ECU_VALIDATION_TIME_S,
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)
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recovery_status = fio.read_signal(
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"ALM_Status", "ALMVoltageStatus", default=-1,
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)
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rp("voltage_status_recovery", int(recovery_status))
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assert int(recovery_status) == VOLTAGE_STATUS_NORMAL, (
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f"ECU did not return to Normal after restoring nominal supply. "
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f"Got 0x{int(recovery_status):02X}."
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)
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# ╔══════════════════════════════════════════════════════════════════════╗
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# ║ TEST FLAVOR C — parametrized voltage sweep ║
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# ╚══════════════════════════════════════════════════════════════════════╝
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#
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# A single function that walks several (voltage, expected_status)
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# pairs. ``@pytest.mark.parametrize`` repeats the body once per tuple,
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# generating one independent test per row in the report. Each
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# invocation goes through the autouse fixture again, so they remain
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# isolated from each other.
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_VOLTAGE_SCENARIOS = [
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# (psu_voltage, expected_alm_status, label)
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(NOMINAL_VOLTAGE, VOLTAGE_STATUS_NORMAL, "nominal"),
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(OVERVOLTAGE_V, VOLTAGE_STATUS_OVER, "overvoltage"),
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(UNDERVOLTAGE_V, VOLTAGE_STATUS_UNDER, "undervoltage"),
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]
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@pytest.mark.parametrize(
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"voltage,expected,label",
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_VOLTAGE_SCENARIOS,
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ids=[s[2] for s in _VOLTAGE_SCENARIOS],
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)
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def test_template_voltage_status_parametrized(
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psu: OwonPSU,
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fio: FrameIO,
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rp,
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voltage: float,
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expected: int,
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label: str,
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):
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"""
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Title: ECU voltage status tracks the supply (sweep)
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Description:
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Walks a small matrix of supply levels and asserts the ECU
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reports the corresponding ``ALMVoltageStatus``. Each row uses
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:func:`apply_voltage_and_settle` so the supply is *measurably*
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at the target before the validation hold and the status read.
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Expected Result:
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For each (voltage, expected) tuple: a single ALMVoltageStatus
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read after settle + validation equals ``expected``.
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"""
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try:
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# ── PROCEDURE ─────────────────────────────────────────────────
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result = apply_voltage_and_settle(
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psu, voltage,
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validation_time=ECU_VALIDATION_TIME_S,
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)
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status = fio.read_signal(
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"ALM_Status", "ALMVoltageStatus", default=-1,
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)
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# ── ASSERT ────────────────────────────────────────────────────
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rp("scenario", label)
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rp("psu_setpoint_v", voltage)
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rp("expected_status", expected)
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rp("psu_settled_s", round(result["settled_s"], 4))
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rp("psu_final_v", result["final_v"])
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rp("validation_time_s", result["validation_s"])
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rp("voltage_status_after", int(status))
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assert int(status) == expected, (
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f"[{label}] ALMVoltageStatus = 0x{int(status):02X} after "
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f"applying {voltage} V (settled in {result['settled_s']:.3f} s, "
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f"held {result['validation_s']} s). Expected 0x{expected:02X}."
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)
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finally:
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|
# ── TEARDOWN ──────────────────────────────────────────────────
|
|
apply_voltage_and_settle(
|
|
psu, NOMINAL_VOLTAGE,
|
|
validation_time=ECU_VALIDATION_TIME_S,
|
|
)
|