- stm32_link.py: port to the live 114-byte broadcast protocol (magic 0xAA55AA55, odd parity 8-O-1, 100 Hz publish, repetition-validated, no CRC); 39 params incl. adc4_trig_phase/iin_zero_sum, CLEAR_FLAGS, 30-bit flag table; commands stay CRC-16 framed; Telemetry aliases BroadcastData, efficiency uses iout_slow and eff_net subtracts P_sys - gui_workers.py: STM32Worker reader thread with counter dedup, rate/ loss counters, 20 s graph history, full-rate telemetry CSV writer - gui.py: right-side telemetry panel (link state, power + EFF net, heatsink/board temps, Vfly group, control, HRTIM, status-flag checkboxes, fault registers), Vfly + selectable corr/phase-ofs graphs, 20 s rolling window on all plots, dual CSV logging (merged stm_* columns + <stem>_telem.csv), logging on by default into logs/data_<timestamp>.csv, Plot Eff button - sweep guards: PSU 20 A input-current gate (conservative estimate + measured backstop + I-limit clamp), thermal pause at 57/77 C holding the load at 1 A until cooled 5 C below threshold, CC range pinned to R2 for the whole run with empirical range-max readback rejection - plot_eff.py + bench-plot entry point: efficiency vs Vin vs current maps from any logged CSV (sweep / data log / telem autodetect), file dialog when launched without args - bench.py: HIOKI FAST response speed, 5 s settle defaults; cli.py stm32-read prints the full broadcast; README + .gitignore updates Co-Authored-By: Claude Fable 5 <noreply@anthropic.com>
615 lines
24 KiB
Python
615 lines
24 KiB
Python
"""Synchronous serial link to the STM32 debug protocol.
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STM32 -> PC is a continuous 114-byte binary broadcast (magic-delimited,
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repetition-validated, UART odd parity, ~100 Hz publish rate, each publish
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repeated ~3-4x at line rate). PC -> STM32 commands remain CRC-16 framed.
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Mirrors code64/debug_console/protocol.py (kept in sync with the firmware's
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debug_protocol.h).
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"""
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from __future__ import annotations
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import dataclasses
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import struct
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import time
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from collections import deque
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from dataclasses import dataclass, field
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from typing import Iterator, Optional
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import serial
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# ── Protocol constants ───────────────────────────────────────────────
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SYNC_BYTE = 0xAA
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CMD_TELEMETRY = 0x01 # legacy; STM32->PC framed telemetry no longer sent
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CMD_PARAM_WRITE = 0x02
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CMD_PARAM_WRITE_ACK = 0x03 # legacy; acks now come via the broadcast round-robin
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CMD_PARAM_READ_ALL = 0x04 # restarts the broadcast param round-robin cursor
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CMD_PARAM_VALUE = 0x05 # legacy; STM32->PC framed replies no longer sent
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CMD_PING = 0x10
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CMD_PONG = 0x11 # legacy; pong now increments a broadcast field
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CMD_SHUTDOWN = 0x12 # turn off converter
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CMD_RESET = 0x13 # system reset
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CMD_TEST_50 = 0x14 # 50% duty test mode
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CMD_RELAY_ON = 0x15 # latch input relay closed (bench test)
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CMD_RELAY_OFF = 0x16 # latch input relay open (bench test)
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CMD_HOLD_CONVERTER = 0x17 # toggle "hold converter off" (boot guard + disarm trips)
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CMD_TOGGLE_PRECHARGE = 0x18 # toggle the precharge FET (bench test)
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CMD_CLEAR_FLAGS = 0x19 # clear latched status flags
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CMD_ERROR_MSG = 0xE0 # legacy; STM32->PC no longer sends framed text
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PTYPE_FLOAT = 0
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PTYPE_UINT16 = 1
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PTYPE_UINT8 = 2
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PTYPE_INT32 = 3
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PTYPE_INT16 = 4 # wire format = sign-extended int32, stored firmware-side as int16_t
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# ── CRC-16/CCITT-FALSE (poly 0x1021, init 0xFFFF, no reflection) ──────
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# Matches the STM32 hardware CRC unit configured in main.c MX_CRC_Init.
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def crc16(data: bytes) -> int:
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crc = 0xFFFF
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for b in data:
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crc ^= b << 8
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for _ in range(8):
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if crc & 0x8000:
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crc = ((crc << 1) ^ 0x1021) & 0xFFFF
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else:
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crc = (crc << 1) & 0xFFFF
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return crc
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# ── STM32 -> PC broadcast ────────────────────────────────────────────
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# A single fixed 114-byte struct streamed continuously (circular DMA). No framing
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# length, no CRC. Frames are delimited by the 4-byte magic. Integrity = REPETITION
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# (each `counter` value is re-sent back-to-back, so a corrupt/torn copy differs
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# from its neighbours) + UART odd parity. See debug_protocol.h BroadcastFrame.
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BCAST_MAGIC = 0xAA55AA55
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BROADCAST_FMT = "<II16fhHhHHhBBIIIIBBhIHH" # 114 bytes; h after param_type = iin_avg_ma, trailing H = sys_current_ma
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BROADCAST_SIZE = struct.calcsize(BROADCAST_FMT)
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MAGIC_BYTES = struct.pack("<I", BCAST_MAGIC)
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# status_flags bit -> human label (matches the firmware FLAG_* defines)
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FLAG_NAMES = {
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0: "STARTUP: waiting (Vfly guard)",
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1: "PRECHARGE TIMEOUT",
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2: "GUARD: VIN_MAX",
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3: "GUARD: VIN<VOUT+5V",
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4: "GUARD: IIN",
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5: "GUARD: IOUT",
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6: "GUARD: VFLY",
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7: "GUARD: ETEMP",
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8: "GUARD: BTEMP",
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9: "LIMIT: VOUT_MAX",
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10: "LIMIT: VIN_SHUTOFF",
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11: "LIMIT: IIN reverse-feed",
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12: "LIMIT: IIN_MIN",
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13: "LIMIT: IOUT_MAX",
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14: "LIMIT: IOUT_MIN",
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15: "LIMIT: VFLY_MAX",
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16: "LIMIT: VIN<VOUT+5V",
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17: "FMAC OVF",
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18: "FMAC UNF",
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19: "FMAC SAT",
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20: "TEMP: ETEMP",
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21: "TEMP: BTEMP",
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22: "HARDFAULT",
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23: "OCP: VOUT comparator",
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24: "OCP: IIN comparator",
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25: "OCP: ILOAD comparator",
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26: "Clock Security System",
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27: "Error_Handler reached",
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28: "OUTPUTS ENABLED (converter went active)",
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29: "TURNOFF: current-decay timeout (not COMP4)",
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}
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# flags that are informational / transient (yellow), the rest are faults (red):
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# STARTUP_WAITING (bit 0) + all GUARD_* (bits 2..8) + OUTPUTS ENABLED (bit 28)
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FLAG_INFO_MASK = (1 << 0) | sum(1 << b for b in range(2, 9)) | (1 << 28)
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def flags_to_names(flags: int) -> list:
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return [name for bit, name in FLAG_NAMES.items() if flags & (1 << bit)]
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def decode_param_bits(param_type: int, raw: int) -> float:
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"""Interpret a raw 32-bit param_value from the broadcast per its type."""
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if param_type == PTYPE_FLOAT:
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return struct.unpack("<f", struct.pack("<I", raw & 0xFFFFFFFF))[0]
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if param_type == PTYPE_UINT16:
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return float(raw & 0xFFFF)
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if param_type == PTYPE_UINT8:
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return float(raw & 0xFF)
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if param_type in (PTYPE_INT32, PTYPE_INT16):
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return float(struct.unpack("<i", struct.pack("<I", raw & 0xFFFFFFFF))[0])
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return float(raw)
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@dataclass
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class BroadcastData:
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"""One decoded broadcast frame — everything the board publishes."""
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counter: int = 0
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vin: float = 0.0 # mV
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vout: float = 0.0 # mV
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iin: float = 0.0 # mA (negative = into converter)
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iout: float = 0.0 # mA (fast ADC5; protection only — use iout_slow for power)
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vfly: float = 0.0 # mV
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etemp: float = 0.0 # °C (heatsink / external)
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btemp: float = 0.0 # °C (board)
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vfly_integral: float = 0.0
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vfly_avg_debug: float = 0.0
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cc_output_f: float = 0.0
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mppt_iref: float = 0.0
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mppt_last_vin: float = 0.0
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mppt_last_iin: float = 0.0
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p_in: float = 0.0 # board-computed
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p_out: float = 0.0 # board-computed
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iout_slow: float = 0.0 # mA (ADC4, PWM-synchronous avg-point)
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last_tmp: int = 0
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VREF: int = 0
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vfly_correction: int = 0
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cmp_outer: int = 0 # HRTIM Timer F CMP1xR (outer pair, T1/T4)
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cmp_inner: int = 0 # HRTIM Timer E CMP1xR (inner pair, T2/T3)
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vfly_ofs_applied: int = 0 # master-phase offset last written, signed ticks
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ctrl_mode: int = 0 # 0=OFF 1=MPPT 2=CV 3=CC
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vfly_active: int = 0
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status_flags: int = 0
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fmac_sr: int = 0
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fault_pc: int = 0
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cfsr: int = 0
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param_id: int = 0 # broadcast param round-robin
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param_type: int = 0
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param_value: int = 0 # raw bits; interpret via decode_param_bits(param_type, ...)
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pong: int = 0 # increments when the MCU processes CMD_PING
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sys_current_ma: int = 0 # Vout-rail housekeeping current, mA
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iin_avg_ma: int = 0 # 8-sample boxcar of iin, mA (the IIN_MAX trip quantity)
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timestamp: float = field(default_factory=time.time)
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@property
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def seq(self) -> int: # back-compat for code that used t.seq
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return self.counter & 0xFFFF
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@property
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def vin_V(self) -> float:
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return self.vin / 1000.0
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@property
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def vout_V(self) -> float:
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return self.vout / 1000.0
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@property
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def iin_A(self) -> float:
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return self.iin / 1000.0
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@property
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def iout_A(self) -> float:
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return self.iout / 1000.0
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@property
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def vfly_V(self) -> float:
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return self.vfly / 1000.0
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@property
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def power_in_W(self) -> float:
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return self.vin * (-self.iin) / 1e6
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@property
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def power_out_W(self) -> float:
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# iout_slow is the accurate output current (fast iout is protection-only)
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return self.vout * self.iout_slow / 1e6
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@property
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def power_sys_W(self) -> float:
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return self.vout * self.sys_current_ma / 1e6
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@property
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def efficiency(self) -> float:
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"""Gross efficiency P_out/P_in (%)."""
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p_in = self.power_in_W
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return (self.power_out_W / p_in * 100.0) if p_in > 0.1 else 0.0
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@property
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def efficiency_net(self) -> float:
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"""Net efficiency (P_out - P_sys)/P_in (%) — self-supply subtracted."""
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p_in = self.power_in_W
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if p_in <= 0.1:
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return 0.0
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return (self.power_out_W - self.power_sys_W) / p_in * 100.0
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# Back-compat alias: tuner/cli were written against the old Telemetry class.
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Telemetry = BroadcastData
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def decode_broadcast(frame: bytes) -> BroadcastData:
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v = struct.unpack(BROADCAST_FMT, frame)
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return BroadcastData(
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counter=v[1],
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vin=v[2], vout=v[3], iin=v[4], iout=v[5], vfly=v[6], etemp=v[7], btemp=v[8],
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vfly_integral=v[9], vfly_avg_debug=v[10], cc_output_f=v[11],
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mppt_iref=v[12], mppt_last_vin=v[13], mppt_last_iin=v[14],
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p_in=v[15], p_out=v[16], iout_slow=v[17],
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last_tmp=v[18], VREF=v[19], vfly_correction=v[20],
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cmp_outer=v[21], cmp_inner=v[22], vfly_ofs_applied=v[23],
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ctrl_mode=v[24], vfly_active=v[25],
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status_flags=v[26], fmac_sr=v[27], fault_pc=v[28], cfsr=v[29],
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param_id=v[30], param_type=v[31], param_value=v[33], pong=v[34],
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sys_current_ma=v[35], iin_avg_ma=v[32],
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)
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class BroadcastParser:
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"""Parse the continuous 114-byte broadcast stream. Resync on the 4-byte magic;
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validate a frame by REPETITION -- accept only when two consecutive byte-identical
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copies arrive (a corrupt/torn copy differs from its neighbours -> discarded). No
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CRC. Re-sends of the same `counter` are normal; dedup on counter downstream."""
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def __init__(self):
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self.buf = bytearray()
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self._prev = None # previous raw frame awaiting a matching repeat
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def feed(self, data: bytes):
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self.buf += data
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while True:
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i = self.buf.find(MAGIC_BYTES)
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if i < 0:
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# no magic yet; keep only a trailing partial-magic (3 bytes)
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if len(self.buf) > 3:
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del self.buf[:-3]
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return
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if i > 0:
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del self.buf[:i] # drop junk / dropped-byte shift before magic
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if len(self.buf) < BROADCAST_SIZE:
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return # wait for a full frame
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frame = bytes(self.buf[:BROADCAST_SIZE])
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del self.buf[:BROADCAST_SIZE]
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if frame == self._prev:
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self._prev = None # two identical copies -> accept, need a fresh pair next
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yield decode_broadcast(frame)
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else:
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self._prev = frame # first sighting / differs -> hold, wait for the repeat
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# ── Parameter definitions ────────────────────────────────────────────
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@dataclass
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class ParamDef:
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id: int
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name: str
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ptype: int
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group: str
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min_val: float = -1e9
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max_val: float = 1e9
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fmt: str = ".4f"
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# Mirrors code64/debug_console/protocol.py PARAMS (firmware debug_protocol.c).
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PARAMS = [
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# Compensator
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ParamDef(0x25, "VREF", PTYPE_UINT16, "Compensator", 2340, 3500, ".0f"),
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# Vfly
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ParamDef(0x20, "vfly_kp", PTYPE_FLOAT, "Vfly", -10, 10, ".4f"),
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ParamDef(0x21, "vfly_ki", PTYPE_FLOAT, "Vfly", -10, 10, ".6f"),
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ParamDef(0x62, "vfly_kp_phase", PTYPE_FLOAT, "Vfly", -10, 10, ".4f"), # mode 2: P gain, error -> phase
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ParamDef(0x63, "vfly_phase_clamp", PTYPE_UINT16, "Vfly", 0, 10000, ".0f"), # mode 2: phase offset clamp
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ParamDef(0x22, "vfly_clamp", PTYPE_UINT16, "Vfly", 0, 10000, ".0f"),
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ParamDef(0x23, "vfly_loop_trig", PTYPE_UINT16, "Vfly", 1, 10000, ".0f"),
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ParamDef(0x24, "vfly_active", PTYPE_UINT8, "Vfly", 0, 3, ".0f"), # 0=off 1=duty-asym PI 2=phase P 3=manual both
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ParamDef(0x26, "test_corr", PTYPE_INT16, "Vfly", -3000, 3000, ".0f"), # mode-3 manual duty asymmetry
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ParamDef(0x27, "phase_ofs", PTYPE_INT16, "Vfly", -3000, 3000, ".0f"), # master-phase: mode-3 manual, mode-2 readback
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# CC
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ParamDef(0x30, "cc_target", PTYPE_FLOAT, "CC", 0, 60000, ".0f"),
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ParamDef(0x31, "cc_gain", PTYPE_FLOAT, "CC", -1, 1, ".4f"),
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ParamDef(0x32, "cc_min_step", PTYPE_FLOAT, "CC", -1000, 0, ".1f"),
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ParamDef(0x33, "cc_max_step", PTYPE_FLOAT, "CC", 0, 1000, ".1f"),
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ParamDef(0x34, "cc_loop_trig", PTYPE_UINT16, "CC", 1, 10000, ".0f"),
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ParamDef(0x35, "cc_active", PTYPE_INT32, "CC", 0, 1, ".0f"),
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# MPPT
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ParamDef(0x40, "mppt_step", PTYPE_FLOAT, "MPPT", 1, 200, ".0f"),
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ParamDef(0x41, "mppt_duty_min", PTYPE_FLOAT, "MPPT", 0, 6800, ".0f"),
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ParamDef(0x42, "mppt_duty_max", PTYPE_FLOAT, "MPPT", 0, 6800, ".0f"),
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ParamDef(0x44, "mppt_loop_trig", PTYPE_UINT16, "MPPT", 1, 50000, ".0f"),
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ParamDef(0x45, "mppt_active", PTYPE_INT32, "MPPT", 0, 1, ".0f"),
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ParamDef(0x46, "cv_threshold", PTYPE_FLOAT, "MPPT", 20000, 30000, ".0f"),
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ParamDef(0x47, "cv_hysteresis", PTYPE_FLOAT, "MPPT", 0, 5000, ".0f"),
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ParamDef(0x48, "cc_threshold", PTYPE_FLOAT, "MPPT", 0, 55000, ".0f"),
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ParamDef(0x50, "cc_hysteresis", PTYPE_FLOAT, "MPPT", 0, 10000, ".0f"),
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# Deadtime (single static value, dt register units)
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ParamDef(0x60, "dt_normal", PTYPE_UINT16, "Deadtime", 14, 200, ".0f"),
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# Manual fixed-duty mode (base duty in CMP ticks; D = override_duty/7158, 716..6442 = 10..90%)
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ParamDef(0x64, "override_duty", PTYPE_UINT16, "Manual", 716, 6442, ".0f"),
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ParamDef(0x65, "manual_duty_en", PTYPE_UINT8, "Manual", 0, 1, ".0f"),
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# Closed-loop precharge PI (drives precharge FET PWM TIM3_CH1 to Vin/2)
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ParamDef(0x76, "precharge_kp", PTYPE_FLOAT, "Precharge", 0, 100, ".3f"),
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ParamDef(0x78, "precharge_ki", PTYPE_FLOAT, "Precharge", 0, 10, ".4f"),
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ParamDef(0x77, "precharge_reg_en", PTYPE_UINT8, "Precharge", 0, 1, ".0f"),
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# Duty dither: delta-sigma the commanded duty between two out-of-band anchors (CMP ticks)
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ParamDef(0x70, "dither_en", PTYPE_UINT8, "Dither", 0, 1, ".0f"),
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ParamDef(0x71, "dither_band_lo", PTYPE_UINT16, "Dither", 716, 6442, ".0f"),
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ParamDef(0x72, "dither_band_hi", PTYPE_UINT16, "Dither", 716, 6442, ".0f"),
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ParamDef(0x73, "dither_anear", PTYPE_UINT16, "Dither", 716, 6442, ".0f"),
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ParamDef(0x74, "dither_afar", PTYPE_UINT16, "Dither", 716, 6442, ".0f"),
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ParamDef(0x75, "dither_dzero", PTYPE_UINT16, "Dither", 716, 6442, ".0f"),
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# ADC calibration
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ParamDef(0x79, "adc4_trig_phase", PTYPE_UINT16, "ADC", 3, 14313, ".0f"), # HRTIM master CMP3: iout_slow sample instant
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ParamDef(0x7A, "iin_zero_sum", PTYPE_UINT16, "ADC", 0, 32760, ".0f"), # IIN software zero offset, sum-of-8 counts
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]
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PARAM_BY_ID: dict[int, ParamDef] = {p.id: p for p in PARAMS}
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PARAM_BY_NAME: dict[str, ParamDef] = {p.name: p for p in PARAMS}
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# ── Frame building (PC -> STM32 commands, CRC-16 framed) ─────────────
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def build_frame(cmd: int, payload: bytes = b"") -> bytes:
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header = bytes([SYNC_BYTE, cmd, len(payload)])
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frame = header + payload
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crc = crc16(frame)
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return frame + bytes([(crc >> 8) & 0xFF, crc & 0xFF]) # big-endian: hi, lo
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def build_param_write(param_id: int, ptype: int, value) -> bytes:
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if ptype == PTYPE_FLOAT:
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val_bytes = struct.pack("<f", float(value))
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elif ptype == PTYPE_UINT16:
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val_bytes = struct.pack("<HH", int(value), 0)
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elif ptype == PTYPE_UINT8:
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val_bytes = struct.pack("<Bxxx", int(value))
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elif ptype == PTYPE_INT32:
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val_bytes = struct.pack("<i", int(value))
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elif ptype == PTYPE_INT16:
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val_bytes = struct.pack("<i", int(value)) # sign-extended 32-bit wire
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else:
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val_bytes = struct.pack("<I", int(value))
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payload = struct.pack("<BBxx", param_id, ptype) + val_bytes
|
|
return build_frame(CMD_PARAM_WRITE, payload)
|
|
|
|
|
|
def build_ping() -> bytes:
|
|
return build_frame(CMD_PING)
|
|
|
|
|
|
def build_shutdown() -> bytes:
|
|
return build_frame(CMD_SHUTDOWN)
|
|
|
|
|
|
def build_reset() -> bytes:
|
|
return build_frame(CMD_RESET)
|
|
|
|
|
|
def build_test_50() -> bytes:
|
|
return build_frame(CMD_TEST_50)
|
|
|
|
|
|
def build_relay_on() -> bytes:
|
|
return build_frame(CMD_RELAY_ON)
|
|
|
|
|
|
def build_relay_off() -> bytes:
|
|
return build_frame(CMD_RELAY_OFF)
|
|
|
|
|
|
def build_hold_converter() -> bytes:
|
|
return build_frame(CMD_HOLD_CONVERTER)
|
|
|
|
|
|
def build_toggle_precharge() -> bytes:
|
|
return build_frame(CMD_TOGGLE_PRECHARGE)
|
|
|
|
|
|
def build_param_read_all() -> bytes:
|
|
return build_frame(CMD_PARAM_READ_ALL)
|
|
|
|
|
|
def build_clear_flags() -> bytes:
|
|
return build_frame(CMD_CLEAR_FLAGS)
|
|
|
|
|
|
# ── STM32Link — synchronous serial interface ─────────────────────────
|
|
|
|
class STM32Link:
|
|
"""Blocking serial link to the STM32 debug protocol.
|
|
|
|
Telemetry and parameter echoes arrive via the continuous broadcast;
|
|
commands go out CRC-16 framed. The port MUST be opened with odd
|
|
parity (8-O-1) or the broadcast never validates.
|
|
|
|
Usage::
|
|
|
|
link = STM32Link("COM4")
|
|
link.ping()
|
|
t = link.read_telemetry()
|
|
print(f"Vin={t.vin_V:.1f}V Iout={t.iout_A:.1f}A EFF={t.efficiency:.1f}%")
|
|
link.write_param("dt_normal", 20)
|
|
link.close()
|
|
"""
|
|
|
|
def __init__(self, port: str, baudrate: int = 460800, timeout: float = 2.0):
|
|
self.timeout = timeout
|
|
self.ser = serial.Serial(
|
|
port, baudrate, timeout=0.1,
|
|
bytesize=serial.EIGHTBITS,
|
|
parity=serial.PARITY_ODD,
|
|
stopbits=serial.STOPBITS_ONE,
|
|
)
|
|
self._parser = BroadcastParser()
|
|
self._params: dict[int, float] = {}
|
|
self._pending: deque = deque() # decoded frames not yet consumed
|
|
self._last_counter = -1
|
|
|
|
def close(self):
|
|
if self.ser and self.ser.is_open:
|
|
self.ser.close()
|
|
|
|
def __enter__(self):
|
|
return self
|
|
|
|
def __exit__(self, *exc):
|
|
self.close()
|
|
|
|
# ── Low-level ────────────────────────────────────────────────────
|
|
|
|
def _send(self, frame: bytes):
|
|
self.ser.write(frame)
|
|
|
|
def _drain_serial(self) -> None:
|
|
"""Read one serial chunk and queue ALL decoded frames.
|
|
|
|
Param round-robin echoes are stashed into self._params in passing
|
|
(only once counter > 0 — fields are stale during the post-reset window).
|
|
"""
|
|
data = self.ser.read(4096)
|
|
if not data:
|
|
return
|
|
for b in self._parser.feed(data):
|
|
if b.counter > 0 and b.param_id in PARAM_BY_ID:
|
|
self._params[b.param_id] = decode_param_bits(b.param_type, b.param_value)
|
|
self._pending.append(b)
|
|
|
|
def _pump(self, deadline: float) -> Iterator[BroadcastData]:
|
|
"""Yield validated frames until deadline.
|
|
|
|
Frames are staged through self._pending so nothing is lost when a
|
|
caller stops iterating early (generator abandoned mid-chunk).
|
|
"""
|
|
while True:
|
|
while self._pending:
|
|
yield self._pending.popleft()
|
|
if time.monotonic() >= deadline:
|
|
return
|
|
self._drain_serial()
|
|
|
|
# ── Commands ─────────────────────────────────────────────────────
|
|
|
|
def ping(self, timeout: float = 2.0) -> bool:
|
|
"""Send PING, return True when the broadcast pong counter increments."""
|
|
baseline: Optional[int] = None
|
|
for b in self._pump(time.monotonic() + min(0.7, timeout)):
|
|
baseline = b.pong # pong is valid even at counter == 0
|
|
break
|
|
if baseline is None:
|
|
return False # no broadcast at all -> not connected
|
|
self._send(build_ping())
|
|
for b in self._pump(time.monotonic() + timeout):
|
|
if b.pong != baseline:
|
|
return True
|
|
return False
|
|
|
|
def shutdown(self):
|
|
"""Command the converter off."""
|
|
self._send(build_shutdown())
|
|
|
|
def reset(self):
|
|
"""Command a system reset."""
|
|
self._send(build_reset())
|
|
|
|
def test_50(self):
|
|
"""Enter 50% duty test mode."""
|
|
self._send(build_test_50())
|
|
|
|
def relay_on(self):
|
|
"""Latch the input relay closed (bench test)."""
|
|
self._send(build_relay_on())
|
|
|
|
def relay_off(self):
|
|
"""Latch the input relay open (bench test)."""
|
|
self._send(build_relay_off())
|
|
|
|
def hold_converter(self):
|
|
"""Toggle 'hold converter off' (boot guard + disarm trips)."""
|
|
self._send(build_hold_converter())
|
|
|
|
def toggle_precharge(self):
|
|
"""Toggle the precharge FET (bench test)."""
|
|
self._send(build_toggle_precharge())
|
|
|
|
def clear_flags(self):
|
|
"""Clear latched status flags."""
|
|
self._send(build_clear_flags())
|
|
|
|
# ── Telemetry ────────────────────────────────────────────────────
|
|
|
|
def read_telemetry(self, timeout: float = 2.0) -> Optional[BroadcastData]:
|
|
"""Return the next FRESH publish (counter-deduped — repeats skipped)."""
|
|
for b in self._pump(time.monotonic() + timeout):
|
|
if b.counter > 0 and b.counter != self._last_counter:
|
|
self._last_counter = b.counter
|
|
return b
|
|
return None
|
|
|
|
def read_telemetry_avg(self, n: int = 10, timeout: float = 5.0) -> Optional[BroadcastData]:
|
|
"""Average n fresh publishes (~n/100 s). Float fields are averaged;
|
|
int/flag fields come from the last sample."""
|
|
samples: list[BroadcastData] = []
|
|
deadline = time.monotonic() + timeout
|
|
while len(samples) < n and time.monotonic() < deadline:
|
|
t = self.read_telemetry(timeout=deadline - time.monotonic())
|
|
if t:
|
|
samples.append(t)
|
|
if not samples:
|
|
return None
|
|
avg = dataclasses.replace(samples[-1])
|
|
for attr in ("vin", "vout", "iin", "iout", "vfly", "etemp", "btemp",
|
|
"vfly_integral", "vfly_avg_debug", "cc_output_f",
|
|
"mppt_iref", "mppt_last_vin", "mppt_last_iin",
|
|
"p_in", "p_out", "iout_slow"):
|
|
setattr(avg, attr, sum(getattr(s, attr) for s in samples) / len(samples))
|
|
return avg
|
|
|
|
# ── Parameters ───────────────────────────────────────────────────
|
|
|
|
def request_all_params(self):
|
|
"""Restart the broadcast param round-robin from the first param."""
|
|
self._send(build_param_read_all())
|
|
|
|
def read_all_params(self, timeout: float = 5.0) -> dict[str, float]:
|
|
"""Collect all parameter values from the broadcast round-robin
|
|
(one param per publish -> full rotation ~0.4 s at 100 Hz)."""
|
|
self._params.clear()
|
|
self.request_all_params()
|
|
for _ in self._pump(time.monotonic() + timeout):
|
|
if len(self._params) >= len(PARAMS):
|
|
break
|
|
return {
|
|
PARAM_BY_ID[pid].name: val
|
|
for pid, val in self._params.items()
|
|
if pid in PARAM_BY_ID
|
|
}
|
|
|
|
def write_param(self, name: str, value: float, wait_ack: bool = True) -> bool:
|
|
"""Write a parameter by name. The write is acknowledged when the
|
|
broadcast round-robin echoes the new value back (clamped + formatted
|
|
the way the firmware reports it); retries until it matches."""
|
|
pdef = PARAM_BY_NAME.get(name)
|
|
if not pdef:
|
|
raise ValueError(f"Unknown parameter: {name!r}")
|
|
if value < pdef.min_val or value > pdef.max_val:
|
|
raise ValueError(
|
|
f"{name}: {value} out of range [{pdef.min_val}, {pdef.max_val}]"
|
|
)
|
|
frame = build_param_write(pdef.id, pdef.ptype, value)
|
|
if not wait_ack:
|
|
self._send(frame)
|
|
return True
|
|
clamped = max(pdef.min_val, min(pdef.max_val, float(value)))
|
|
expect = f"{clamped:{pdef.fmt}}"
|
|
for _ in range(6):
|
|
self._send(frame)
|
|
# one full round-robin rotation is ~0.4 s; 0.5 s sees the echo once
|
|
for b in self._pump(time.monotonic() + 0.5):
|
|
if b.counter > 0 and b.param_id == pdef.id:
|
|
echoed = decode_param_bits(b.param_type, b.param_value)
|
|
if f"{echoed:{pdef.fmt}}" == expect:
|
|
self._params[pdef.id] = echoed
|
|
return True
|
|
return False
|
|
|
|
def write_param_by_id(self, param_id: int, value: float) -> bool:
|
|
"""Write a parameter by ID."""
|
|
pdef = PARAM_BY_ID.get(param_id)
|
|
if not pdef:
|
|
raise ValueError(f"Unknown param ID: 0x{param_id:02X}")
|
|
return self.write_param(pdef.name, value)
|