bambu_mqtt.py 135 KB

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  1. """Bambu Lab MQTT communication service.
  2. IMPORTANT: Always use qos=1 for all MQTT publish calls!
  3. The printer ignores qos=0 messages when busy broadcasting status updates.
  4. Using qos=1 ensures the printer acknowledges and processes our commands immediately.
  5. This was discovered when K-profile requests with qos=0 took 20-30 seconds,
  6. but with qos=1 they respond instantly.
  7. """
  8. import asyncio
  9. import json
  10. import logging
  11. import ssl
  12. import time
  13. from collections import deque
  14. from collections.abc import Callable
  15. from dataclasses import dataclass, field
  16. from datetime import datetime
  17. import paho.mqtt.client as mqtt
  18. logger = logging.getLogger(__name__)
  19. @dataclass
  20. class MQTTLogEntry:
  21. """Log entry for MQTT message debugging."""
  22. timestamp: str
  23. topic: str
  24. direction: str # "in" or "out"
  25. payload: dict
  26. @dataclass
  27. class HMSError:
  28. """Health Management System error from printer."""
  29. code: str
  30. attr: int # Attribute value for constructing wiki URL
  31. module: int
  32. severity: int # 1=fatal, 2=serious, 3=common, 4=info
  33. message: str = ""
  34. @dataclass
  35. class KProfile:
  36. """Pressure advance (K) calibration profile from printer."""
  37. slot_id: int
  38. extruder_id: int
  39. nozzle_id: str
  40. nozzle_diameter: str
  41. filament_id: str
  42. name: str
  43. k_value: str
  44. n_coef: str = "0.000000"
  45. ams_id: int = 0
  46. tray_id: int = -1
  47. setting_id: str | None = None
  48. @dataclass
  49. class NozzleInfo:
  50. """Nozzle hardware configuration."""
  51. nozzle_type: str = "" # "stainless_steel" or "hardened_steel"
  52. nozzle_diameter: str = "" # e.g., "0.4"
  53. @dataclass
  54. class PrintOptions:
  55. """AI detection and print options from xcam data."""
  56. # Core AI detectors
  57. spaghetti_detector: bool = False
  58. print_halt: bool = False
  59. halt_print_sensitivity: str = "medium" # Spaghetti sensitivity
  60. first_layer_inspector: bool = False
  61. printing_monitor: bool = False # AI print quality monitoring
  62. buildplate_marker_detector: bool = False
  63. allow_skip_parts: bool = False
  64. # Additional AI detectors - decoded from cfg bitmask
  65. nozzle_clumping_detector: bool = True
  66. nozzle_clumping_sensitivity: str = "medium"
  67. pileup_detector: bool = True
  68. pileup_sensitivity: str = "medium"
  69. airprint_detector: bool = True
  70. airprint_sensitivity: str = "medium"
  71. auto_recovery_step_loss: bool = True # Uses print.print_option command
  72. filament_tangle_detect: bool = False
  73. @dataclass
  74. class PrinterState:
  75. connected: bool = False
  76. state: str = "unknown"
  77. current_print: str | None = None
  78. subtask_name: str | None = None
  79. progress: float = 0.0
  80. remaining_time: int = 0
  81. layer_num: int = 0
  82. total_layers: int = 0
  83. temperatures: dict = field(default_factory=dict)
  84. raw_data: dict = field(default_factory=dict)
  85. gcode_file: str | None = None
  86. subtask_id: str | None = None
  87. hms_errors: list = field(default_factory=list) # List of HMSError
  88. kprofiles: list = field(default_factory=list) # List of KProfile
  89. sdcard: bool = False # SD card inserted
  90. store_to_sdcard: bool = False # Store sent files on SD card (home_flag bit 11)
  91. timelapse: bool = False # Timelapse recording active
  92. ipcam: bool = False # Live view / camera streaming enabled
  93. wifi_signal: int | None = None # WiFi signal strength in dBm
  94. # Nozzle hardware info (for dual nozzle printers, index 0 = left, 1 = right)
  95. nozzles: list = field(default_factory=lambda: [NozzleInfo(), NozzleInfo()])
  96. # AI detection and print options
  97. print_options: PrintOptions = field(default_factory=PrintOptions)
  98. # Calibration stage tracking (from stg_cur and stg fields)
  99. stg_cur: int = -1 # Current stage index (-1 = not calibrating)
  100. stg: list = field(default_factory=list) # List of stages to execute
  101. # Air conditioning mode (0=cooling, 1=heating)
  102. airduct_mode: int = 0
  103. # Print speed level (1=silent, 2=standard, 3=sport, 4=ludicrous)
  104. speed_level: int = 2
  105. # Chamber light on/off
  106. chamber_light: bool = False
  107. # Active extruder for dual nozzle (0=right, 1=left) - from device.extruder.info[X].hnow
  108. active_extruder: int = 0
  109. # Currently loaded tray (global ID): 254 = external spool, 255 = no filament
  110. tray_now: int = 255
  111. # Pending load target - used to track what tray we're loading for H2D disambiguation
  112. pending_tray_target: int | None = None
  113. # AMS status for filament change tracking (from print.ams.ams_status field)
  114. # ams_status is a combined value: lower 8 bits = sub status, bits 8-15 = main status
  115. # Main status: 0=idle, 1=filament_change, 2=rfid_identifying, 3=assist, 4=calibration, etc.
  116. ams_status: int = 0
  117. ams_status_main: int = 0 # (ams_status >> 8) & 0xFF
  118. ams_status_sub: int = 0 # ams_status & 0xFF
  119. # mc_print_sub_stage - filament change step indicator from print.mc_print_sub_stage
  120. # Used by OrcaSlicer/BambuStudio to track progress during filament load/unload
  121. mc_print_sub_stage: int = 0
  122. # AMS mapping for dual nozzle: which slot is active (from ams.ams_exist_bits/tray_exist_bits)
  123. ams_mapping: list = field(default_factory=list)
  124. # Per-AMS extruder map: {ams_id: extruder_id} where 0=right, 1=left
  125. ams_extruder_map: dict = field(default_factory=dict)
  126. # Timestamp of last AMS data update (for RFID refresh detection)
  127. last_ams_update: float = 0.0
  128. # Stage name mapping from BambuStudio DeviceManager.cpp
  129. STAGE_NAMES = {
  130. 0: "Printing",
  131. 1: "Auto bed leveling",
  132. 2: "Heatbed preheating",
  133. 3: "Vibration compensation",
  134. 4: "Changing filament",
  135. 5: "M400 pause",
  136. 6: "Paused (filament ran out)",
  137. 7: "Heating nozzle",
  138. 8: "Calibrating dynamic flow",
  139. 9: "Scanning bed surface",
  140. 10: "Inspecting first layer",
  141. 11: "Identifying build plate type",
  142. 12: "Calibrating Micro Lidar",
  143. 13: "Homing toolhead",
  144. 14: "Cleaning nozzle tip",
  145. 15: "Checking extruder temperature",
  146. 16: "Paused by the user",
  147. 17: "Pause (front cover fall off)",
  148. 18: "Calibrating the micro lidar",
  149. 19: "Calibrating flow ratio",
  150. 20: "Pause (nozzle temperature malfunction)",
  151. 21: "Pause (heatbed temperature malfunction)",
  152. 22: "Filament unloading",
  153. 23: "Pause (step loss)",
  154. 24: "Filament loading",
  155. 25: "Motor noise cancellation",
  156. 26: "Pause (AMS offline)",
  157. 27: "Pause (low speed of the heatbreak fan)",
  158. 28: "Pause (chamber temperature control problem)",
  159. 29: "Cooling chamber",
  160. 30: "Pause (Gcode inserted by user)",
  161. 31: "Motor noise showoff",
  162. 32: "Pause (nozzle clumping)",
  163. 33: "Pause (cutter error)",
  164. 34: "Pause (first layer error)",
  165. 35: "Pause (nozzle clog)",
  166. 36: "Measuring motion precision",
  167. 37: "Enhancing motion precision",
  168. 38: "Measure motion accuracy",
  169. 39: "Nozzle offset calibration",
  170. 40: "High temperature auto bed leveling",
  171. 41: "Auto Check: Quick Release Lever",
  172. 42: "Auto Check: Door and Upper Cover",
  173. 43: "Laser Calibration",
  174. 44: "Auto Check: Platform",
  175. 45: "Confirming BirdsEye Camera location",
  176. 46: "Calibrating BirdsEye Camera",
  177. 47: "Auto bed leveling - phase 1",
  178. 48: "Auto bed leveling - phase 2",
  179. 49: "Heating chamber",
  180. 50: "Cooling heatbed",
  181. 51: "Printing calibration lines",
  182. 52: "Auto Check: Material",
  183. 53: "Live View Camera Calibration",
  184. 54: "Waiting for heatbed temperature",
  185. 55: "Auto Check: Material Position",
  186. 56: "Cutting Module Offset Calibration",
  187. 57: "Measuring Surface",
  188. 58: "Thermal Preconditioning",
  189. 59: "Homing Blade Holder",
  190. 60: "Calibrating Camera Offset",
  191. 61: "Calibrating Blade Holder Position",
  192. 62: "Hotend Pick and Place Test",
  193. 63: "Waiting for Chamber temperature",
  194. 64: "Preparing Hotend",
  195. 65: "Calibrating nozzle clumping detection",
  196. 66: "Purifying the chamber air",
  197. }
  198. def get_stage_name(stage: int) -> str:
  199. """Get human-readable stage name from stage number."""
  200. return STAGE_NAMES.get(stage, f"Unknown stage ({stage})")
  201. class BambuMQTTClient:
  202. """MQTT client for Bambu Lab printer communication."""
  203. MQTT_PORT = 8883
  204. def __init__(
  205. self,
  206. ip_address: str,
  207. serial_number: str,
  208. access_code: str,
  209. on_state_change: Callable[[PrinterState], None] | None = None,
  210. on_print_start: Callable[[dict], None] | None = None,
  211. on_print_complete: Callable[[dict], None] | None = None,
  212. on_ams_change: Callable[[list], None] | None = None,
  213. ):
  214. self.ip_address = ip_address
  215. self.serial_number = serial_number
  216. self.access_code = access_code
  217. self.on_state_change = on_state_change
  218. self.on_print_start = on_print_start
  219. self.on_print_complete = on_print_complete
  220. self.on_ams_change = on_ams_change
  221. self.state = PrinterState()
  222. self._client: mqtt.Client | None = None
  223. self._loop: asyncio.AbstractEventLoop | None = None
  224. self._previous_gcode_state: str | None = None
  225. self._previous_gcode_file: str | None = None
  226. self._was_running: bool = False # Track if we've seen RUNNING state for current print
  227. self._completion_triggered: bool = False # Prevent duplicate completion triggers
  228. self._timelapse_during_print: bool = False # Track if timelapse was active during this print
  229. self._message_log: deque[MQTTLogEntry] = deque(maxlen=100)
  230. self._logging_enabled: bool = False
  231. self._last_message_time: float = 0.0 # Track when we last received a message
  232. self._previous_ams_hash: str | None = None # Track AMS changes
  233. # K-profile command tracking
  234. self._sequence_id: int = 0
  235. self._pending_kprofile_response: asyncio.Event | None = None
  236. self._kprofile_response_data: list | None = None
  237. # Xcam hold timers - OrcaSlicer pattern: ignore incoming data for 3 seconds after command
  238. # Key: module_name, Value: timestamp when command was sent
  239. self._xcam_hold_start: dict[str, float] = {}
  240. self._xcam_hold_time: float = 3.0 # Ignore incoming data for 3 seconds after command
  241. # Track last requested tray ID for H2D dual-nozzle printers
  242. # H2D only reports slot number (0-3) in tray_now, not global tray ID
  243. # We use our tracked value to resolve the correct global ID
  244. self._last_load_tray_id: int | None = None
  245. @property
  246. def topic_subscribe(self) -> str:
  247. return f"device/{self.serial_number}/report"
  248. @property
  249. def topic_publish(self) -> str:
  250. return f"device/{self.serial_number}/request"
  251. # Maximum time (seconds) without a message before considering connection stale
  252. STALE_TIMEOUT = 60.0
  253. def is_stale(self) -> bool:
  254. """Check if the connection is stale (no messages for too long)."""
  255. if self._last_message_time == 0:
  256. return False # Never received a message yet
  257. time_since_last = time.time() - self._last_message_time
  258. return time_since_last > self.STALE_TIMEOUT
  259. def check_staleness(self) -> bool:
  260. """Check staleness and update connected state if stale. Returns True if connected."""
  261. if self.state.connected and self.is_stale():
  262. logger.warning(
  263. f"[{self.serial_number}] Connection stale - no message for {time.time() - self._last_message_time:.1f}s"
  264. )
  265. self.state.connected = False
  266. if self.on_state_change:
  267. self.on_state_change(self.state)
  268. return self.state.connected
  269. def _on_connect(self, client, userdata, flags, rc, properties=None):
  270. if rc == 0:
  271. self.state.connected = True
  272. client.subscribe(self.topic_subscribe)
  273. # Request full status update (includes nozzle info in push_status response)
  274. self._request_push_all()
  275. # Note: get_accessories returns stale nozzle data on H2D, so we don't use it.
  276. # The correct nozzle data comes from push_status.
  277. # Prime K-profile request (Bambu printers often ignore first request)
  278. self._prime_kprofile_request()
  279. # Immediately broadcast connection state change
  280. if self.on_state_change:
  281. self.on_state_change(self.state)
  282. else:
  283. self.state.connected = False
  284. def _on_disconnect(self, client, userdata, disconnect_flags=None, rc=None, properties=None):
  285. # Ignore spurious disconnect callbacks if we've received a message recently
  286. # Paho-mqtt sometimes fires disconnect callbacks while the connection is still active
  287. time_since_last_message = time.time() - self._last_message_time
  288. if time_since_last_message < 30.0 and self._last_message_time > 0:
  289. logger.debug(
  290. f"[{self.serial_number}] Ignoring spurious disconnect (last message {time_since_last_message:.1f}s ago)"
  291. )
  292. return
  293. logger.warning(f"[{self.serial_number}] MQTT disconnected: rc={rc}, flags={disconnect_flags}")
  294. self.state.connected = False
  295. if self.on_state_change:
  296. self.on_state_change(self.state)
  297. def _on_message(self, client, userdata, msg):
  298. try:
  299. payload = json.loads(msg.payload.decode())
  300. # Track last message time - receiving a message proves we're connected
  301. self._last_message_time = time.time()
  302. self.state.connected = True
  303. # TEMP: Dump full payload once to find extruder state field
  304. if not hasattr(self, "_payload_dumped"):
  305. self._payload_dumped = True
  306. logger.info(f"[{self.serial_number}] FULL MQTT PAYLOAD DUMP:\n{json.dumps(payload, indent=2)}")
  307. # Log message if logging is enabled
  308. if self._logging_enabled:
  309. self._message_log.append(
  310. MQTTLogEntry(
  311. timestamp=datetime.now().isoformat(),
  312. topic=msg.topic,
  313. direction="in",
  314. payload=payload,
  315. )
  316. )
  317. self._process_message(payload)
  318. except json.JSONDecodeError:
  319. pass
  320. def _process_message(self, payload: dict):
  321. """Process incoming MQTT message from printer."""
  322. # Handle top-level AMS data (comes outside of "print" key)
  323. # Wrap in try/except to prevent breaking the MQTT connection
  324. if "ams" in payload:
  325. try:
  326. self._handle_ams_data(payload["ams"])
  327. except Exception as e:
  328. logger.error(f"[{self.serial_number}] Error handling AMS data: {e}")
  329. # Handle xcam data (camera settings and AI detection) at top level
  330. if "xcam" in payload:
  331. xcam_data = payload["xcam"]
  332. logger.info(f"[{self.serial_number}] Received xcam data at top level: {xcam_data}")
  333. self._parse_xcam_data(xcam_data)
  334. # Fire state change callback for top-level xcam (not nested in "print")
  335. if "print" not in payload and self.on_state_change:
  336. self.on_state_change(self.state)
  337. # Handle system responses (accessories info, etc.)
  338. if "system" in payload:
  339. system_data = payload["system"]
  340. logger.info(f"[{self.serial_number}] Received system data: {system_data}")
  341. self._handle_system_response(system_data)
  342. # Parse WiFi signal at top level (some printers send it here)
  343. if "wifi_signal" in payload:
  344. wifi_signal = payload["wifi_signal"]
  345. if isinstance(wifi_signal, (int, float)):
  346. self.state.wifi_signal = int(wifi_signal)
  347. elif isinstance(wifi_signal, str):
  348. try:
  349. self.state.wifi_signal = int(wifi_signal.replace("dBm", "").strip())
  350. except ValueError:
  351. pass
  352. if "print" in payload:
  353. print_data = payload["print"]
  354. # Check if xcam is nested inside print data
  355. if "xcam" in print_data:
  356. logger.info(f"[{self.serial_number}] Found xcam inside print data: {print_data['xcam']}")
  357. self._parse_xcam_data(print_data["xcam"])
  358. # Log when we see gcode_state changes
  359. if "gcode_state" in print_data:
  360. logger.info(
  361. f"[{self.serial_number}] Received gcode_state: {print_data.get('gcode_state')}, "
  362. f"gcode_file: {print_data.get('gcode_file')}, subtask_name: {print_data.get('subtask_name')}"
  363. )
  364. # Handle AMS data that comes inside print key
  365. if "ams" in print_data:
  366. try:
  367. self._handle_ams_data(print_data["ams"])
  368. except Exception as e:
  369. logger.error(f"[{self.serial_number}] Error handling AMS data from print: {e}")
  370. # Handle vt_tray (virtual tray / external spool) data
  371. if "vt_tray" in print_data:
  372. vt_tray = print_data["vt_tray"]
  373. self.state.raw_data["vt_tray"] = vt_tray
  374. # Log vt_tray to investigate per-extruder data for H2D
  375. if not hasattr(self, "_vt_tray_logged") or not self._vt_tray_logged:
  376. logger.info(f"[{self.serial_number}] vt_tray data: {vt_tray}")
  377. self._vt_tray_logged = True
  378. # Parse ams_status directly from print data (NOT from print.ams)
  379. # ams_status is a combined value: lower 8 bits = sub status, bits 8-15 = main status
  380. # Main status: 0=idle, 1=filament_change, 2=rfid_identifying, 3=assist, 4=calibration
  381. # Sub status (when main=1): 2=heating, 3=AMS feeding, 4=retract, 6=push, 7=purge
  382. if "ams_status" in print_data:
  383. raw_ams_status = print_data["ams_status"]
  384. if isinstance(raw_ams_status, str):
  385. try:
  386. self.state.ams_status = int(raw_ams_status)
  387. except ValueError:
  388. self.state.ams_status = 0
  389. else:
  390. self.state.ams_status = raw_ams_status if raw_ams_status is not None else 0
  391. # Compute main and sub status
  392. self.state.ams_status_sub = self.state.ams_status & 0xFF
  393. self.state.ams_status_main = (self.state.ams_status >> 8) & 0xFF
  394. # Log when ams_status changes (for filament change tracking debug)
  395. logger.debug(
  396. f"[{self.serial_number}] ams_status: {self.state.ams_status} "
  397. f"(main={self.state.ams_status_main}, sub={self.state.ams_status_sub})"
  398. )
  399. # Check for K-profile response (extrusion_cali)
  400. if "command" in print_data:
  401. logger.debug(f"[{self.serial_number}] Received command response: {print_data.get('command')}")
  402. if "command" in print_data and print_data.get("command") == "extrusion_cali_get":
  403. self._handle_kprofile_response(print_data)
  404. self._update_state(print_data)
  405. def _handle_system_response(self, data: dict):
  406. """Handle system responses including accessories info.
  407. Note: get_accessories returns stale/incorrect nozzle_type data on H2D.
  408. The correct nozzle data comes from push_status, so we don't update
  409. nozzle type/diameter from get_accessories. We just log the response
  410. for debugging purposes.
  411. """
  412. command = data.get("command")
  413. if command == "get_accessories":
  414. # Log response for debugging - but DON'T use it to update nozzle data
  415. # because it returns stale values (e.g., 'stainless_steel' when the
  416. # actual nozzle is 'HH01' hardened steel high-flow)
  417. logger.info(f"[{self.serial_number}] Accessories response (not used for nozzle data): {data}")
  418. def _parse_xcam_data(self, xcam_data):
  419. """Parse xcam data for camera settings and AI detection options."""
  420. if not isinstance(xcam_data, dict):
  421. return
  422. current_time = time.time()
  423. # Helper to check if we should accept incoming value for a module
  424. # OrcaSlicer pattern: simple hold timer, ignore ALL data for 3 seconds after command
  425. def should_accept_value(module_name: str, incoming_value: bool) -> bool:
  426. """Check if we should accept an incoming xcam value.
  427. OrcaSlicer pattern: After sending a command, ignore incoming data
  428. for 3 seconds. After that, accept whatever the printer sends.
  429. """
  430. if module_name not in self._xcam_hold_start:
  431. return True # No hold timer, accept incoming
  432. hold_start = self._xcam_hold_start[module_name]
  433. elapsed = current_time - hold_start
  434. if elapsed > self._xcam_hold_time:
  435. # Hold timer expired - accept incoming and clear hold
  436. del self._xcam_hold_start[module_name]
  437. logger.debug(f"[{self.serial_number}] Hold expired for {module_name}, accepting {incoming_value}")
  438. return True
  439. # Within hold period - ignore incoming data
  440. logger.debug(
  441. f"[{self.serial_number}] Ignoring {module_name}={incoming_value} "
  442. f"(hold active, {elapsed:.1f}s < {self._xcam_hold_time}s)"
  443. )
  444. return False
  445. # Log all xcam fields for debugging
  446. logger.debug(f"[{self.serial_number}] Parsing xcam data - all fields: {list(xcam_data.keys())}")
  447. # The cfg bitmask contains the ACTUAL detector states - the individual boolean
  448. # fields (spaghetti_detector, etc.) are often stale/cached.
  449. # CFG bitmask structure (each detector uses 3 bits: [sens_low, sens_high, enabled]):
  450. # - Bits 5-7: spaghetti_detector (sens in 5-6, enabled in 7)
  451. # - Bits 8-10: pileup_detector (sens in 8-9, enabled in 10)
  452. # - Bits 11-13: clump_detector/nozzle_clumping (sens in 11-12, enabled in 13)
  453. # - Bits 14-16: airprint_detector (sens in 14-15, enabled in 16)
  454. # Sensitivity values: 0=low, 1=medium, 2=high
  455. if "cfg" in xcam_data:
  456. cfg = xcam_data["cfg"]
  457. logger.debug(f"[{self.serial_number}] xcam cfg bitmask: {cfg} (binary: {bin(cfg)})")
  458. def decode_detector(start_bit):
  459. """Decode a detector from cfg: returns (enabled, sensitivity_str)"""
  460. sens_bits = (cfg >> start_bit) & 0x3
  461. enabled = bool((cfg >> (start_bit + 2)) & 1)
  462. sensitivity = {0: "low", 1: "medium", 2: "high"}.get(sens_bits, "medium")
  463. return enabled, sensitivity
  464. # Spaghetti detector (bits 5-7)
  465. cfg_spaghetti, cfg_sensitivity = decode_detector(5)
  466. if should_accept_value("spaghetti_detector", cfg_spaghetti):
  467. old_value = self.state.print_options.spaghetti_detector
  468. if cfg_spaghetti != old_value:
  469. logger.info(
  470. f"[{self.serial_number}] spaghetti_detector changed (from cfg): {old_value} -> {cfg_spaghetti}"
  471. )
  472. self.state.print_options.spaghetti_detector = cfg_spaghetti
  473. # Check hold timer for sensitivity before accepting
  474. if "halt_print_sensitivity" not in self._xcam_hold_start:
  475. if cfg_sensitivity != self.state.print_options.halt_print_sensitivity:
  476. logger.info(
  477. f"[{self.serial_number}] Sensitivity changed (from cfg): "
  478. f"{self.state.print_options.halt_print_sensitivity} -> {cfg_sensitivity}"
  479. )
  480. self.state.print_options.halt_print_sensitivity = cfg_sensitivity
  481. else:
  482. hold_start = self._xcam_hold_start["halt_print_sensitivity"]
  483. elapsed = current_time - hold_start
  484. if elapsed <= self._xcam_hold_time:
  485. logger.debug(
  486. f"[{self.serial_number}] Ignoring cfg sensitivity={cfg_sensitivity} "
  487. f"(hold active, {elapsed:.1f}s < {self._xcam_hold_time}s)"
  488. )
  489. else:
  490. # Hold expired - accept from cfg
  491. if cfg_sensitivity != self.state.print_options.halt_print_sensitivity:
  492. logger.info(
  493. f"[{self.serial_number}] Sensitivity synced (from cfg after hold): "
  494. f"{self.state.print_options.halt_print_sensitivity} -> {cfg_sensitivity}"
  495. )
  496. self.state.print_options.halt_print_sensitivity = cfg_sensitivity
  497. del self._xcam_hold_start["halt_print_sensitivity"]
  498. # Pileup detector (bits 8-10)
  499. cfg_pileup, cfg_pileup_sens = decode_detector(8)
  500. if should_accept_value("pileup_detector", cfg_pileup):
  501. if cfg_pileup != self.state.print_options.pileup_detector:
  502. logger.info(
  503. f"[{self.serial_number}] pileup_detector changed (from cfg): {self.state.print_options.pileup_detector} -> {cfg_pileup}"
  504. )
  505. self.state.print_options.pileup_detector = cfg_pileup
  506. # Pileup sensitivity with hold timer
  507. if "pileup_sensitivity" not in self._xcam_hold_start:
  508. if cfg_pileup_sens != self.state.print_options.pileup_sensitivity:
  509. logger.info(
  510. f"[{self.serial_number}] pileup_sensitivity changed (from cfg): {self.state.print_options.pileup_sensitivity} -> {cfg_pileup_sens}"
  511. )
  512. self.state.print_options.pileup_sensitivity = cfg_pileup_sens
  513. else:
  514. hold_start = self._xcam_hold_start["pileup_sensitivity"]
  515. elapsed = current_time - hold_start
  516. if elapsed > self._xcam_hold_time:
  517. if cfg_pileup_sens != self.state.print_options.pileup_sensitivity:
  518. logger.info(
  519. f"[{self.serial_number}] pileup_sensitivity synced (from cfg after hold): {self.state.print_options.pileup_sensitivity} -> {cfg_pileup_sens}"
  520. )
  521. self.state.print_options.pileup_sensitivity = cfg_pileup_sens
  522. del self._xcam_hold_start["pileup_sensitivity"]
  523. # Clump/nozzle clumping detector (bits 11-13)
  524. cfg_clump, cfg_clump_sens = decode_detector(11)
  525. if should_accept_value("clump_detector", cfg_clump):
  526. if cfg_clump != self.state.print_options.nozzle_clumping_detector:
  527. logger.info(
  528. f"[{self.serial_number}] nozzle_clumping_detector changed (from cfg): {self.state.print_options.nozzle_clumping_detector} -> {cfg_clump}"
  529. )
  530. self.state.print_options.nozzle_clumping_detector = cfg_clump
  531. # Clump sensitivity with hold timer
  532. if "nozzle_clumping_sensitivity" not in self._xcam_hold_start:
  533. if cfg_clump_sens != self.state.print_options.nozzle_clumping_sensitivity:
  534. logger.info(
  535. f"[{self.serial_number}] nozzle_clumping_sensitivity changed (from cfg): {self.state.print_options.nozzle_clumping_sensitivity} -> {cfg_clump_sens}"
  536. )
  537. self.state.print_options.nozzle_clumping_sensitivity = cfg_clump_sens
  538. else:
  539. hold_start = self._xcam_hold_start["nozzle_clumping_sensitivity"]
  540. elapsed = current_time - hold_start
  541. if elapsed > self._xcam_hold_time:
  542. if cfg_clump_sens != self.state.print_options.nozzle_clumping_sensitivity:
  543. logger.info(
  544. f"[{self.serial_number}] nozzle_clumping_sensitivity synced (from cfg after hold): {self.state.print_options.nozzle_clumping_sensitivity} -> {cfg_clump_sens}"
  545. )
  546. self.state.print_options.nozzle_clumping_sensitivity = cfg_clump_sens
  547. del self._xcam_hold_start["nozzle_clumping_sensitivity"]
  548. # Airprint detector (bits 14-16)
  549. cfg_airprint, cfg_airprint_sens = decode_detector(14)
  550. if should_accept_value("airprint_detector", cfg_airprint):
  551. if cfg_airprint != self.state.print_options.airprint_detector:
  552. logger.info(
  553. f"[{self.serial_number}] airprint_detector changed (from cfg): {self.state.print_options.airprint_detector} -> {cfg_airprint}"
  554. )
  555. self.state.print_options.airprint_detector = cfg_airprint
  556. # Airprint sensitivity with hold timer
  557. if "airprint_sensitivity" not in self._xcam_hold_start:
  558. if cfg_airprint_sens != self.state.print_options.airprint_sensitivity:
  559. logger.info(
  560. f"[{self.serial_number}] airprint_sensitivity changed (from cfg): {self.state.print_options.airprint_sensitivity} -> {cfg_airprint_sens}"
  561. )
  562. self.state.print_options.airprint_sensitivity = cfg_airprint_sens
  563. else:
  564. hold_start = self._xcam_hold_start["airprint_sensitivity"]
  565. elapsed = current_time - hold_start
  566. if elapsed > self._xcam_hold_time:
  567. if cfg_airprint_sens != self.state.print_options.airprint_sensitivity:
  568. logger.info(
  569. f"[{self.serial_number}] airprint_sensitivity synced (from cfg after hold): {self.state.print_options.airprint_sensitivity} -> {cfg_airprint_sens}"
  570. )
  571. self.state.print_options.airprint_sensitivity = cfg_airprint_sens
  572. del self._xcam_hold_start["airprint_sensitivity"]
  573. # Camera settings
  574. if "ipcam_record" in xcam_data:
  575. self.state.ipcam = xcam_data.get("ipcam_record") == "enable"
  576. if "timelapse" in xcam_data:
  577. self.state.timelapse = xcam_data.get("timelapse") == "enable"
  578. # Track if timelapse was ever active during this print
  579. if self.state.timelapse and self._was_running:
  580. self._timelapse_during_print = True
  581. # Skip spaghetti_detector boolean field - we read from cfg bitmask above
  582. if "print_halt" in xcam_data:
  583. self.state.print_options.print_halt = bool(xcam_data.get("print_halt"))
  584. # Skip halt_print_sensitivity field - it's always stale ("medium")
  585. # We read the actual sensitivity from cfg bits 5-6 above
  586. if "first_layer_inspector" in xcam_data:
  587. new_value = bool(xcam_data.get("first_layer_inspector"))
  588. if should_accept_value("first_layer_inspector", new_value):
  589. self.state.print_options.first_layer_inspector = new_value
  590. if "printing_monitor" in xcam_data:
  591. new_value = bool(xcam_data.get("printing_monitor"))
  592. if should_accept_value("printing_monitor", new_value):
  593. self.state.print_options.printing_monitor = new_value
  594. if "buildplate_marker_detector" in xcam_data:
  595. new_value = bool(xcam_data.get("buildplate_marker_detector"))
  596. if should_accept_value("buildplate_marker_detector", new_value):
  597. self.state.print_options.buildplate_marker_detector = new_value
  598. if "allow_skip_parts" in xcam_data:
  599. new_value = bool(xcam_data.get("allow_skip_parts"))
  600. if should_accept_value("allow_skip_parts", new_value):
  601. self.state.print_options.allow_skip_parts = new_value
  602. # Additional AI detectors - these are decoded from cfg bitmask above, not from
  603. # individual boolean fields (which are not sent by the printer)
  604. # pileup_detector, nozzle_clumping_detector, airprint_detector - from cfg
  605. # auto_recovery_step_loss and filament_tangle_detect - tracked locally only
  606. if "auto_recovery_step_loss" in xcam_data:
  607. self.state.print_options.auto_recovery_step_loss = bool(xcam_data.get("auto_recovery_step_loss"))
  608. if "filament_tangle_detect" in xcam_data:
  609. self.state.print_options.filament_tangle_detect = bool(xcam_data.get("filament_tangle_detect"))
  610. def _handle_ams_data(self, ams_data):
  611. """Handle AMS data changes for Spoolman integration.
  612. This is called when we receive top-level AMS data in MQTT messages.
  613. It detects changes and triggers the callback for Spoolman sync.
  614. """
  615. import hashlib
  616. # Handle nested ams structure: {"ams": {"ams": [...]}} or {"ams": [...]}
  617. if isinstance(ams_data, dict) and "ams" in ams_data:
  618. ams_list = ams_data["ams"]
  619. # Log all AMS dict fields to debug tray_now for H2D dual-nozzle
  620. non_list_fields = {k: v for k, v in ams_data.items() if k != "ams"}
  621. if non_list_fields:
  622. logger.info(f"[{self.serial_number}] AMS dict fields: {non_list_fields}")
  623. # IMPORTANT: Parse ams_status FIRST before tray_now, so we have fresh status
  624. # when checking if we're in filament change mode for tray_now disambiguation
  625. if "ams_status" in ams_data:
  626. raw_ams_status = ams_data["ams_status"]
  627. if isinstance(raw_ams_status, str):
  628. try:
  629. self.state.ams_status = int(raw_ams_status)
  630. except ValueError:
  631. self.state.ams_status = 0
  632. else:
  633. self.state.ams_status = raw_ams_status if raw_ams_status is not None else 0
  634. # Compute main and sub status
  635. self.state.ams_status_sub = self.state.ams_status & 0xFF
  636. self.state.ams_status_main = (self.state.ams_status >> 8) & 0xFF
  637. logger.debug(
  638. f"[{self.serial_number}] ams_status: {self.state.ams_status} "
  639. f"(main={self.state.ams_status_main}, sub={self.state.ams_status_sub})"
  640. )
  641. # Parse tray_now from AMS dict - this is the currently loaded tray global ID
  642. if "tray_now" in ams_data:
  643. raw_tray_now = ams_data["tray_now"]
  644. # Convert string to int if needed
  645. if isinstance(raw_tray_now, str):
  646. try:
  647. parsed_tray_now = int(raw_tray_now)
  648. except ValueError:
  649. parsed_tray_now = 255
  650. else:
  651. parsed_tray_now = raw_tray_now if raw_tray_now is not None else 255
  652. # H2D dual-nozzle printers report only slot number (0-3), not global tray ID
  653. # Use pending_tray_target from our load command tracking for disambiguation
  654. if parsed_tray_now >= 0 and parsed_tray_now <= 3:
  655. # Check if we have a pending target that matches this slot
  656. pending_target = self.state.pending_tray_target
  657. if pending_target is not None:
  658. pending_slot = pending_target % 4
  659. if pending_slot == parsed_tray_now:
  660. # Slot matches our pending target - use the full global ID
  661. logger.info(
  662. f"[{self.serial_number}] H2D tray_now disambiguation: "
  663. f"slot {parsed_tray_now} matches pending_tray_target {pending_target} -> using global ID {pending_target}"
  664. )
  665. self.state.tray_now = pending_target
  666. # Clear pending target now that load is confirmed
  667. self.state.pending_tray_target = None
  668. else:
  669. # Slot doesn't match our pending target - something changed, use slot as-is
  670. logger.warning(
  671. f"[{self.serial_number}] H2D tray_now: slot {parsed_tray_now} doesn't match "
  672. f"pending_tray_target {pending_target} (slot {pending_slot}) - using slot as global ID"
  673. )
  674. self.state.tray_now = parsed_tray_now
  675. # Clear pending target since it's stale
  676. self.state.pending_tray_target = None
  677. else:
  678. # No pending target - check if we already have a resolved global ID
  679. # that matches this slot (from a previous successful disambiguation)
  680. current_tray = self.state.tray_now
  681. if current_tray > 3 and current_tray != 255 and (current_tray % 4) == parsed_tray_now:
  682. # Current tray_now is already a valid global ID that matches this slot
  683. # Keep it (don't overwrite with raw slot number)
  684. logger.debug(
  685. f"[{self.serial_number}] H2D tray_now: keeping existing global ID {current_tray} "
  686. f"(matches incoming slot {parsed_tray_now})"
  687. )
  688. else:
  689. # No pending target and no valid existing global ID
  690. # For H2D with multiple AMS units, we can't reliably determine which AMS
  691. # the slot belongs to without a pending_tray_target from our load command.
  692. # Use slot number as-is - this may be incorrect for multi-AMS setups,
  693. # but it's better than guessing wrong based on unreliable heuristics.
  694. # The user can load filament via our API to get correct tracking.
  695. logger.warning(
  696. f"[{self.serial_number}] H2D tray_now: no pending target, "
  697. f"using slot {parsed_tray_now} as global ID (may be incorrect for multi-AMS)"
  698. )
  699. self.state.tray_now = parsed_tray_now
  700. else:
  701. # tray_now > 3 means it's already a global ID, or 255 means unloaded
  702. # Note: Do NOT clear pending_tray_target on tray_now=255 here.
  703. # During filament change, the printer sends 255 first (unload), then the slot.
  704. # We only clear pending_tray_target explicitly in ams_unload_filament().
  705. # Trust the printer's reported value.
  706. self.state.tray_now = parsed_tray_now
  707. logger.debug(f"[{self.serial_number}] tray_now updated: {self.state.tray_now}")
  708. # NOTE: ams_status is parsed BEFORE tray_now (see above) to ensure correct
  709. # state when checking filament change mode for H2D disambiguation
  710. elif isinstance(ams_data, list):
  711. ams_list = ams_data
  712. else:
  713. logger.warning(f"[{self.serial_number}] Unexpected AMS data format: {type(ams_data)}")
  714. return
  715. # Store AMS data in raw_data so it's accessible via API
  716. self.state.raw_data["ams"] = ams_list
  717. # Update timestamp for RFID refresh detection (frontend can detect "new data arrived")
  718. self.state.last_ams_update = time.time()
  719. logger.debug(f"[{self.serial_number}] Stored AMS data with {len(ams_list)} units")
  720. # Extract ams_extruder_map from each AMS unit's info field
  721. # According to OpenBambuAPI: info field bit 8 indicates which extruder (0=right, 1=left)
  722. # Log AMS unit fields once to discover available fields
  723. if not hasattr(self, "_ams_fields_logged") and ams_list:
  724. first_unit = ams_list[0]
  725. logger.info(f"[{self.serial_number}] AMS unit fields: {sorted(first_unit.keys())}")
  726. for ams_unit in ams_list:
  727. ams_id = ams_unit.get("id")
  728. unit_info = {k: v for k, v in ams_unit.items() if k != "tray"}
  729. logger.info(f"[{self.serial_number}] AMS {ams_id} data: {unit_info}")
  730. self._ams_fields_logged = True
  731. ams_extruder_map = {}
  732. for ams_unit in ams_list:
  733. ams_id = ams_unit.get("id")
  734. info = ams_unit.get("info")
  735. if ams_id is not None and info is not None:
  736. try:
  737. info_val = int(info) if isinstance(info, str) else info
  738. # Extract bit 8 for extruder assignment
  739. # Bit 8 = 0 means LEFT extruder (id 1), bit 8 = 1 means RIGHT extruder (id 0)
  740. # So we invert: extruder_id = 1 - bit8
  741. bit8 = (info_val >> 8) & 0x1
  742. extruder_id = 1 - bit8 # 0=right, 1=left
  743. ams_extruder_map[str(ams_id)] = extruder_id
  744. logger.debug(
  745. f"[{self.serial_number}] AMS {ams_id} info={info_val} (bit8={bit8}) -> extruder {extruder_id}"
  746. )
  747. except (ValueError, TypeError):
  748. pass
  749. if ams_extruder_map:
  750. self.state.raw_data["ams_extruder_map"] = ams_extruder_map
  751. self.state.ams_extruder_map = ams_extruder_map # Also set on state for inference logic
  752. logger.debug(f"[{self.serial_number}] ams_extruder_map: {ams_extruder_map}")
  753. # Create a hash of relevant AMS data to detect changes
  754. ams_hash_data = []
  755. for ams_unit in ams_list:
  756. for tray in ams_unit.get("tray", []):
  757. # Include fields that matter for filament tracking
  758. ams_hash_data.append(
  759. f"{ams_unit.get('id')}:{tray.get('id')}:"
  760. f"{tray.get('tray_type')}:{tray.get('tag_uid')}:{tray.get('remain')}"
  761. )
  762. ams_hash = hashlib.md5(":".join(ams_hash_data).encode()).hexdigest()
  763. # Only trigger callback if AMS data actually changed
  764. if ams_hash != self._previous_ams_hash:
  765. self._previous_ams_hash = ams_hash
  766. if self.on_ams_change:
  767. logger.info(f"[{self.serial_number}] AMS data changed, triggering sync callback")
  768. self.on_ams_change(ams_list)
  769. def _update_state(self, data: dict):
  770. """Update printer state from message data."""
  771. previous_state = self.state.state
  772. # Update state fields
  773. if "gcode_state" in data:
  774. self.state.state = data["gcode_state"]
  775. if "gcode_file" in data:
  776. self.state.gcode_file = data["gcode_file"]
  777. self.state.current_print = data["gcode_file"]
  778. if "subtask_name" in data:
  779. self.state.subtask_name = data["subtask_name"]
  780. # Prefer subtask_name as current_print if available
  781. if data["subtask_name"]:
  782. self.state.current_print = data["subtask_name"]
  783. if "subtask_id" in data:
  784. self.state.subtask_id = data["subtask_id"]
  785. if "mc_percent" in data:
  786. self.state.progress = float(data["mc_percent"])
  787. if "mc_remaining_time" in data:
  788. self.state.remaining_time = int(data["mc_remaining_time"])
  789. if "mc_print_sub_stage" in data:
  790. new_sub_stage = int(data["mc_print_sub_stage"])
  791. if new_sub_stage != self.state.mc_print_sub_stage:
  792. logger.debug(
  793. f"[{self.serial_number}] mc_print_sub_stage changed: "
  794. f"{self.state.mc_print_sub_stage} -> {new_sub_stage}"
  795. )
  796. self.state.mc_print_sub_stage = new_sub_stage
  797. if "layer_num" in data:
  798. self.state.layer_num = int(data["layer_num"])
  799. if "total_layer_num" in data:
  800. self.state.total_layers = int(data["total_layer_num"])
  801. # Calibration stage tracking
  802. if "stg_cur" in data:
  803. new_stg = data["stg_cur"]
  804. # Always log ANY stg_cur change for debugging filament operations
  805. if new_stg != self.state.stg_cur:
  806. logger.info(
  807. f"[{self.serial_number}] stg_cur changed: {self.state.stg_cur} -> {new_stg} ({get_stage_name(new_stg)})"
  808. )
  809. self.state.stg_cur = new_stg
  810. if "stg" in data:
  811. self.state.stg = data["stg"] if isinstance(data["stg"], list) else []
  812. # Temperature data
  813. temps = {}
  814. # Log all fields for debugging dual-nozzle temperature discovery (only once)
  815. if "bed_temper" in data and not hasattr(self, "_temp_fields_logged"):
  816. temp_fields = {k: v for k, v in data.items() if "temp" in k.lower() or "chamber" in k.lower()}
  817. logger.info(f"[{self.serial_number}] Temperature-related fields: {temp_fields}")
  818. # Log ALL keys in print data for H2D temperature discovery
  819. all_keys = sorted(data.keys())
  820. logger.info(f"[{self.serial_number}] ALL print data keys ({len(all_keys)}): {all_keys}")
  821. self._temp_fields_logged = True
  822. # Log vir_slot data (once) - this may contain per-extruder slot mapping for H2D
  823. if "vir_slot" in data and not hasattr(self, "_vir_slot_logged"):
  824. logger.info(f"[{self.serial_number}] vir_slot data: {data['vir_slot']}")
  825. self._vir_slot_logged = True
  826. # Log nozzle hardware info fields (once)
  827. nozzle_fields = {
  828. k: v
  829. for k, v in data.items()
  830. if "nozzle" in k.lower() or "hw" in k.lower() or "extruder" in k.lower() or "upgrade" in k.lower()
  831. }
  832. if nozzle_fields and not hasattr(self, "_nozzle_fields_logged"):
  833. logger.info(f"[{self.serial_number}] Nozzle/hardware fields in MQTT data: {nozzle_fields}")
  834. self._nozzle_fields_logged = True
  835. # Parse active extruder from device.extruder.state bit 8
  836. # bit 8 = 0 → RIGHT extruder (active_extruder=0)
  837. # bit 8 = 1 → LEFT extruder (active_extruder=1)
  838. if "device" in data and isinstance(data.get("device"), dict):
  839. device = data["device"]
  840. if "extruder" in device and "state" in device["extruder"]:
  841. state_val = device["extruder"]["state"]
  842. # Extract bit 8 for extruder position
  843. new_extruder = (state_val >> 8) & 0x1
  844. if new_extruder != self.state.active_extruder:
  845. logger.info(
  846. f"[{self.serial_number}] ACTIVE EXTRUDER CHANGED (state bit 8): {self.state.active_extruder} -> {new_extruder} (0=right, 1=left) [state={state_val}]"
  847. )
  848. self.state.active_extruder = new_extruder
  849. # Log device.extruder structure for active extruder
  850. if "device" in data and isinstance(data.get("device"), dict):
  851. device = data["device"]
  852. if "extruder" in device:
  853. ext_data = device["extruder"]
  854. # Log 'state' field - OrcaSlicer uses bits 12-14 for switch state
  855. if "state" in ext_data:
  856. state_val = ext_data["state"]
  857. # Extract bits 12-14 (3 bits) for switch state
  858. switch_state = (state_val >> 12) & 0x7
  859. logger.info(
  860. f"[{self.serial_number}] device.extruder.state={state_val} (switch_state bits 12-14: {switch_state})"
  861. )
  862. # Log 'cur' field if present (might indicate current/active extruder)
  863. if "cur" in ext_data:
  864. logger.info(f"[{self.serial_number}] device.extruder.cur: {ext_data['cur']}")
  865. if "bed_temper" in data:
  866. temps["bed"] = float(data["bed_temper"])
  867. if "bed_target_temper" in data:
  868. temps["bed_target"] = float(data["bed_target_temper"])
  869. # Check if this is H2D (has device.extruder.info with 2 extruders)
  870. has_h2d_extruder_info = (
  871. "device" in data
  872. and isinstance(data.get("device"), dict)
  873. and "extruder" in data["device"]
  874. and isinstance(data["device"]["extruder"].get("info"), list)
  875. and len(data["device"]["extruder"]["info"]) >= 2
  876. )
  877. # Standard nozzle fields: these are for the RIGHT/default nozzle on H2D
  878. # For H2D, we use these for nozzle_2 (RIGHT), for others use as nozzle (primary)
  879. # NOTE: On H2D, nozzle_temper seems to mirror left nozzle - we override with extruder_info[0] later
  880. if "nozzle_temper" in data:
  881. if has_h2d_extruder_info:
  882. temps["nozzle_2"] = float(data["nozzle_temper"]) # Will be overridden by extruder_info[0]
  883. else:
  884. temps["nozzle"] = float(data["nozzle_temper"])
  885. if "nozzle_target_temper" in data:
  886. if has_h2d_extruder_info:
  887. temps["nozzle_2_target"] = float(data["nozzle_target_temper"]) # RIGHT target on H2D
  888. else:
  889. temps["nozzle_target"] = float(data["nozzle_target_temper"])
  890. # Second nozzle for dual-extruder printers - skip for H2D (uses device.extruder.info instead)
  891. if not has_h2d_extruder_info:
  892. # Try multiple possible field names used by different firmware versions
  893. if "nozzle_temper_2" in data:
  894. val = float(data["nozzle_temper_2"])
  895. if -50 < val < 500: # Valid temp range
  896. temps["nozzle_2"] = val
  897. else:
  898. logger.debug(f"[{self.serial_number}] nozzle_temper_2={val} out of range")
  899. elif "right_nozzle_temper" in data:
  900. val = float(data["right_nozzle_temper"])
  901. if -50 < val < 500: # Valid temp range
  902. temps["nozzle_2"] = val
  903. else:
  904. logger.debug(f"[{self.serial_number}] right_nozzle_temper={val} out of range")
  905. if "nozzle_target_temper_2" in data:
  906. val = float(data["nozzle_target_temper_2"])
  907. if 0 <= val < 500: # Valid temp range
  908. temps["nozzle_2_target"] = val
  909. else:
  910. logger.debug(f"[{self.serial_number}] nozzle_target_temper_2={val} out of range")
  911. elif "right_nozzle_target_temper" in data:
  912. val = float(data["right_nozzle_target_temper"])
  913. if 0 <= val < 500: # Valid temp range
  914. temps["nozzle_2_target"] = val
  915. else:
  916. logger.debug(f"[{self.serial_number}] right_nozzle_target_temper={val} out of range")
  917. # Also check for left nozzle as primary (some H2 models)
  918. if "left_nozzle_temper" in data and "nozzle" not in temps:
  919. temps["nozzle"] = float(data["left_nozzle_temper"])
  920. if "left_nozzle_target_temper" in data and "nozzle_target" not in temps:
  921. temps["nozzle_target"] = float(data["left_nozzle_target_temper"])
  922. if "chamber_temper" in data:
  923. chamber_val = float(data["chamber_temper"])
  924. logger.debug(f"[{self.serial_number}] chamber_temper raw value: {chamber_val}")
  925. # Check if we recently set the target locally (within 5 seconds)
  926. local_set_time = self.state.temperatures.get("_chamber_target_set_time", 0)
  927. respect_local = (time.time() - local_set_time) < 5.0
  928. # H2D protocol: chamber_temper encoding indicates heater state
  929. # - When > 500: encoded as (target * 65536 + current) - heater is ON
  930. # - When < 500: direct Celsius current temp only - heater is OFF
  931. if -50 < chamber_val < 100:
  932. # Direct value = heater is OFF
  933. temps["chamber"] = chamber_val
  934. if not respect_local:
  935. temps["chamber_target"] = 0.0 # Heater off means target = 0
  936. logger.debug(f"[{self.serial_number}] chamber_temper direct value: {chamber_val}°C (heater OFF)")
  937. else:
  938. logger.debug(f"[{self.serial_number}] chamber_temper {chamber_val} out of direct range")
  939. # Try to decode if it looks like an encoded value
  940. if chamber_val > 500:
  941. mqtt_target = int(chamber_val) // 65536
  942. current = int(chamber_val) % 65536
  943. logger.debug(
  944. f"[{self.serial_number}] chamber_temper decoded: mqtt_target={mqtt_target}, current={current}, respect_local={respect_local}"
  945. )
  946. if -50 < current < 100:
  947. temps["chamber"] = float(current)
  948. # Store decoded target for later use, but DON'T set chamber_heating here!
  949. # Heating state will be calculated later after parsing ctc.info.target (explicit target)
  950. # which is the authoritative source the slicer uses.
  951. if not respect_local:
  952. if 0 <= mqtt_target <= 60:
  953. # Store as "decoded" target - may be overridden by explicit target fields
  954. temps["_chamber_decoded_target"] = float(mqtt_target)
  955. # Chamber target temperature (set by print file or display)
  956. if "mc_target_cham" in data:
  957. mc_target = float(data["mc_target_cham"])
  958. logger.debug(f"[{self.serial_number}] mc_target_cham raw value: {mc_target}")
  959. # Filter out encoded/invalid values - valid chamber target is 0-60°C
  960. if 0 <= mc_target <= 60:
  961. temps["chamber_target"] = mc_target
  962. # H2D series: Chamber temp is in info.temp (may be encoded or direct °C)
  963. # NOTE: Don't set chamber_heating here - let ctc.info.target or fallback logic handle it
  964. # The encoded target in info.temp may be stale (slicer uses ctc.info.target as source of truth)
  965. try:
  966. if "info" in data and isinstance(data["info"], dict):
  967. info_temp = data["info"].get("temp")
  968. if info_temp is not None and "chamber" not in temps:
  969. # Check for encoded value (target * 65536 + current)
  970. if info_temp > 500:
  971. # Decode: extract current temperature and target
  972. target = info_temp // 65536
  973. current = info_temp % 65536
  974. temps["chamber"] = float(current)
  975. # Store decoded target as fallback (may be overridden by ctc.info.target)
  976. if "_chamber_decoded_target" not in temps:
  977. temps["_chamber_decoded_target"] = float(target)
  978. logger.debug(
  979. f"[{self.serial_number}] info.temp encoded: {info_temp} -> current={current}, decoded_target={target}"
  980. )
  981. elif -50 < info_temp < 100:
  982. # Valid direct temperature - heater is OFF
  983. temps["chamber"] = float(info_temp)
  984. temps["chamber_target"] = 0.0 # Direct value means heater off
  985. logger.debug(f"[{self.serial_number}] info.temp direct: {info_temp}°C (heater OFF)")
  986. # H2D series: Dual extruder temps are in device.extruder.info array
  987. # Temperature values are encoded as fixed-point (value / 65536 = °C)
  988. if "device" in data and isinstance(data["device"], dict):
  989. device = data["device"]
  990. # Parse dual extruder temperatures
  991. extruder_data = device.get("extruder", {})
  992. extruder_info = extruder_data.get("info", [])
  993. if isinstance(extruder_info, list) and len(extruder_info) >= 1:
  994. # H2D nozzle mapping: id=0 is RIGHT nozzle (default), id=1 is LEFT nozzle
  995. # Only parse dual nozzle temps if this is actually a dual nozzle printer (H2D)
  996. # has_h2d_extruder_info requires len(extruder_info) >= 2
  997. if has_h2d_extruder_info:
  998. # Right nozzle (extruder 0) - use extruder_info for actual temp, not nozzle_temper
  999. # nozzle_temper field seems to mirror left nozzle on H2D, so use extruder_info[0]
  1000. if "temp" in extruder_info[0]:
  1001. temp_val = extruder_info[0]["temp"]
  1002. if temp_val > 500:
  1003. # Encoded format: temp = target * 65536 + current
  1004. target = temp_val // 65536
  1005. current = temp_val % 65536
  1006. if -50 < current < 500:
  1007. temps["nozzle_2"] = float(current)
  1008. if 0 < target < 500:
  1009. temps["nozzle_2_target"] = float(target)
  1010. temps["nozzle_2_heating"] = target > 0 and current < target
  1011. elif -50 < temp_val < 500:
  1012. # Direct Celsius value = heater is OFF
  1013. temps["nozzle_2"] = float(temp_val)
  1014. temps["nozzle_2_target"] = 0.0
  1015. temps["nozzle_2_heating"] = False
  1016. # Left nozzle (extruder 1) - only for dual nozzle printers
  1017. # H2D protocol: temp field encoding depends on value
  1018. # - When > 500: encoded as (target * 65536 + current) - heater is ON
  1019. # - When < 500: direct Celsius current temp only - heater is OFF
  1020. if len(extruder_info) >= 2 and "temp" in extruder_info[1]:
  1021. ext1 = extruder_info[1]
  1022. temp_val = ext1["temp"]
  1023. # Check if we recently set the target locally (within 5 seconds)
  1024. # If so, don't let MQTT data overwrite it
  1025. local_set_time = self.state.temperatures.get("_nozzle_target_set_time", 0)
  1026. respect_local_target = (time.time() - local_set_time) < 5.0
  1027. if temp_val > 500:
  1028. # Encoded format: temp = target * 65536 + current
  1029. target = temp_val // 65536
  1030. current = temp_val % 65536
  1031. if 0 < target < 500 and not respect_local_target:
  1032. temps["nozzle_target"] = float(target)
  1033. if -50 < current < 500:
  1034. temps["nozzle"] = float(current)
  1035. # Heating = encoded AND we're using the MQTT target (not local override)
  1036. # If local target is being respected, use local target to determine heating
  1037. if respect_local_target:
  1038. local_target = self.state.temperatures.get("nozzle_target", 0)
  1039. temps["nozzle_heating"] = local_target > 0 and current < local_target
  1040. else:
  1041. temps["nozzle_heating"] = target > 0 and current < target
  1042. elif -50 < temp_val < 500:
  1043. # Direct Celsius = heater is OFF (or at target with heater off)
  1044. temps["nozzle"] = float(temp_val)
  1045. if not respect_local_target:
  1046. temps["nozzle_target"] = 0.0
  1047. temps["nozzle_heating"] = False # Direct = not heating
  1048. # Parse bed heating state from device.bed.info.temp encoding
  1049. # temp > 500 means encoded (target*65536+current), heating = target > 0 AND current < target
  1050. bed_data = device.get("bed", {})
  1051. bed_info = bed_data.get("info", {})
  1052. if "temp" in bed_info:
  1053. temp_val = bed_info["temp"]
  1054. if temp_val > 500:
  1055. target = temp_val // 65536
  1056. current = temp_val % 65536
  1057. temps["bed_heating"] = target > 0 and current < target
  1058. else:
  1059. temps["bed_heating"] = False
  1060. # Parse chamber temp from device.ctc.info.temp if not already set
  1061. ctc_data = device.get("ctc", {})
  1062. ctc_info = ctc_data.get("info", {})
  1063. # Parse airduct mode (0=cooling, 1=heating)
  1064. airduct_data = device.get("airduct", {})
  1065. if "modeCur" in airduct_data:
  1066. new_mode = airduct_data["modeCur"]
  1067. if new_mode != self.state.airduct_mode:
  1068. logger.info(
  1069. f"[{self.serial_number}] airduct_mode changed: {self.state.airduct_mode} -> {new_mode}"
  1070. )
  1071. self.state.airduct_mode = new_mode
  1072. # Parse chamber temp - may be encoded as (target*65536+current) when > 500
  1073. # Check if we recently set the target locally (within 5 seconds)
  1074. local_set_time = self.state.temperatures.get("_chamber_target_set_time", 0)
  1075. respect_local_target = (time.time() - local_set_time) < 5.0
  1076. # Log ctc_info contents for debugging
  1077. if ctc_info:
  1078. logger.debug(f"[{self.serial_number}] ctc_info keys: {list(ctc_info.keys())}")
  1079. # FIRST: Parse explicit ctc.info.target if available - this is the authoritative target
  1080. # (what the slicer shows). This OVERRIDES any previously decoded target.
  1081. explicit_target = None
  1082. if "target" in ctc_info:
  1083. target_val = ctc_info["target"]
  1084. logger.debug(
  1085. f"[{self.serial_number}] ctc_info.target explicit value: {target_val}, respect_local={respect_local_target}"
  1086. )
  1087. # Filter out invalid values (valid chamber target is 0-60°C)
  1088. if 0 <= target_val <= 60 and not respect_local_target:
  1089. explicit_target = float(target_val)
  1090. temps["chamber_target"] = explicit_target # Override any previous value
  1091. logger.debug(
  1092. f"[{self.serial_number}] Setting chamber_target from ctc_info.target: {explicit_target}"
  1093. )
  1094. # Parse chamber temp from ctc.info.temp - may be encoded
  1095. if "temp" in ctc_info and "chamber" not in temps:
  1096. temp_val = ctc_info["temp"]
  1097. logger.debug(f"[{self.serial_number}] ctc_info.temp raw value: {temp_val}")
  1098. if temp_val > 500:
  1099. # Encoded value: decode target and current
  1100. decoded_target = temp_val // 65536
  1101. current = temp_val % 65536
  1102. temps["chamber"] = float(current)
  1103. logger.debug(
  1104. f"[{self.serial_number}] ctc_info.temp decoded: target={decoded_target}, current={current}, explicit_target={explicit_target}"
  1105. )
  1106. # Determine which target to use for heating state:
  1107. # Priority: local target > explicit target > decoded target
  1108. if respect_local_target:
  1109. local_target = self.state.temperatures.get("chamber_target", 0)
  1110. temps["chamber_heating"] = local_target > 0 and current < local_target
  1111. elif explicit_target is not None:
  1112. # Use explicit ctc.info.target - this is what slicer sees
  1113. temps["chamber_heating"] = explicit_target > 0 and current < explicit_target
  1114. else:
  1115. # Fallback to decoded target only if no explicit target available
  1116. if not respect_local_target and "chamber_target" not in temps:
  1117. temps["chamber_target"] = float(decoded_target)
  1118. temps["chamber_heating"] = decoded_target > 0 and current < decoded_target
  1119. else:
  1120. # Direct value (not encoded) - heater is OFF
  1121. temps["chamber"] = float(temp_val)
  1122. temps["chamber_heating"] = False
  1123. except Exception as e:
  1124. logger.warning(f"[{self.serial_number}] Error parsing H2D temperatures: {e}")
  1125. if temps:
  1126. # Handle chamber_target: prefer explicit over decoded
  1127. if "_chamber_decoded_target" in temps and "chamber_target" not in temps:
  1128. # No explicit target available, use decoded target from chamber_temper
  1129. temps["chamber_target"] = temps["_chamber_decoded_target"]
  1130. # Remove internal temp key before merging
  1131. temps.pop("_chamber_decoded_target", None)
  1132. # Merge new temps into existing, preserving valid values when new ones are filtered out
  1133. for key, value in temps.items():
  1134. self.state.temperatures[key] = value
  1135. # Calculate chamber_heating after all targets are known
  1136. # Priority: local target (if recent) > explicit target (chamber_target) > 0
  1137. if "chamber" in temps and "chamber_heating" not in temps:
  1138. current = self.state.temperatures.get("chamber", 0)
  1139. local_set_time = self.state.temperatures.get("_chamber_target_set_time", 0)
  1140. respect_local = (time.time() - local_set_time) < 5.0
  1141. if respect_local:
  1142. # Use locally-set target
  1143. target = self.state.temperatures.get("chamber_target", 0)
  1144. else:
  1145. # Use explicit/decoded target from MQTT
  1146. target = self.state.temperatures.get("chamber_target", 0)
  1147. self.state.temperatures["chamber_heating"] = target > 0 and current < target
  1148. logger.debug(
  1149. f"[{self.serial_number}] Chamber heating calculated: target={target}, current={current}, heating={self.state.temperatures['chamber_heating']}, respect_local={respect_local}"
  1150. )
  1151. # Debug: log chamber value if it was updated
  1152. if "chamber" in temps:
  1153. logger.debug(
  1154. f"[{self.serial_number}] Chamber temp updated to: {self.state.temperatures.get('chamber')}, target: {self.state.temperatures.get('chamber_target')}, heating: {self.state.temperatures.get('chamber_heating')}"
  1155. )
  1156. # Calculate nozzle_heating for single nozzle printers (not set by H2D parsing)
  1157. # For H2D, nozzle_heating is set in temps dict; for single nozzle, calculate here
  1158. if "nozzle" in temps and "nozzle_heating" not in temps:
  1159. current = self.state.temperatures.get("nozzle", 0)
  1160. target = self.state.temperatures.get("nozzle_target", 0)
  1161. self.state.temperatures["nozzle_heating"] = target > 0 and current < target
  1162. # Parse HMS (Health Management System) errors
  1163. if "hms" in data:
  1164. hms_list = data["hms"]
  1165. logger.info(f"[{self.serial_number}] HMS data received: {hms_list}")
  1166. self.state.hms_errors = []
  1167. if isinstance(hms_list, list):
  1168. for hms in hms_list:
  1169. if isinstance(hms, dict):
  1170. # HMS format: {"attr": attribute_code, "code": error_code}
  1171. # attr contains module/severity info, code contains error number
  1172. # Both are needed to construct the wiki URL
  1173. attr = hms.get("attr", 0)
  1174. code = hms.get("code", 0)
  1175. if isinstance(attr, str):
  1176. attr = int(attr.replace("0x", ""), 16) if attr else 0
  1177. if isinstance(code, str):
  1178. code = int(code.replace("0x", ""), 16) if code else 0
  1179. # Severity is in attr byte 1 (bits 8-15)
  1180. severity = (attr >> 8) & 0xF
  1181. # Module is in attr byte 3 (bits 24-31)
  1182. module = (attr >> 24) & 0xFF
  1183. self.state.hms_errors.append(
  1184. HMSError(
  1185. code=f"0x{code:x}" if code else "0x0",
  1186. attr=attr,
  1187. module=module,
  1188. severity=severity if severity > 0 else 2,
  1189. )
  1190. )
  1191. # Parse print_error - this is a different error format than HMS
  1192. # print_error is a 32-bit integer where:
  1193. # - High 16 bits contain module info (e.g., 0x0500)
  1194. # - Low 16 bits contain error code (e.g., 0x8061)
  1195. # Format on printer screen: [0500-8061] -> short code: 0500_8061
  1196. if "print_error" in data:
  1197. print_error = data["print_error"]
  1198. if print_error and print_error != 0:
  1199. # Extract components: MMMMEEEE -> MMMM_EEEE
  1200. module = (print_error >> 16) & 0xFFFF # High 16 bits (e.g., 0x0500)
  1201. error = print_error & 0xFFFF # Low 16 bits (e.g., 0x8061)
  1202. # Store in a format that matches the community error database
  1203. # attr stores the full 32-bit value for reconstruction
  1204. # code stores the short format string for lookup
  1205. short_code = f"{module:04X}_{error:04X}"
  1206. logger.info(
  1207. f"[{self.serial_number}] print_error: {print_error} (0x{print_error:08x}) -> short_code={short_code}"
  1208. )
  1209. # Only add if not already in HMS errors (avoid duplicates)
  1210. existing_short_codes = set()
  1211. for e in self.state.hms_errors:
  1212. # Extract short code from existing errors
  1213. e_module = (e.attr >> 16) & 0xFFFF
  1214. e_error = int(e.code.replace("0x", ""), 16) if e.code else 0
  1215. existing_short_codes.add(f"{e_module:04X}_{e_error:04X}")
  1216. if short_code not in existing_short_codes:
  1217. self.state.hms_errors.append(
  1218. HMSError(
  1219. code=f"0x{error:x}",
  1220. attr=print_error, # Store full value for display
  1221. module=module >> 8, # High byte of module (e.g., 0x05)
  1222. severity=3, # Warning level for print_error
  1223. )
  1224. )
  1225. # Parse SD card status
  1226. if "sdcard" in data:
  1227. self.state.sdcard = data["sdcard"] is True
  1228. # Parse home_flag for "Store Sent Files on External Storage" setting (bit 11)
  1229. if "home_flag" in data:
  1230. home_flag = data["home_flag"]
  1231. # Bit 11 controls "Store Sent Files on External Storage"
  1232. # Convert to unsigned 32-bit if negative
  1233. if home_flag < 0:
  1234. home_flag = home_flag & 0xFFFFFFFF
  1235. store_to_sdcard = bool((home_flag >> 11) & 1)
  1236. if store_to_sdcard != self.state.store_to_sdcard:
  1237. logger.info(
  1238. f"[{self.serial_number}] store_to_sdcard changed: {self.state.store_to_sdcard} -> {store_to_sdcard}"
  1239. )
  1240. self.state.store_to_sdcard = store_to_sdcard
  1241. # Parse timelapse status (recording active during print)
  1242. if "timelapse" in data:
  1243. logger.debug(f"[{self.serial_number}] timelapse field: {data['timelapse']}")
  1244. self.state.timelapse = data["timelapse"] is True
  1245. # Track if timelapse was ever active during this print
  1246. if self.state.timelapse and self._was_running:
  1247. self._timelapse_during_print = True
  1248. # Parse ipcam/live view status
  1249. if "ipcam" in data:
  1250. ipcam_data = data["ipcam"]
  1251. logger.debug(f"[{self.serial_number}] ipcam field: {ipcam_data}")
  1252. if isinstance(ipcam_data, dict):
  1253. # Check ipcam_record field for live view status
  1254. self.state.ipcam = ipcam_data.get("ipcam_record") == "enable"
  1255. # Check timelapse field (H2D sends it here, not in xcam)
  1256. if "timelapse" in ipcam_data:
  1257. timelapse_enabled = ipcam_data.get("timelapse") == "enable"
  1258. if timelapse_enabled != self.state.timelapse:
  1259. logger.info(
  1260. f"[{self.serial_number}] timelapse changed (from ipcam): {self.state.timelapse} -> {timelapse_enabled}"
  1261. )
  1262. self.state.timelapse = timelapse_enabled
  1263. # Track if timelapse was ever active during this print
  1264. if self.state.timelapse and self._was_running:
  1265. self._timelapse_during_print = True
  1266. logger.info(f"[{self.serial_number}] Timelapse detected during print (from ipcam)")
  1267. else:
  1268. self.state.ipcam = ipcam_data is True
  1269. # Parse WiFi signal strength (dBm)
  1270. if "wifi_signal" in data:
  1271. wifi_signal = data["wifi_signal"]
  1272. logger.info(f"[{self.serial_number}] wifi_signal received: {wifi_signal}")
  1273. if isinstance(wifi_signal, (int, float)):
  1274. self.state.wifi_signal = int(wifi_signal)
  1275. elif isinstance(wifi_signal, str):
  1276. # Handle string format like "-52dBm"
  1277. try:
  1278. self.state.wifi_signal = int(wifi_signal.replace("dBm", "").strip())
  1279. except ValueError:
  1280. pass
  1281. # Parse print speed level (1=silent, 2=standard, 3=sport, 4=ludicrous)
  1282. if "spd_lvl" in data:
  1283. new_speed = data["spd_lvl"]
  1284. if new_speed != self.state.speed_level:
  1285. logger.info(f"[{self.serial_number}] speed_level changed: {self.state.speed_level} -> {new_speed}")
  1286. self.state.speed_level = new_speed
  1287. # Parse chamber light status from lights_report
  1288. if "lights_report" in data:
  1289. lights = data["lights_report"]
  1290. logger.debug(f"[{self.serial_number}] lights_report: {lights}")
  1291. if isinstance(lights, list):
  1292. for light in lights:
  1293. if isinstance(light, dict) and light.get("node") == "chamber_light":
  1294. new_light_state = light.get("mode") == "on"
  1295. if new_light_state != self.state.chamber_light:
  1296. logger.info(
  1297. f"[{self.serial_number}] chamber_light changed: {self.state.chamber_light} -> {new_light_state}"
  1298. )
  1299. self.state.chamber_light = new_light_state
  1300. break
  1301. # Parse nozzle hardware info (single nozzle printers)
  1302. if "nozzle_type" in data:
  1303. self.state.nozzles[0].nozzle_type = str(data["nozzle_type"])
  1304. if "nozzle_diameter" in data:
  1305. self.state.nozzles[0].nozzle_diameter = str(data["nozzle_diameter"])
  1306. # Parse nozzle hardware info (dual nozzle printers - H2D series)
  1307. # Left nozzle
  1308. if "left_nozzle_type" in data:
  1309. self.state.nozzles[0].nozzle_type = str(data["left_nozzle_type"])
  1310. if "left_nozzle_diameter" in data:
  1311. self.state.nozzles[0].nozzle_diameter = str(data["left_nozzle_diameter"])
  1312. # Right nozzle
  1313. if "right_nozzle_type" in data:
  1314. self.state.nozzles[1].nozzle_type = str(data["right_nozzle_type"])
  1315. if "right_nozzle_diameter" in data:
  1316. self.state.nozzles[1].nozzle_diameter = str(data["right_nozzle_diameter"])
  1317. # Alternative format for dual nozzle (nozzle_type_2, etc.)
  1318. if "nozzle_type_2" in data:
  1319. self.state.nozzles[1].nozzle_type = str(data["nozzle_type_2"])
  1320. if "nozzle_diameter_2" in data:
  1321. self.state.nozzles[1].nozzle_diameter = str(data["nozzle_diameter_2"])
  1322. # H2D series: Nozzle hardware info is in device.nozzle.info array
  1323. if "device" in data and isinstance(data["device"], dict):
  1324. device = data["device"]
  1325. nozzle_data = device.get("nozzle", {})
  1326. nozzle_info = nozzle_data.get("info", [])
  1327. if isinstance(nozzle_info, list):
  1328. for nozzle in nozzle_info:
  1329. idx = nozzle.get("id", 0)
  1330. if idx < len(self.state.nozzles):
  1331. if "type" in nozzle and nozzle["type"]:
  1332. self.state.nozzles[idx].nozzle_type = str(nozzle["type"])
  1333. if "diameter" in nozzle:
  1334. self.state.nozzles[idx].nozzle_diameter = str(nozzle["diameter"])
  1335. # Preserve AMS, vt_tray, and ams_extruder_map data when updating raw_data
  1336. ams_data = self.state.raw_data.get("ams")
  1337. vt_tray_data = self.state.raw_data.get("vt_tray")
  1338. ams_extruder_map_data = self.state.raw_data.get("ams_extruder_map")
  1339. self.state.raw_data = data
  1340. if ams_data is not None:
  1341. self.state.raw_data["ams"] = ams_data
  1342. if vt_tray_data is not None:
  1343. self.state.raw_data["vt_tray"] = vt_tray_data
  1344. if ams_extruder_map_data is not None:
  1345. self.state.raw_data["ams_extruder_map"] = ams_extruder_map_data
  1346. # Log state transitions for debugging
  1347. if "gcode_state" in data:
  1348. logger.debug(
  1349. f"[{self.serial_number}] gcode_state: {self._previous_gcode_state} -> {self.state.state}, "
  1350. f"file: {self.state.gcode_file}, subtask: {self.state.subtask_name}"
  1351. )
  1352. # Detect print start (state changes TO RUNNING with a file)
  1353. current_file = self.state.gcode_file or self.state.current_print
  1354. is_new_print = (
  1355. self.state.state == "RUNNING"
  1356. and self._previous_gcode_state != "RUNNING"
  1357. and current_file
  1358. and not self._was_running # Prevent duplicates when resuming from PAUSE
  1359. )
  1360. # Also detect if file changed while running (new print started)
  1361. is_file_change = (
  1362. self.state.state == "RUNNING"
  1363. and current_file
  1364. and current_file != self._previous_gcode_file
  1365. and self._previous_gcode_file is not None
  1366. )
  1367. # Track RUNNING state for more robust completion detection
  1368. if self.state.state == "RUNNING" and current_file:
  1369. if not self._was_running:
  1370. logger.info(f"[{self.serial_number}] Now tracking RUNNING state for {current_file}")
  1371. # Check if timelapse was enabled in the same message (xcam parsed before this)
  1372. if self.state.timelapse:
  1373. self._timelapse_during_print = True
  1374. logger.info(f"[{self.serial_number}] Timelapse detected when entering RUNNING state")
  1375. self._was_running = True
  1376. self._completion_triggered = False
  1377. if is_new_print or is_file_change:
  1378. # Clear any old HMS errors when a new print starts
  1379. self.state.hms_errors = []
  1380. # Reset completion tracking for new print
  1381. self._was_running = True
  1382. self._completion_triggered = False
  1383. # Initialize timelapse tracking based on current state
  1384. # NOTE: xcam data is parsed BEFORE this code runs in _process_message,
  1385. # so self.state.timelapse may already be set from this message.
  1386. # We preserve that value instead of blindly resetting to False.
  1387. if self.state.timelapse:
  1388. self._timelapse_during_print = True
  1389. logger.info(f"[{self.serial_number}] Timelapse detected at print start")
  1390. else:
  1391. self._timelapse_during_print = False
  1392. if (is_new_print or is_file_change) and self.on_print_start:
  1393. logger.info(
  1394. f"[{self.serial_number}] PRINT START detected - file: {current_file}, "
  1395. f"subtask: {self.state.subtask_name}, is_new: {is_new_print}, is_file_change: {is_file_change}"
  1396. )
  1397. self.on_print_start(
  1398. {
  1399. "filename": current_file,
  1400. "subtask_name": self.state.subtask_name,
  1401. "remaining_time": self.state.remaining_time * 60
  1402. if self.state.remaining_time > 0
  1403. else None, # Convert minutes to seconds
  1404. "raw_data": data,
  1405. }
  1406. )
  1407. # Detect print completion (FINISH = success, FAILED = error, IDLE = aborted)
  1408. # Use _was_running flag in addition to _previous_gcode_state for more robust detection
  1409. # This handles cases where server restarts during a print
  1410. should_trigger_completion = (
  1411. self.state.state in ("FINISH", "FAILED")
  1412. and not self._completion_triggered
  1413. and self.on_print_complete
  1414. and (
  1415. self._previous_gcode_state == "RUNNING" # Normal transition
  1416. or (self._was_running and self._previous_gcode_state != self.state.state) # After server restart
  1417. )
  1418. )
  1419. # For IDLE, only trigger if we just came from RUNNING (explicit abort/cancel)
  1420. if (
  1421. self.state.state == "IDLE"
  1422. and self._previous_gcode_state == "RUNNING"
  1423. and not self._completion_triggered
  1424. and self.on_print_complete
  1425. ):
  1426. should_trigger_completion = True
  1427. if should_trigger_completion:
  1428. if self.state.state == "FINISH":
  1429. status = "completed"
  1430. elif self.state.state == "FAILED":
  1431. status = "failed"
  1432. else:
  1433. status = "aborted"
  1434. logger.info(
  1435. f"[{self.serial_number}] PRINT COMPLETE detected - state: {self.state.state}, "
  1436. f"status: {status}, file: {self._previous_gcode_file or current_file}, "
  1437. f"subtask: {self.state.subtask_name}, was_running: {self._was_running}, "
  1438. f"timelapse_during_print: {self._timelapse_during_print}"
  1439. )
  1440. timelapse_was_active = self._timelapse_during_print
  1441. self._completion_triggered = True
  1442. self._was_running = False
  1443. self._timelapse_during_print = False # Reset for next print
  1444. # Include HMS errors for failure reason detection
  1445. hms_errors_data = (
  1446. [
  1447. {"code": e.code, "attr": e.attr, "module": e.module, "severity": e.severity}
  1448. for e in self.state.hms_errors
  1449. ]
  1450. if self.state.hms_errors
  1451. else []
  1452. )
  1453. self.on_print_complete(
  1454. {
  1455. "status": status,
  1456. "filename": self._previous_gcode_file or current_file,
  1457. "subtask_name": self.state.subtask_name,
  1458. "raw_data": data,
  1459. "timelapse_was_active": timelapse_was_active,
  1460. "hms_errors": hms_errors_data,
  1461. }
  1462. )
  1463. self._previous_gcode_state = self.state.state
  1464. if current_file:
  1465. self._previous_gcode_file = current_file
  1466. if self.on_state_change:
  1467. self.on_state_change(self.state)
  1468. def _request_push_all(self):
  1469. """Request full status update from printer."""
  1470. if self._client:
  1471. message = {"pushing": {"command": "pushall"}}
  1472. self._client.publish(self.topic_publish, json.dumps(message), qos=1)
  1473. def request_status_update(self) -> bool:
  1474. """Request a full status update from the printer (public API).
  1475. Sends both pushall and get_accessories commands to refresh all data
  1476. including nozzle hardware info.
  1477. Returns:
  1478. True if the request was sent, False if not connected.
  1479. """
  1480. if not self._client or not self.state.connected:
  1481. return False
  1482. self._request_push_all()
  1483. # Note: get_accessories returns stale nozzle data on H2D.
  1484. # The correct nozzle data comes from push_status response.
  1485. return True
  1486. def _request_accessories(self):
  1487. """Request accessories info (nozzle type, etc.) from printer."""
  1488. if self._client:
  1489. self._sequence_id += 1
  1490. message = {
  1491. "system": {
  1492. "sequence_id": str(self._sequence_id),
  1493. "command": "get_accessories",
  1494. "accessory_type": "none",
  1495. }
  1496. }
  1497. logger.debug(f"[{self.serial_number}] Requesting accessories info")
  1498. self._client.publish(self.topic_publish, json.dumps(message), qos=1)
  1499. def _prime_kprofile_request(self):
  1500. """Send a priming K-profile request on connect.
  1501. Bambu printers often ignore the first K-profile request after connection,
  1502. so we send a dummy request on connect to 'prime' the system.
  1503. """
  1504. if self._client:
  1505. self._sequence_id += 1
  1506. command = {
  1507. "print": {
  1508. "command": "extrusion_cali_get",
  1509. "filament_id": "",
  1510. "nozzle_diameter": "0.4",
  1511. "sequence_id": str(self._sequence_id),
  1512. }
  1513. }
  1514. logger.debug(f"[{self.serial_number}] Sending K-profile priming request")
  1515. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  1516. def connect(self, loop: asyncio.AbstractEventLoop | None = None):
  1517. """Connect to the printer MQTT broker.
  1518. Args:
  1519. loop: The asyncio event loop to use for thread-safe callbacks.
  1520. If not provided, will try to get the running loop.
  1521. """
  1522. self._loop = loop
  1523. self._client = mqtt.Client(
  1524. callback_api_version=mqtt.CallbackAPIVersion.VERSION2,
  1525. client_id=f"bambuddy_{self.serial_number}",
  1526. protocol=mqtt.MQTTv311,
  1527. )
  1528. self._client.username_pw_set("bblp", self.access_code)
  1529. self._client.on_connect = self._on_connect
  1530. self._client.on_disconnect = self._on_disconnect
  1531. self._client.on_message = self._on_message
  1532. # TLS setup - Bambu uses self-signed certs
  1533. ssl_context = ssl.create_default_context()
  1534. ssl_context.check_hostname = False
  1535. ssl_context.verify_mode = ssl.CERT_NONE
  1536. self._client.tls_set_context(ssl_context)
  1537. # Use shorter keepalive (15s) for faster disconnect detection
  1538. # Paho considers connection lost after 1.5x keepalive with no response
  1539. self._client.connect_async(self.ip_address, self.MQTT_PORT, keepalive=15)
  1540. self._client.loop_start()
  1541. def start_print(self, filename: str, plate_id: int = 1):
  1542. """Start a print job on the printer.
  1543. The file should already be uploaded to /cache/ on the printer via FTP.
  1544. """
  1545. if self._client and self.state.connected:
  1546. # Bambu print command format
  1547. # Based on: https://github.com/darkorb/bambu-ftp-and-print
  1548. command = {
  1549. "print": {
  1550. "sequence_id": 0,
  1551. "command": "project_file",
  1552. "param": f"Metadata/plate_{plate_id}.gcode",
  1553. "subtask_name": filename,
  1554. "url": f"ftp://{filename}",
  1555. "timelapse": False,
  1556. "bed_leveling": True,
  1557. "flow_cali": True,
  1558. "vibration_cali": True,
  1559. "layer_inspect": False,
  1560. "use_ams": True,
  1561. }
  1562. }
  1563. logger.info(f"[{self.serial_number}] Sending print command: {json.dumps(command)}")
  1564. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  1565. return True
  1566. return False
  1567. def stop_print(self) -> bool:
  1568. """Stop the current print job."""
  1569. if self._client and self.state.connected:
  1570. command = {"print": {"command": "stop", "sequence_id": "0"}}
  1571. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  1572. logger.info(f"[{self.serial_number}] Sent stop print command")
  1573. return True
  1574. return False
  1575. def set_xcam_option(
  1576. self, module_name: str, enabled: bool, print_halt: bool = True, sensitivity: str = "medium"
  1577. ) -> bool:
  1578. """Set an xcam (AI detection) option on the printer.
  1579. Args:
  1580. module_name: The xcam module to control (e.g., "spaghetti_detector",
  1581. "first_layer_inspector", "printing_monitor", "buildplate_marker_detector")
  1582. enabled: Whether to enable or disable the feature
  1583. print_halt: Whether to halt print on detection (only applies to some detectors)
  1584. sensitivity: Sensitivity level ("low", "medium", "high", or "never_halt")
  1585. Returns:
  1586. True if command was sent, False if not connected
  1587. """
  1588. if not self._client or not self.state.connected:
  1589. return False
  1590. # auto_recovery_step_loss uses a different command format (print.print_option)
  1591. if module_name == "auto_recovery_step_loss":
  1592. return self._set_print_option("auto_recovery", enabled)
  1593. self._sequence_id += 1
  1594. # Build the xcam control command (exact OrcaSlicer format)
  1595. # Key findings from OrcaSlicer source:
  1596. # - Uses "xcam" wrapper (not "print")
  1597. # - print_halt is ALWAYS true (legacy protocol requirement)
  1598. # - Both "control" and "enable" are set to the same value
  1599. # - halt_print_sensitivity controls actual halt behavior
  1600. command = {
  1601. "xcam": {
  1602. "command": "xcam_control_set",
  1603. "sequence_id": str(self._sequence_id),
  1604. "module_name": module_name,
  1605. "control": enabled,
  1606. "enable": enabled, # old protocol compatibility
  1607. "print_halt": True, # ALWAYS true per OrcaSlicer
  1608. }
  1609. }
  1610. # Only add sensitivity if not "never_halt"
  1611. # OrcaSlicer uses halt_print_sensitivity for ALL detectors
  1612. # The module_name field determines which detector's sensitivity is being set
  1613. if sensitivity and sensitivity != "never_halt":
  1614. command["xcam"]["halt_print_sensitivity"] = sensitivity
  1615. command_json = json.dumps(command)
  1616. self._client.publish(self.topic_publish, command_json, qos=1)
  1617. logger.info(f"[{self.serial_number}] Set xcam option: {module_name}={enabled}, sensitivity={sensitivity}")
  1618. logger.debug(f"[{self.serial_number}] MQTT command sent: {command_json}")
  1619. # OrcaSlicer pattern: Set hold timer to ignore incoming data for 3 seconds
  1620. # This prevents stale MQTT data from immediately overwriting our change
  1621. self._xcam_hold_start[module_name] = time.time()
  1622. # Update local state immediately for responsive UI
  1623. # NOTE: Spaghetti and Pileup sensitivities are linked in firmware
  1624. # When spaghetti_detector sensitivity is changed, pileup also changes
  1625. if module_name == "spaghetti_detector":
  1626. self.state.print_options.spaghetti_detector = enabled
  1627. self.state.print_options.print_halt = print_halt
  1628. if sensitivity and sensitivity != "never_halt":
  1629. # spaghetti_detector controls BOTH spaghetti and pileup sensitivities
  1630. self.state.print_options.halt_print_sensitivity = sensitivity
  1631. self.state.print_options.pileup_sensitivity = sensitivity
  1632. self._xcam_hold_start["halt_print_sensitivity"] = time.time()
  1633. self._xcam_hold_start["pileup_sensitivity"] = time.time()
  1634. elif module_name == "first_layer_inspector":
  1635. self.state.print_options.first_layer_inspector = enabled
  1636. elif module_name == "printing_monitor":
  1637. self.state.print_options.printing_monitor = enabled
  1638. elif module_name == "buildplate_marker_detector":
  1639. self.state.print_options.buildplate_marker_detector = enabled
  1640. elif module_name == "allow_skip_parts":
  1641. self.state.print_options.allow_skip_parts = enabled
  1642. elif module_name == "pileup_detector":
  1643. self.state.print_options.pileup_detector = enabled
  1644. # Pileup sensitivity is linked to spaghetti - both are set via spaghetti_detector
  1645. elif module_name == "clump_detector":
  1646. self.state.print_options.nozzle_clumping_detector = enabled
  1647. if sensitivity and sensitivity != "never_halt":
  1648. self.state.print_options.nozzle_clumping_sensitivity = sensitivity
  1649. self._xcam_hold_start["nozzle_clumping_sensitivity"] = time.time()
  1650. elif module_name == "airprint_detector":
  1651. self.state.print_options.airprint_detector = enabled
  1652. if sensitivity and sensitivity != "never_halt":
  1653. self.state.print_options.airprint_sensitivity = sensitivity
  1654. self._xcam_hold_start["airprint_sensitivity"] = time.time()
  1655. elif module_name == "auto_recovery_step_loss":
  1656. self.state.print_options.auto_recovery_step_loss = enabled
  1657. return True
  1658. def _set_print_option(self, option_name: str, enabled: bool) -> bool:
  1659. """Set a print option using the print.print_option command.
  1660. This is different from xcam_control_set and is used for options like:
  1661. - auto_recovery
  1662. - air_print_detect
  1663. - filament_tangle_detect
  1664. - nozzle_blob_detect
  1665. - sound_enable
  1666. Args:
  1667. option_name: The option to control (e.g., "auto_recovery")
  1668. enabled: Whether to enable or disable the option
  1669. Returns:
  1670. True if command was sent, False if not connected
  1671. """
  1672. if not self._client or not self.state.connected:
  1673. return False
  1674. self._sequence_id += 1
  1675. command = {
  1676. "print": {
  1677. "command": "print_option",
  1678. "sequence_id": str(self._sequence_id),
  1679. option_name: enabled,
  1680. }
  1681. }
  1682. command_json = json.dumps(command)
  1683. self._client.publish(self.topic_publish, command_json, qos=1)
  1684. logger.info(f"[{self.serial_number}] Set print option: {option_name}={enabled}")
  1685. # Set hold timer
  1686. hold_key = f"print_option_{option_name}"
  1687. self._xcam_hold_start[hold_key] = time.time()
  1688. # Update local state immediately
  1689. if option_name == "auto_recovery":
  1690. self.state.print_options.auto_recovery_step_loss = enabled
  1691. return True
  1692. def start_calibration(
  1693. self,
  1694. bed_leveling: bool = False,
  1695. vibration: bool = False,
  1696. motor_noise: bool = False,
  1697. nozzle_offset: bool = False,
  1698. high_temp_heatbed: bool = False,
  1699. ) -> bool:
  1700. """Start printer calibration with selected options.
  1701. Args:
  1702. bed_leveling: Run bed leveling calibration
  1703. vibration: Run vibration compensation calibration
  1704. motor_noise: Run motor noise cancellation calibration
  1705. nozzle_offset: Run nozzle offset calibration (dual nozzle printers)
  1706. high_temp_heatbed: Run high-temperature heatbed calibration
  1707. Returns:
  1708. True if command was sent, False if not connected
  1709. """
  1710. if not self._client or not self.state.connected:
  1711. return False
  1712. # Build calibration bitmask based on OrcaSlicer DeviceManager.cpp
  1713. # Bit 0: xcam_cali (not exposed in UI)
  1714. # Bit 1: bed_leveling
  1715. # Bit 2: vibration
  1716. # Bit 3: motor_noise
  1717. # Bit 4: nozzle_cali
  1718. # Bit 5: bed_cali (high-temp heatbed)
  1719. # Bit 6: clumppos_cali (not exposed in UI)
  1720. option = 0
  1721. if bed_leveling:
  1722. option |= 1 << 1
  1723. if vibration:
  1724. option |= 1 << 2
  1725. if motor_noise:
  1726. option |= 1 << 3
  1727. if nozzle_offset:
  1728. option |= 1 << 4
  1729. if high_temp_heatbed:
  1730. option |= 1 << 5
  1731. if option == 0:
  1732. logger.warning(f"[{self.serial_number}] No calibration options selected")
  1733. return False
  1734. self._sequence_id += 1
  1735. command = {
  1736. "print": {
  1737. "command": "calibration",
  1738. "sequence_id": str(self._sequence_id),
  1739. "option": option,
  1740. }
  1741. }
  1742. command_json = json.dumps(command)
  1743. self._client.publish(self.topic_publish, command_json, qos=1)
  1744. logger.info(
  1745. f"[{self.serial_number}] Starting calibration: "
  1746. f"bed_leveling={bed_leveling}, vibration={vibration}, "
  1747. f"motor_noise={motor_noise}, nozzle_offset={nozzle_offset}, "
  1748. f"high_temp_heatbed={high_temp_heatbed} (option={option})"
  1749. )
  1750. return True
  1751. def disconnect(self):
  1752. """Disconnect from the printer."""
  1753. if self._client:
  1754. self._client.loop_stop()
  1755. self._client.disconnect()
  1756. self._client = None
  1757. self.state.connected = False
  1758. def send_command(self, command: dict):
  1759. """Send a command to the printer."""
  1760. if self._client and self.state.connected:
  1761. # Log outgoing message if logging is enabled
  1762. if self._logging_enabled:
  1763. self._message_log.append(
  1764. MQTTLogEntry(
  1765. timestamp=datetime.now().isoformat(),
  1766. topic=self.topic_publish,
  1767. direction="out",
  1768. payload=command,
  1769. )
  1770. )
  1771. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  1772. def enable_logging(self, enabled: bool = True):
  1773. """Enable or disable MQTT message logging."""
  1774. self._logging_enabled = enabled
  1775. # Don't clear logs when stopping - user can manually clear with clear_logs()
  1776. def get_logs(self) -> list[MQTTLogEntry]:
  1777. """Get all logged MQTT messages."""
  1778. return list(self._message_log)
  1779. def clear_logs(self):
  1780. """Clear the message log."""
  1781. self._message_log.clear()
  1782. @property
  1783. def logging_enabled(self) -> bool:
  1784. """Check if logging is enabled."""
  1785. return self._logging_enabled
  1786. def _handle_kprofile_response(self, data: dict):
  1787. """Handle K-profile response from printer."""
  1788. response_nozzle = data.get("nozzle_diameter")
  1789. response_seq_id = data.get("sequence_id", "?")
  1790. filaments = data.get("filaments", [])
  1791. expected_nozzle = getattr(self, "_expected_kprofile_nozzle", None)
  1792. has_pending_request = self._pending_kprofile_response is not None
  1793. # Log all incoming responses when we have a pending request (for debugging)
  1794. if has_pending_request:
  1795. logger.info(
  1796. f"[{self.serial_number}] K-profile response: nozzle={response_nozzle}, {len(filaments)} profiles, expected={expected_nozzle}"
  1797. )
  1798. # If we have a pending request, only accept responses with matching nozzle_diameter
  1799. # The printer broadcasts 0.4mm profiles constantly - we need to wait for the actual response
  1800. if has_pending_request and expected_nozzle and response_nozzle != expected_nozzle:
  1801. # Ignore this broadcast, keep waiting for matching response
  1802. logger.debug(
  1803. f"[{self.serial_number}] Ignoring broadcast: got nozzle={response_nozzle}, waiting for {expected_nozzle}"
  1804. )
  1805. return
  1806. # If no pending request, this is just a broadcast - update state silently and return early
  1807. if not has_pending_request:
  1808. # Still parse profiles to keep state updated, but don't log
  1809. profiles = []
  1810. for f in filaments:
  1811. if isinstance(f, dict):
  1812. try:
  1813. cali_idx = f.get("cali_idx", 0)
  1814. profiles.append(
  1815. KProfile(
  1816. slot_id=cali_idx,
  1817. extruder_id=int(f.get("extruder_id", 0)),
  1818. nozzle_id=str(f.get("nozzle_id", "")),
  1819. nozzle_diameter=str(f.get("nozzle_diameter", "0.4")),
  1820. filament_id=str(f.get("filament_id", "")),
  1821. name=str(f.get("name", "")),
  1822. k_value=str(f.get("k_value", "0.000000")),
  1823. n_coef=str(f.get("n_coef", "0.000000")),
  1824. ams_id=int(f.get("ams_id", 0)),
  1825. tray_id=int(f.get("tray_id", -1)),
  1826. setting_id=f.get("setting_id"),
  1827. )
  1828. )
  1829. except (ValueError, TypeError):
  1830. pass
  1831. self.state.kprofiles = profiles
  1832. return
  1833. profiles = []
  1834. for i, f in enumerate(filaments):
  1835. if isinstance(f, dict):
  1836. try:
  1837. # cali_idx is the actual slot/calibration index from the printer
  1838. cali_idx = f.get("cali_idx", i)
  1839. profiles.append(
  1840. KProfile(
  1841. slot_id=cali_idx,
  1842. extruder_id=int(f.get("extruder_id", 0)),
  1843. nozzle_id=str(f.get("nozzle_id", "")),
  1844. nozzle_diameter=str(f.get("nozzle_diameter", "0.4")),
  1845. filament_id=str(f.get("filament_id", "")),
  1846. name=str(f.get("name", "")),
  1847. k_value=str(f.get("k_value", "0.000000")),
  1848. n_coef=str(f.get("n_coef", "0.000000")),
  1849. ams_id=int(f.get("ams_id", 0)),
  1850. tray_id=int(f.get("tray_id", -1)),
  1851. setting_id=f.get("setting_id"),
  1852. )
  1853. )
  1854. except (ValueError, TypeError) as e:
  1855. logger.warning(f"Failed to parse K-profile: {e}")
  1856. self.state.kprofiles = profiles
  1857. self._kprofile_response_data = profiles
  1858. # Signal that we received the response (only if we were waiting for one)
  1859. # Use thread-safe method since MQTT callbacks run in a different thread
  1860. if self._pending_kprofile_response:
  1861. logger.info(f"[{self.serial_number}] Got {len(profiles)} K-profiles for nozzle={response_nozzle}")
  1862. if self._loop and self._loop.is_running():
  1863. self._loop.call_soon_threadsafe(self._pending_kprofile_response.set)
  1864. else:
  1865. # Fallback for when loop is not available
  1866. self._pending_kprofile_response.set()
  1867. async def get_kprofiles(
  1868. self, nozzle_diameter: str = "0.4", timeout: float = 5.0, max_retries: int = 3
  1869. ) -> list[KProfile]:
  1870. """Request K-profiles from the printer with retry logic.
  1871. Bambu printers sometimes ignore the first K-profile request, so we
  1872. implement retry logic to ensure reliable retrieval.
  1873. Args:
  1874. nozzle_diameter: Filter by nozzle diameter (e.g., "0.4")
  1875. timeout: Timeout in seconds to wait for each response attempt
  1876. max_retries: Maximum number of retry attempts
  1877. Returns:
  1878. List of KProfile objects
  1879. """
  1880. if not self._client or not self.state.connected:
  1881. logger.warning(f"[{self.serial_number}] Cannot get K-profiles: not connected")
  1882. return []
  1883. # Capture current event loop for thread-safe callback
  1884. try:
  1885. self._loop = asyncio.get_running_loop()
  1886. except RuntimeError:
  1887. logger.warning(f"[{self.serial_number}] No running event loop")
  1888. return []
  1889. for attempt in range(max_retries):
  1890. # Set up response event for this attempt
  1891. self._sequence_id += 1
  1892. self._pending_kprofile_response = asyncio.Event()
  1893. self._kprofile_response_data = None
  1894. self._expected_kprofile_nozzle = nozzle_diameter # Track which nozzle response we expect
  1895. # Send the command with nozzle_diameter filter
  1896. command = {
  1897. "print": {
  1898. "command": "extrusion_cali_get",
  1899. "filament_id": "",
  1900. "nozzle_diameter": nozzle_diameter,
  1901. "sequence_id": str(self._sequence_id),
  1902. }
  1903. }
  1904. logger.info(
  1905. f"[{self.serial_number}] Requesting K-profiles for nozzle_diameter={nozzle_diameter} (attempt {attempt + 1}/{max_retries})"
  1906. )
  1907. logger.debug(f"[{self.serial_number}] K-profile request JSON: {json.dumps(command)}")
  1908. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  1909. # Wait for response (response handler already filters by nozzle_diameter)
  1910. try:
  1911. await asyncio.wait_for(self._pending_kprofile_response.wait(), timeout=timeout)
  1912. profiles = self._kprofile_response_data or []
  1913. logger.info(
  1914. f"[{self.serial_number}] Got {len(profiles)} K-profiles for nozzle={nozzle_diameter} on attempt {attempt + 1}"
  1915. )
  1916. return profiles
  1917. except TimeoutError:
  1918. logger.warning(
  1919. f"[{self.serial_number}] Timeout on K-profiles request attempt {attempt + 1}/{max_retries}"
  1920. )
  1921. if attempt < max_retries - 1:
  1922. # Brief delay before retry
  1923. await asyncio.sleep(0.5)
  1924. finally:
  1925. self._pending_kprofile_response = None
  1926. self._expected_kprofile_nozzle = None
  1927. logger.error(f"[{self.serial_number}] Failed to get K-profiles after {max_retries} attempts")
  1928. return []
  1929. def set_kprofile(
  1930. self,
  1931. filament_id: str,
  1932. name: str,
  1933. k_value: str,
  1934. nozzle_diameter: str = "0.4",
  1935. nozzle_id: str = "HS00-0.4",
  1936. extruder_id: int = 0,
  1937. setting_id: str | None = None,
  1938. slot_id: int = 0,
  1939. cali_idx: int | None = None,
  1940. ) -> bool:
  1941. """Set/update a K-profile on the printer.
  1942. Args:
  1943. filament_id: Bambu filament identifier
  1944. name: Profile name
  1945. k_value: Pressure advance value (e.g., "0.020000")
  1946. nozzle_diameter: Nozzle diameter (e.g., "0.4")
  1947. nozzle_id: Nozzle identifier (e.g., "HS00-0.4")
  1948. extruder_id: Extruder ID (0 or 1 for dual nozzle)
  1949. setting_id: Existing setting ID for updates, None for new
  1950. slot_id: Calibration index (cali_idx) for the profile
  1951. cali_idx: For edits, the existing slot being edited (enables in-place edit)
  1952. Returns:
  1953. True if command was sent, False otherwise
  1954. """
  1955. if not self._client or not self.state.connected:
  1956. logger.warning(f"[{self.serial_number}] Cannot set K-profile: not connected")
  1957. return False
  1958. self._sequence_id += 1
  1959. # Build the filament entry - printer uses cali_idx for profile identification
  1960. # For new profiles (slot_id=0), use cali_idx=-1 to tell printer to create new slot
  1961. # For edits, use the provided cali_idx or slot_id
  1962. if cali_idx is not None:
  1963. effective_cali_idx = cali_idx
  1964. else:
  1965. effective_cali_idx = -1 if slot_id == 0 else slot_id
  1966. # Generate a setting_id for new profiles (required by printer)
  1967. # Format: "PF" + 17 random digits
  1968. import random
  1969. if not setting_id and slot_id == 0:
  1970. setting_id = f"PF{random.randint(10000000000000000, 99999999999999999)}"
  1971. filament_entry = {
  1972. "ams_id": 0,
  1973. "cali_idx": effective_cali_idx,
  1974. "extruder_id": extruder_id,
  1975. "filament_id": filament_id,
  1976. "k_value": k_value,
  1977. "n_coef": "0.000000",
  1978. "name": name,
  1979. "nozzle_diameter": nozzle_diameter,
  1980. "nozzle_id": nozzle_id,
  1981. "setting_id": setting_id if setting_id else "",
  1982. "tray_id": -1,
  1983. }
  1984. command = {
  1985. "print": {
  1986. "command": "extrusion_cali_set",
  1987. "filaments": [filament_entry],
  1988. "nozzle_diameter": nozzle_diameter,
  1989. "sequence_id": str(self._sequence_id),
  1990. }
  1991. }
  1992. command_json = json.dumps(command)
  1993. logger.info(
  1994. f"[{self.serial_number}] Setting K-profile: {name} = {k_value} (cali_idx={effective_cali_idx}, new={slot_id == 0})"
  1995. )
  1996. logger.info(f"[{self.serial_number}] K-profile SET command: {command_json}")
  1997. self._client.publish(self.topic_publish, command_json, qos=1)
  1998. return True
  1999. def set_kprofiles_batch(
  2000. self,
  2001. profiles: list[dict],
  2002. nozzle_diameter: str = "0.4",
  2003. ) -> bool:
  2004. """Set multiple K-profiles in a single command (for dual-nozzle).
  2005. Args:
  2006. profiles: List of profile dicts, each with:
  2007. - filament_id, name, k_value, nozzle_id, extruder_id, setting_id (optional), slot_id
  2008. nozzle_diameter: Common nozzle diameter for all profiles
  2009. Returns:
  2010. True if command was sent, False otherwise
  2011. """
  2012. if not self._client or not self.state.connected:
  2013. logger.warning(f"[{self.serial_number}] Cannot set K-profiles batch: not connected")
  2014. return False
  2015. import random
  2016. self._sequence_id += 1
  2017. filament_entries = []
  2018. for p in profiles:
  2019. slot_id = p.get("slot_id", 0)
  2020. cali_idx = p.get("cali_idx")
  2021. if cali_idx is not None:
  2022. effective_cali_idx = cali_idx
  2023. else:
  2024. effective_cali_idx = -1 if slot_id == 0 else slot_id
  2025. setting_id = p.get("setting_id")
  2026. if not setting_id and slot_id == 0:
  2027. setting_id = f"PF{random.randint(10000000000000000, 99999999999999999)}"
  2028. filament_entries.append(
  2029. {
  2030. "ams_id": 0,
  2031. "cali_idx": effective_cali_idx,
  2032. "extruder_id": p.get("extruder_id", 0),
  2033. "filament_id": p.get("filament_id", ""),
  2034. "k_value": p.get("k_value", "0.020000"),
  2035. "n_coef": "0.000000",
  2036. "name": p.get("name", ""),
  2037. "nozzle_diameter": nozzle_diameter,
  2038. "nozzle_id": p.get("nozzle_id", f"HS00-{nozzle_diameter}"),
  2039. "setting_id": setting_id if setting_id else "",
  2040. "tray_id": -1,
  2041. }
  2042. )
  2043. command = {
  2044. "print": {
  2045. "command": "extrusion_cali_set",
  2046. "filaments": filament_entries,
  2047. "nozzle_diameter": nozzle_diameter,
  2048. "sequence_id": str(self._sequence_id),
  2049. }
  2050. }
  2051. command_json = json.dumps(command)
  2052. logger.info(f"[{self.serial_number}] Setting {len(filament_entries)} K-profiles in batch")
  2053. logger.info(f"[{self.serial_number}] K-profile SET batch command: {command_json}")
  2054. self._client.publish(self.topic_publish, command_json, qos=1)
  2055. return True
  2056. def delete_kprofile(
  2057. self,
  2058. cali_idx: int,
  2059. filament_id: str,
  2060. nozzle_id: str,
  2061. nozzle_diameter: str = "0.4",
  2062. extruder_id: int = 0,
  2063. setting_id: str | None = None,
  2064. ) -> bool:
  2065. """Delete a K-profile from the printer.
  2066. Args:
  2067. cali_idx: The calibration index (slot_id) of the profile to delete
  2068. filament_id: Bambu filament identifier
  2069. nozzle_id: Nozzle identifier (e.g., "HH00-0.4")
  2070. nozzle_diameter: Nozzle diameter (e.g., "0.4")
  2071. extruder_id: Extruder ID (0 or 1 for dual nozzle)
  2072. setting_id: Unique setting identifier (for X1C series)
  2073. Returns:
  2074. True if command was sent, False otherwise
  2075. """
  2076. if not self._client or not self.state.connected:
  2077. logger.warning(f"[{self.serial_number}] Cannot delete K-profile: not connected")
  2078. return False
  2079. self._sequence_id += 1
  2080. # Detect printer type by serial number prefix
  2081. # H2D series (dual nozzle): serial starts with "094"
  2082. is_dual_nozzle = self.serial_number.startswith("094")
  2083. if is_dual_nozzle:
  2084. # H2D format: uses extruder_id, nozzle_id, nozzle_diameter
  2085. command = {
  2086. "print": {
  2087. "command": "extrusion_cali_del",
  2088. "sequence_id": str(self._sequence_id),
  2089. "extruder_id": extruder_id,
  2090. "nozzle_id": nozzle_id,
  2091. "filament_id": filament_id,
  2092. "cali_idx": cali_idx,
  2093. "nozzle_diameter": nozzle_diameter,
  2094. }
  2095. }
  2096. else:
  2097. # X1C/P1/A1 format: include all fields like the set command
  2098. # The delete command structure should match what set uses
  2099. command = {
  2100. "print": {
  2101. "command": "extrusion_cali_del",
  2102. "sequence_id": str(self._sequence_id),
  2103. "filament_id": filament_id,
  2104. "cali_idx": cali_idx,
  2105. "setting_id": setting_id if setting_id else "",
  2106. "nozzle_diameter": nozzle_diameter,
  2107. "nozzle_id": nozzle_id,
  2108. "extruder_id": extruder_id,
  2109. }
  2110. }
  2111. command_json = json.dumps(command)
  2112. logger.info(
  2113. f"[{self.serial_number}] Deleting K-profile: cali_idx={cali_idx}, filament={filament_id}, setting_id={setting_id}, dual={is_dual_nozzle}"
  2114. )
  2115. logger.info(f"[{self.serial_number}] K-profile DELETE command: {command_json}")
  2116. # Use QoS 1 for reliable delivery (at least once)
  2117. self._client.publish(self.topic_publish, command_json, qos=1)
  2118. return True
  2119. # =========================================================================
  2120. # Printer Control Commands
  2121. # =========================================================================
  2122. def pause_print(self) -> bool:
  2123. """Pause the current print job."""
  2124. if not self._client or not self.state.connected:
  2125. logger.warning(f"[{self.serial_number}] Cannot pause print: not connected")
  2126. return False
  2127. command = {"print": {"command": "pause", "sequence_id": "0"}}
  2128. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2129. logger.info(f"[{self.serial_number}] Sent pause print command")
  2130. return True
  2131. def resume_print(self) -> bool:
  2132. """Resume a paused print job."""
  2133. if not self._client or not self.state.connected:
  2134. logger.warning(f"[{self.serial_number}] Cannot resume print: not connected")
  2135. return False
  2136. command = {"print": {"command": "resume", "sequence_id": "0"}}
  2137. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2138. logger.info(f"[{self.serial_number}] Sent resume print command")
  2139. return True
  2140. def send_gcode(self, gcode: str) -> bool:
  2141. """Send G-code command(s) to the printer.
  2142. Multiple commands can be separated by newlines.
  2143. Args:
  2144. gcode: G-code command(s) to send
  2145. Returns:
  2146. True if command was sent, False otherwise
  2147. """
  2148. if not self._client or not self.state.connected:
  2149. logger.warning(f"[{self.serial_number}] Cannot send G-code: not connected")
  2150. return False
  2151. self._sequence_id += 1
  2152. command = {"print": {"command": "gcode_line", "param": gcode, "sequence_id": str(self._sequence_id)}}
  2153. # Use QoS 1 for reliable delivery (at least once)
  2154. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2155. logger.debug(f"[{self.serial_number}] Sent G-code: {gcode[:50]}...")
  2156. return True
  2157. def set_bed_temperature(self, target: int) -> bool:
  2158. """Set the bed target temperature.
  2159. Args:
  2160. target: Target temperature in Celsius (0 to turn off)
  2161. Returns:
  2162. True if command was sent, False otherwise
  2163. """
  2164. return self.send_gcode(f"M140 S{target}")
  2165. def set_nozzle_temperature(self, target: int, nozzle: int = 0) -> bool:
  2166. """Set the nozzle target temperature.
  2167. Args:
  2168. target: Target temperature in Celsius (0 to turn off)
  2169. nozzle: Nozzle index (0 for right/default, 1 for left on H2D)
  2170. Returns:
  2171. True if command was sent, False otherwise
  2172. """
  2173. # Use M104 for non-blocking
  2174. # Always use T parameter for H2D compatibility
  2175. result = self.send_gcode(f"M104 T{nozzle} S{target}")
  2176. # H2D quirk: left nozzle (nozzle=1) target isn't reported in MQTT
  2177. # Track it locally so we can display it correctly
  2178. if result and nozzle == 1:
  2179. self.state.temperatures["nozzle_target"] = float(target)
  2180. self.state.temperatures["_nozzle_target_set_time"] = time.time()
  2181. logger.info(f"[{self.serial_number}] Tracking LEFT nozzle target locally: {target}°C")
  2182. return result
  2183. def set_chamber_temperature(self, target: int) -> bool:
  2184. """Set the chamber target temperature.
  2185. Args:
  2186. target: Target temperature in Celsius (0 to turn off heating)
  2187. Returns:
  2188. True if command was sent, False otherwise
  2189. """
  2190. # M141 sets chamber temperature
  2191. result = self.send_gcode(f"M141 S{target}")
  2192. # Track chamber target locally (MQTT reports encoded values that need filtering)
  2193. if result:
  2194. self.state.temperatures["chamber_target"] = float(target)
  2195. self.state.temperatures["_chamber_target_set_time"] = time.time()
  2196. # Update heating state immediately based on new target
  2197. current_temp = self.state.temperatures.get("chamber", 0)
  2198. self.state.temperatures["chamber_heating"] = target > 0 and current_temp < target
  2199. logger.info(
  2200. f"[{self.serial_number}] Tracking chamber target locally: {target}°C (heating={self.state.temperatures['chamber_heating']})"
  2201. )
  2202. return result
  2203. def set_print_speed(self, mode: int) -> bool:
  2204. """Set the print speed mode.
  2205. Args:
  2206. mode: Speed mode (1=silent, 2=standard, 3=sport, 4=ludicrous)
  2207. Returns:
  2208. True if command was sent, False otherwise
  2209. """
  2210. if not self._client or not self.state.connected:
  2211. logger.warning(f"[{self.serial_number}] Cannot set print speed: not connected")
  2212. return False
  2213. if mode not in (1, 2, 3, 4):
  2214. logger.warning(f"[{self.serial_number}] Invalid speed mode: {mode}")
  2215. return False
  2216. command = {"print": {"command": "print_speed", "param": str(mode), "sequence_id": "0"}}
  2217. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2218. logger.info(f"[{self.serial_number}] Set print speed mode to {mode}")
  2219. return True
  2220. def set_fan_speed(self, fan: int, speed: int) -> bool:
  2221. """Set fan speed.
  2222. Args:
  2223. fan: Fan index (1=part cooling, 2=auxiliary, 3=chamber)
  2224. speed: Speed 0-255 (0=off, 255=full)
  2225. Returns:
  2226. True if command was sent, False otherwise
  2227. """
  2228. if fan not in (1, 2, 3):
  2229. logger.warning(f"[{self.serial_number}] Invalid fan index: {fan}")
  2230. return False
  2231. speed = max(0, min(255, speed)) # Clamp to 0-255
  2232. return self.send_gcode(f"M106 P{fan} S{speed}")
  2233. def set_part_fan(self, speed: int) -> bool:
  2234. """Set part cooling fan speed (0-255)."""
  2235. return self.set_fan_speed(1, speed)
  2236. def set_aux_fan(self, speed: int) -> bool:
  2237. """Set auxiliary fan speed (0-255)."""
  2238. return self.set_fan_speed(2, speed)
  2239. def set_chamber_fan(self, speed: int) -> bool:
  2240. """Set chamber fan speed (0-255)."""
  2241. return self.set_fan_speed(3, speed)
  2242. def set_airduct_mode(self, mode: str) -> bool:
  2243. """Set air conditioning mode (cooling or heating).
  2244. Args:
  2245. mode: "cooling" (modeId=0) or "heating" (modeId=1)
  2246. - Cooling: Suitable for PLA/PETG/TPU, filters and cools chamber air
  2247. - Heating: Suitable for ABS/ASA/PC/PA, circulates and heats chamber air,
  2248. closes top exhaust flap
  2249. Returns:
  2250. True if command was sent, False otherwise
  2251. """
  2252. if not self._client or not self.state.connected:
  2253. logger.warning(f"[{self.serial_number}] Cannot set airduct mode: not connected")
  2254. return False
  2255. self._sequence_id += 1
  2256. mode_id = 0 if mode == "cooling" else 1
  2257. command = {
  2258. "print": {"command": "set_airduct", "modeId": mode_id, "sequence_id": str(self._sequence_id), "submode": -1}
  2259. }
  2260. # Use QoS 1 for reliable delivery
  2261. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2262. logger.info(f"[{self.serial_number}] Set airduct mode to {mode} (modeId={mode_id}, seq={self._sequence_id})")
  2263. return True
  2264. def set_chamber_light(self, on: bool) -> bool:
  2265. """Turn chamber light on or off.
  2266. Args:
  2267. on: True to turn on, False to turn off
  2268. Returns:
  2269. True if command was sent, False otherwise
  2270. """
  2271. if not self._client or not self.state.connected:
  2272. logger.warning(f"[{self.serial_number}] Cannot set chamber light: not connected")
  2273. return False
  2274. mode = "on" if on else "off"
  2275. # Control both chamber lights (some printers like H2D have two)
  2276. for led_node in ["chamber_light", "chamber_light2"]:
  2277. self._sequence_id += 1
  2278. command = {
  2279. "system": {
  2280. "command": "ledctrl",
  2281. "led_node": led_node,
  2282. "led_mode": mode,
  2283. "led_on_time": 500,
  2284. "led_off_time": 500,
  2285. "loop_times": 0,
  2286. "interval_time": 0,
  2287. "sequence_id": str(self._sequence_id),
  2288. }
  2289. }
  2290. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2291. logger.info(f"[{self.serial_number}] Set chamber lights {'on' if on else 'off'} (seq={self._sequence_id})")
  2292. return True
  2293. def select_extruder(self, extruder: int) -> bool:
  2294. """Select the active extruder for dual-nozzle printers (H2D).
  2295. Args:
  2296. extruder: Extruder index (0=right, 1=left for H2D)
  2297. Returns:
  2298. True if command was sent, False otherwise
  2299. """
  2300. if extruder not in (0, 1):
  2301. logger.warning(f"[{self.serial_number}] Invalid extruder: {extruder}")
  2302. return False
  2303. if not self._client or not self.state.connected:
  2304. logger.warning(f"[{self.serial_number}] Cannot switch extruder: not connected")
  2305. return False
  2306. # H2D extruder switching via select_extruder command
  2307. # Command format captured from OrcaSlicer:
  2308. # {"print": {"command": "select_extruder", "extruder_index": 0, "sequence_id": "..."}}
  2309. # extruder_index: 0 = RIGHT, 1 = LEFT
  2310. self._sequence_id += 1
  2311. command = {
  2312. "print": {"command": "select_extruder", "extruder_index": extruder, "sequence_id": str(self._sequence_id)}
  2313. }
  2314. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2315. logger.info(f"[{self.serial_number}] Sent select_extruder command: extruder_index={extruder} (0=right, 1=left)")
  2316. return True
  2317. def home_axes(self, axes: str = "XYZ") -> bool:
  2318. """Home the specified axes.
  2319. Args:
  2320. axes: Axes to home (e.g., "XYZ", "X", "XY", "Z")
  2321. Returns:
  2322. True if command was sent, False otherwise
  2323. """
  2324. # G28 homes all axes, G28 X Y Z homes specific axes
  2325. axes_param = " ".join(axes.upper())
  2326. return self.send_gcode(f"G28 {axes_param}")
  2327. def move_axis(self, axis: str, distance: float, speed: int = 3000) -> bool:
  2328. """Move an axis by a relative distance.
  2329. Args:
  2330. axis: Axis to move ("X", "Y", or "Z")
  2331. distance: Distance to move in mm (positive or negative)
  2332. speed: Movement speed in mm/min
  2333. Returns:
  2334. True if command was sent, False otherwise
  2335. """
  2336. axis = axis.upper()
  2337. if axis not in ("X", "Y", "Z"):
  2338. logger.warning(f"[{self.serial_number}] Invalid axis: {axis}")
  2339. return False
  2340. # G91 = relative mode, G0 = rapid move, G90 = back to absolute
  2341. gcode = f"G91\nG0 {axis}{distance:.2f} F{speed}\nG90"
  2342. return self.send_gcode(gcode)
  2343. def disable_motors(self) -> bool:
  2344. """Disable all stepper motors.
  2345. Warning: This will cause the printer to lose its position.
  2346. A homing operation will be required before printing.
  2347. Returns:
  2348. True if command was sent, False otherwise
  2349. """
  2350. return self.send_gcode("M18")
  2351. def enable_motors(self) -> bool:
  2352. """Enable all stepper motors.
  2353. Returns:
  2354. True if command was sent, False otherwise
  2355. """
  2356. return self.send_gcode("M17")
  2357. def ams_load_filament(self, tray_id: int, extruder_id: int | None = None) -> bool:
  2358. """Load filament from a specific AMS tray.
  2359. Args:
  2360. tray_id: Global tray ID (0-15 for AMS slots, or 254 for external spool)
  2361. extruder_id: Unused - kept for API compatibility
  2362. Returns:
  2363. True if command was sent, False otherwise
  2364. """
  2365. if not self._client or not self.state.connected:
  2366. logger.warning(f"[{self.serial_number}] Cannot load filament: not connected")
  2367. return False
  2368. # Calculate ams_id and slot_id for logging
  2369. if tray_id == 254:
  2370. ams_id = 255 # External spool
  2371. slot_id = 254
  2372. else:
  2373. ams_id = tray_id // 4 # AMS unit (0, 1, 2, 3...)
  2374. slot_id = tray_id % 4 # Slot within AMS (0, 1, 2, 3)
  2375. # Command format from BambuStudio traffic capture:
  2376. # - No extruder_id field
  2377. # - curr_temp and tar_temp are -1 (not 0)
  2378. self._sequence_id += 1
  2379. command = {
  2380. "print": {
  2381. "command": "ams_change_filament",
  2382. "sequence_id": str(self._sequence_id),
  2383. "ams_id": ams_id,
  2384. "slot_id": slot_id,
  2385. "target": tray_id,
  2386. "curr_temp": -1,
  2387. "tar_temp": -1,
  2388. }
  2389. }
  2390. command_json = json.dumps(command)
  2391. logger.info(f"[{self.serial_number}] Publishing ams_change_filament command: {command_json}")
  2392. self._client.publish(self.topic_publish, command_json, qos=1)
  2393. logger.info(f"[{self.serial_number}] Loading filament from tray {tray_id} (AMS {ams_id} slot {slot_id})")
  2394. # Track this load request for H2D dual-nozzle disambiguation
  2395. # H2D reports only slot number (0-3) in tray_now, so we use our tracked value
  2396. self._last_load_tray_id = tray_id
  2397. self.state.pending_tray_target = tray_id
  2398. logger.info(f"[{self.serial_number}] Set pending_tray_target={tray_id} for H2D disambiguation")
  2399. return True
  2400. def ams_unload_filament(self) -> bool:
  2401. """Unload the currently loaded filament.
  2402. Returns:
  2403. True if command was sent, False otherwise
  2404. """
  2405. if not self._client or not self.state.connected:
  2406. logger.warning(f"[{self.serial_number}] Cannot unload filament: not connected")
  2407. return False
  2408. # Get the currently loaded tray info
  2409. tray_now = self.state.tray_now
  2410. logger.info(f"[{self.serial_number}] Unload requested, tray_now={tray_now}")
  2411. # Determine source ams_id for the unload command
  2412. if tray_now == 255 or tray_now == 254:
  2413. ams_id = 255 # No filament or external spool
  2414. else:
  2415. ams_id = tray_now // 4 # Source AMS
  2416. # Command format from BambuStudio traffic capture:
  2417. # - No extruder_id field
  2418. # - For UNLOAD: curr_temp and tar_temp are the actual nozzle temp (e.g., 210)
  2419. # - slot_id=255 and target=255 for unload
  2420. # Get current nozzle temperature for the unload command
  2421. nozzle_temp = int(self.state.temperatures.get("nozzle", 210))
  2422. if nozzle_temp < 180:
  2423. nozzle_temp = 210 # Default to PLA temp if nozzle is cold
  2424. self._sequence_id += 1
  2425. command = {
  2426. "print": {
  2427. "command": "ams_change_filament",
  2428. "sequence_id": str(self._sequence_id),
  2429. "ams_id": ams_id,
  2430. "slot_id": 255, # 255 = unload marker
  2431. "target": 255, # 255 = unload destination
  2432. "curr_temp": nozzle_temp,
  2433. "tar_temp": nozzle_temp,
  2434. }
  2435. }
  2436. command_json = json.dumps(command)
  2437. logger.info(f"[{self.serial_number}] Publishing ams_change_filament (unload) command: {command_json}")
  2438. self._client.publish(self.topic_publish, command_json, qos=1)
  2439. logger.info(f"[{self.serial_number}] Unloading filament (tray_now was {tray_now})")
  2440. # Clear tracked load request since we're unloading
  2441. self._last_load_tray_id = None
  2442. self.state.pending_tray_target = None
  2443. logger.info(f"[{self.serial_number}] Cleared pending_tray_target (unload)")
  2444. return True
  2445. def ams_control(self, action: str) -> bool:
  2446. """Control AMS operations.
  2447. Args:
  2448. action: "resume", "reset", or "pause"
  2449. Returns:
  2450. True if command was sent, False otherwise
  2451. """
  2452. if not self._client or not self.state.connected:
  2453. logger.warning(f"[{self.serial_number}] Cannot control AMS: not connected")
  2454. return False
  2455. if action not in ("resume", "reset", "pause"):
  2456. logger.warning(f"[{self.serial_number}] Invalid AMS action: {action}")
  2457. return False
  2458. command = {"print": {"command": "ams_control", "param": action, "sequence_id": "0"}}
  2459. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2460. logger.info(f"[{self.serial_number}] AMS control: {action}")
  2461. return True
  2462. def ams_refresh_tray(self, ams_id: int, tray_id: int) -> tuple[bool, str]:
  2463. """Trigger RFID re-read for a specific AMS tray.
  2464. Args:
  2465. ams_id: AMS unit ID (0-3, or 128 for H2D external tray)
  2466. tray_id: Tray ID within the AMS (0-3)
  2467. Returns:
  2468. Tuple of (success, message)
  2469. """
  2470. if not self._client or not self.state.connected:
  2471. logger.warning(f"[{self.serial_number}] Cannot refresh AMS tray: not connected")
  2472. return False, "Printer not connected"
  2473. # Check if filament is currently loaded (tray_now != 255)
  2474. # RFID refresh requires the AMS to move filament, which can't happen if one is loaded
  2475. tray_now = self.state.tray_now
  2476. if tray_now != 255:
  2477. # Decode which tray is loaded for the message
  2478. if tray_now == 254:
  2479. loaded_tray = "external spool"
  2480. elif tray_now >= 0 and tray_now < 128:
  2481. loaded_ams = tray_now // 4
  2482. loaded_slot = tray_now % 4
  2483. loaded_tray = f"AMS {loaded_ams + 1} slot {loaded_slot + 1}"
  2484. else:
  2485. loaded_tray = f"tray {tray_now}"
  2486. logger.warning(f"[{self.serial_number}] Cannot refresh AMS tray: filament loaded from {loaded_tray}")
  2487. return False, f"Please unload filament first. Currently loaded: {loaded_tray}"
  2488. # Use ams_get_rfid command to trigger RFID re-read
  2489. # This command is used by Bambu Studio to re-read the RFID tag
  2490. command = {"print": {"command": "ams_get_rfid", "ams_id": ams_id, "slot_id": tray_id, "sequence_id": "0"}}
  2491. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2492. logger.info(f"[{self.serial_number}] Triggering RFID re-read: AMS {ams_id}, slot {tray_id}")
  2493. return True, f"Refreshing AMS {ams_id} tray {tray_id}"
  2494. def ams_set_filament_setting(
  2495. self,
  2496. ams_id: int,
  2497. tray_id: int,
  2498. tray_info_idx: str,
  2499. tray_type: str,
  2500. tray_sub_brands: str,
  2501. tray_color: str,
  2502. nozzle_temp_min: int,
  2503. nozzle_temp_max: int,
  2504. k: float,
  2505. ) -> bool:
  2506. """Set AMS tray filament settings including K (pressure advance) value.
  2507. Args:
  2508. ams_id: AMS unit ID (0-3)
  2509. tray_id: Tray ID within the AMS (0-3)
  2510. tray_info_idx: Filament preset ID (e.g., "GFA00")
  2511. tray_type: Filament type (e.g., "PLA", "PETG")
  2512. tray_sub_brands: Sub-brand name (e.g., "PLA Basic", "PETG HF")
  2513. tray_color: Color in RRGGBBAA hex format (e.g., "FFFF00FF")
  2514. nozzle_temp_min: Minimum nozzle temperature
  2515. nozzle_temp_max: Maximum nozzle temperature
  2516. k: Pressure advance (K) value (e.g., 0.020)
  2517. Returns:
  2518. True if command was sent, False otherwise
  2519. """
  2520. if not self._client or not self.state.connected:
  2521. logger.warning(f"[{self.serial_number}] Cannot set AMS filament setting: not connected")
  2522. return False
  2523. command = {
  2524. "print": {
  2525. "command": "ams_filament_setting",
  2526. "ams_id": ams_id,
  2527. "tray_id": tray_id,
  2528. "tray_info_idx": tray_info_idx,
  2529. "tray_type": tray_type,
  2530. "tray_sub_brands": tray_sub_brands,
  2531. "tray_color": tray_color,
  2532. "nozzle_temp_min": nozzle_temp_min,
  2533. "nozzle_temp_max": nozzle_temp_max,
  2534. "k": k,
  2535. "sequence_id": "0",
  2536. }
  2537. }
  2538. command_json = json.dumps(command)
  2539. logger.info(f"[{self.serial_number}] Publishing ams_filament_setting: AMS {ams_id}, tray {tray_id}, k={k}")
  2540. logger.debug(f"[{self.serial_number}] ams_filament_setting command: {command_json}")
  2541. self._client.publish(self.topic_publish, command_json, qos=1)
  2542. return True
  2543. def set_timelapse(self, enable: bool) -> bool:
  2544. """Enable or disable timelapse recording.
  2545. Args:
  2546. enable: True to enable, False to disable
  2547. Returns:
  2548. True if command was sent, False otherwise
  2549. """
  2550. if not self._client or not self.state.connected:
  2551. logger.warning(f"[{self.serial_number}] Cannot set timelapse: not connected")
  2552. return False
  2553. command = {"pushing": {"command": "pushall", "sequence_id": "0"}}
  2554. # First send the timelapse setting
  2555. timelapse_cmd = {
  2556. "print": {"command": "gcode_line", "param": f"M981 S{1 if enable else 0} P20000", "sequence_id": "0"}
  2557. }
  2558. self._client.publish(self.topic_publish, json.dumps(timelapse_cmd), qos=1)
  2559. # Request status update
  2560. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2561. logger.info(f"[{self.serial_number}] Set timelapse {'enabled' if enable else 'disabled'}")
  2562. return True
  2563. def set_liveview(self, enable: bool) -> bool:
  2564. """Enable or disable live view / camera streaming.
  2565. Args:
  2566. enable: True to enable, False to disable
  2567. Returns:
  2568. True if command was sent, False otherwise
  2569. """
  2570. if not self._client or not self.state.connected:
  2571. logger.warning(f"[{self.serial_number}] Cannot set liveview: not connected")
  2572. return False
  2573. command = {
  2574. "xcam": {"command": "ipcam_record_set", "control": "enable" if enable else "disable", "sequence_id": "0"}
  2575. }
  2576. self._client.publish(self.topic_publish, json.dumps(command), qos=1)
  2577. # Request status update
  2578. pushall = {"pushing": {"command": "pushall", "sequence_id": "0"}}
  2579. self._client.publish(self.topic_publish, json.dumps(pushall), qos=1)
  2580. logger.info(f"[{self.serial_number}] Set liveview {'enabled' if enable else 'disabled'}")
  2581. return True