pn5180.py 19 KB

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  1. """PN5180 NFC frontend driver — ported from working Pico firmware (pico-nfc-bridge.ino).
  2. Key learnings from pico-nfc-bridge.ino:
  3. - Must call setTransceiveMode() before every SEND_DATA
  4. - waitBusy() must wait for HIGH then LOW (not just LOW)
  5. - Bambu tags are MIFARE Classic 1K (ISO 14443A), not ISO 15693
  6. - SPI at 500kHz, 5us CS setup, 100us post-CS delay
  7. - MFC_AUTHENTICATE (0x0C) is a PN5180 host command — Crypto1 handled in hardware
  8. - HKDF-SHA256 derives per-sector keys from master key + UID
  9. """
  10. import hashlib
  11. import hmac
  12. import logging
  13. import os
  14. import time
  15. import gpiod
  16. import spidev
  17. logger = logging.getLogger(__name__)
  18. def _env_int(name: str, default: int) -> int:
  19. value = os.environ.get(name)
  20. if value is None or value == "":
  21. return default
  22. try:
  23. return int(value)
  24. except ValueError:
  25. return default
  26. BUSY_PIN = _env_int("SPOOLBUDDY_NFC_BUSY_PIN", 25)
  27. RST_PIN = _env_int("SPOOLBUDDY_NFC_RST_PIN", 24)
  28. NSS_PIN = _env_int("SPOOLBUDDY_NFC_NSS_PIN", 23) # Manual CS by default
  29. SPI_BUS = _env_int("SPOOLBUDDY_NFC_SPI_BUS", 0)
  30. SPI_DEVICE = _env_int("SPOOLBUDDY_NFC_SPI_DEVICE", 0)
  31. SPI_SPEED_HZ = _env_int("SPOOLBUDDY_NFC_SPI_SPEED_HZ", 500_000)
  32. # Bambu Lab MIFARE Classic key derivation constants (from pico-nfc-bridge.ino)
  33. BAMBU_MASTER_KEY = bytes(
  34. [
  35. 0x9A,
  36. 0x75,
  37. 0x9C,
  38. 0xF2,
  39. 0xC4,
  40. 0xF7,
  41. 0xCA,
  42. 0xFF,
  43. 0x22,
  44. 0x2C,
  45. 0xB9,
  46. 0x76,
  47. 0x9B,
  48. 0x41,
  49. 0xBC,
  50. 0x96,
  51. ]
  52. )
  53. BAMBU_CONTEXT = b"RFID-A\x00" # 7 bytes including null terminator
  54. # Blocks to read for Bambu tag data. Block 9 (sector 2) holds the tray UUID,
  55. # the same on both tags of a spool and equal to the AMS's tray_uuid (#984).
  56. BAMBU_BLOCKS = [1, 2, 4, 5, 9]
  57. def hkdf_derive_keys(uid: bytes) -> bytes:
  58. """Derive 96 bytes of MIFARE key material (16 sectors * 6 bytes each).
  59. Uses HKDF-SHA256 with the Bambu master key as salt and the tag UID as IKM.
  60. """
  61. # HKDF-Extract: PRK = HMAC-SHA256(salt=master_key, IKM=uid)
  62. prk = hmac.new(BAMBU_MASTER_KEY, uid, hashlib.sha256).digest()
  63. # HKDF-Expand: generate 96 bytes using context "RFID-A\0"
  64. okm = b""
  65. t = b""
  66. counter = 1
  67. while len(okm) < 96:
  68. t = hmac.new(prk, t + BAMBU_CONTEXT + bytes([counter]), hashlib.sha256).digest()
  69. okm += t
  70. counter += 1
  71. return okm[:96]
  72. def get_sector_key(keys: bytes, block: int) -> bytes:
  73. """Get the 6-byte key for the sector containing the given block."""
  74. sector = block // 4
  75. return keys[sector * 6 : sector * 6 + 6]
  76. def _find_gpio_chip():
  77. for path in ["/dev/gpiochip4", "/dev/gpiochip0"]:
  78. try:
  79. chip = gpiod.Chip(path)
  80. if "pinctrl" in chip.get_info().label:
  81. return chip
  82. chip.close()
  83. except (FileNotFoundError, PermissionError, OSError):
  84. continue
  85. raise RuntimeError("No GPIO chip")
  86. class PN5180:
  87. def __init__(self):
  88. self._chip = _find_gpio_chip()
  89. self._lines = self._chip.request_lines(
  90. consumer="pn5180",
  91. config={
  92. BUSY_PIN: gpiod.LineSettings(direction=gpiod.line.Direction.INPUT),
  93. RST_PIN: gpiod.LineSettings(
  94. direction=gpiod.line.Direction.OUTPUT, output_value=gpiod.line.Value.ACTIVE
  95. ),
  96. NSS_PIN: gpiod.LineSettings(
  97. direction=gpiod.line.Direction.OUTPUT, output_value=gpiod.line.Value.ACTIVE
  98. ),
  99. },
  100. )
  101. self._spi = spidev.SpiDev()
  102. self._spi.open(SPI_BUS, SPI_DEVICE)
  103. self._spi.max_speed_hz = SPI_SPEED_HZ
  104. self._spi.mode = 0b00
  105. # #1424: Pi 5's RP1 spi-rp1 driver rejects SPI_NO_CS, which used to
  106. # work on Pi 4. Harmless either way on this hardware — NSS is wired
  107. # to GPIO23 (manual CS in _cs_low/_cs_high), so the kernel's CE0
  108. # toggling has no electrical effect on the reader.
  109. try:
  110. self._spi.no_cs = True
  111. except OSError as e:
  112. logger.debug("spidev.no_cs not supported (likely Pi 5 RP1 driver): %s", e)
  113. def close(self):
  114. self._spi.close()
  115. self._lines.release()
  116. self._chip.close()
  117. def _cs_low(self):
  118. self._lines.set_value(NSS_PIN, gpiod.line.Value.INACTIVE)
  119. time.sleep(0.000005) # 5us setup
  120. def _cs_high(self):
  121. self._lines.set_value(NSS_PIN, gpiod.line.Value.ACTIVE)
  122. time.sleep(0.000100) # 100us post-CS delay
  123. def _wait_busy(self, timeout_s=1.0):
  124. """Wait for BUSY to go HIGH (processing) then LOW (done) — matches Pico firmware."""
  125. deadline = time.monotonic() + min(timeout_s, 0.010)
  126. # Wait for BUSY HIGH (PN5180 started processing)
  127. while self._lines.get_value(BUSY_PIN) != gpiod.line.Value.ACTIVE:
  128. if time.monotonic() > deadline:
  129. break # Timeout waiting for HIGH — command may have processed already
  130. time.sleep(0.00001)
  131. # Wait for BUSY LOW (PN5180 done)
  132. deadline = time.monotonic() + timeout_s
  133. while self._lines.get_value(BUSY_PIN) == gpiod.line.Value.ACTIVE:
  134. if time.monotonic() > deadline:
  135. raise TimeoutError("BUSY timeout")
  136. time.sleep(0.0001)
  137. def _cmd(self, data):
  138. self._cs_low()
  139. self._spi.xfer2(list(data))
  140. self._cs_high()
  141. self._wait_busy()
  142. def _read_response(self, n):
  143. self._cs_low()
  144. result = self._spi.xfer2([0xFF] * n)
  145. self._cs_high()
  146. return result
  147. # -- Register ops --
  148. def write_reg(self, reg, val):
  149. self._cmd([0x00, reg, val & 0xFF, (val >> 8) & 0xFF, (val >> 16) & 0xFF, (val >> 24) & 0xFF])
  150. def write_reg_or(self, reg, mask):
  151. self._cmd([0x01, reg, mask & 0xFF, (mask >> 8) & 0xFF, (mask >> 16) & 0xFF, (mask >> 24) & 0xFF])
  152. def write_reg_and(self, reg, mask):
  153. self._cmd([0x02, reg, mask & 0xFF, (mask >> 8) & 0xFF, (mask >> 16) & 0xFF, (mask >> 24) & 0xFF])
  154. def read_reg(self, reg):
  155. self._cmd([0x04, reg])
  156. time.sleep(0.000100) # Extra 100us before read
  157. return int.from_bytes(self._read_response(4), "little")
  158. def read_eeprom(self, addr, length):
  159. self._cmd([0x07, addr, length])
  160. time.sleep(0.000100)
  161. return bytes(self._read_response(length))
  162. # -- Commands --
  163. def reset(self):
  164. self._lines.set_value(RST_PIN, gpiod.line.Value.INACTIVE)
  165. time.sleep(0.050)
  166. self._lines.set_value(RST_PIN, gpiod.line.Value.ACTIVE)
  167. time.sleep(0.100)
  168. self._wait_busy(2.0)
  169. time.sleep(0.050)
  170. def load_rf_config(self, tx, rx):
  171. self.write_reg(0x03, 0xFFFFFFFF) # Clear IRQs first
  172. time.sleep(0.000100)
  173. self._cmd([0x11, tx, rx])
  174. time.sleep(0.010)
  175. def rf_on(self):
  176. self._cmd([0x16, 0x00])
  177. time.sleep(0.010)
  178. def rf_off(self):
  179. self._cmd([0x17, 0x00])
  180. time.sleep(0.005)
  181. def set_pin(self, pin: int, value: bool) -> None:
  182. """Set the state of a control pin (NSS or RST). Value: True=ACTIVE, False=INACTIVE."""
  183. if pin not in (NSS_PIN, RST_PIN):
  184. raise ValueError("Only NSS_PIN and RST_PIN can be set via set_pin().")
  185. self._lines.set_value(pin, gpiod.line.Value.ACTIVE if value else gpiod.line.Value.INACTIVE)
  186. def get_pin(self, pin: int) -> bool:
  187. """Get the state of a control pin (NSS or RST). Returns True if ACTIVE, False if INACTIVE."""
  188. if pin not in (NSS_PIN, RST_PIN):
  189. raise ValueError("Only NSS_PIN and RST_PIN can be read via get_pin().")
  190. return self._lines.get_value(pin) == gpiod.line.Value.ACTIVE
  191. def set_transceive_mode(self):
  192. """Set SYSTEM_CONFIG command bits to TRANSCEIVE (0x03) — CRITICAL!"""
  193. sys_cfg = self.read_reg(0x00)
  194. sys_cfg = (sys_cfg & 0xFFFFFFF8) | 0x03
  195. self.write_reg(0x00, sys_cfg)
  196. def send_data(self, data, valid_bits=0x00):
  197. self._cs_low()
  198. self._spi.xfer2([0x09, valid_bits] + list(data))
  199. self._cs_high()
  200. time.sleep(0.000100)
  201. self._wait_busy()
  202. def read_data(self, length):
  203. self._cmd([0x0A, 0x00])
  204. return bytes(self._read_response(length))
  205. # -- ISO 14443A --
  206. def activate_type_a(self):
  207. """Full Type A activation: WUPA -> Anticollision -> SELECT. Returns (uid, sak) or None."""
  208. # Crypto off, CRC off
  209. self.write_reg_and(0x00, 0xFFFFFFBF)
  210. self.write_reg_and(0x12, 0xFFFFFFFE)
  211. self.write_reg_and(0x19, 0xFFFFFFFE)
  212. self.write_reg(0x03, 0xFFFFFFFF)
  213. # Reset to IDLE then TRANSCEIVE
  214. sys_cfg = self.read_reg(0x00)
  215. self.write_reg(0x00, sys_cfg & 0xFFFFFFF8) # IDLE
  216. time.sleep(0.001)
  217. self.write_reg(0x00, (sys_cfg & 0xFFFFFFF8) | 0x03) # TRANSCEIVE
  218. time.sleep(0.002)
  219. # WUPA (7-bit)
  220. self.send_data([0x52], valid_bits=0x07)
  221. time.sleep(0.005)
  222. rx_status = self.read_reg(0x13)
  223. rx_len = rx_status & 0x1FF
  224. if rx_len < 2 or rx_len == 511:
  225. # Try REQA
  226. self.write_reg(0x03, 0xFFFFFFFF)
  227. time.sleep(0.002)
  228. self.set_transceive_mode()
  229. time.sleep(0.002)
  230. self.send_data([0x26], valid_bits=0x07)
  231. time.sleep(0.005)
  232. rx_status = self.read_reg(0x13)
  233. rx_len = rx_status & 0x1FF
  234. if rx_len < 2 or rx_len == 511:
  235. return None
  236. atqa = self.read_data(2)
  237. if atqa[0] == 0xFF or atqa[0] == 0x00:
  238. return None
  239. # Anti-collision Level 1
  240. self.write_reg(0x03, 0xFFFFFFFF)
  241. self.set_transceive_mode()
  242. time.sleep(0.002)
  243. self.send_data([0x93, 0x20])
  244. time.sleep(0.010)
  245. rx_status = self.read_reg(0x13)
  246. rx_len = rx_status & 0x1FF
  247. if rx_len < 5 or rx_len > 64:
  248. return None
  249. uid_buf = self.read_data(5)
  250. uid = uid_buf[:4]
  251. bcc = uid[0] ^ uid[1] ^ uid[2] ^ uid[3]
  252. if bcc != uid_buf[4]:
  253. return None
  254. # SELECT
  255. self.write_reg(0x03, 0xFFFFFFFF)
  256. self.set_transceive_mode()
  257. time.sleep(0.002)
  258. # Enable CRC for SELECT
  259. self.write_reg_or(0x19, 0x01)
  260. self.write_reg_or(0x12, 0x01)
  261. self.send_data([0x93, 0x70, uid[0], uid[1], uid[2], uid[3], bcc])
  262. time.sleep(0.010)
  263. rx_status = self.read_reg(0x13)
  264. rx_len = rx_status & 0x1FF
  265. if rx_len < 1:
  266. return None
  267. sak_buf = self.read_data(min(rx_len, 3))
  268. sak = sak_buf[0]
  269. return bytes(uid), sak
  270. # -- MIFARE Classic --
  271. def mfc_authenticate(self, block: int, key: bytes, uid: bytes) -> bool:
  272. """MIFARE Classic authentication via PN5180 MFC_AUTHENTICATE (0x0C).
  273. The PN5180 handles Crypto1 internally. After success, bit 6 of
  274. SYSTEM_CONFIG is set (MFC_CRYPTO1_ON) and all subsequent RF
  275. communication is encrypted/decrypted by the hardware.
  276. Args:
  277. block: Block number to authenticate
  278. key: 6-byte MIFARE Key A
  279. uid: 4-byte tag UID
  280. Returns:
  281. True if authentication succeeded
  282. """
  283. # Wait for BUSY LOW before starting
  284. deadline = time.monotonic() + 0.100
  285. while self._lines.get_value(BUSY_PIN) == gpiod.line.Value.ACTIVE:
  286. if time.monotonic() > deadline:
  287. return False
  288. time.sleep(0.001)
  289. # MFC_AUTHENTICATE: [0x0C][key 6B][keyType][blockNo][uid 4B] = 13 bytes
  290. cmd = [0x0C] + list(key) + [0x60, block] + list(uid[:4])
  291. self._cs_low()
  292. self._spi.xfer2(cmd)
  293. self._cs_high()
  294. # Wait for BUSY HIGH then LOW (auth can take up to 1s)
  295. self._wait_busy(timeout_s=1.0)
  296. # Read 1-byte response: 0x00 = success
  297. self._cs_low()
  298. response = self._spi.xfer2([0xFF])
  299. self._cs_high()
  300. return response[0] == 0x00
  301. def mfc_read_block(self, block: int) -> bytes | None:
  302. """Read a 16-byte MIFARE Classic block (must be authenticated first).
  303. Returns 16 bytes of block data, or None on failure.
  304. """
  305. # Clear IRQs
  306. self.write_reg(0x03, 0xFFFFFFFF)
  307. # Set transceive mode (Crypto1 stays active from MFC_AUTHENTICATE)
  308. self.set_transceive_mode()
  309. time.sleep(0.001)
  310. # Enable TX and RX CRC for encrypted read
  311. self.write_reg_or(0x19, 0x01)
  312. self.write_reg_or(0x12, 0x01)
  313. # Send MIFARE READ command: 0x30 + block number
  314. self.send_data([0x30, block])
  315. time.sleep(0.010)
  316. # Check RX status
  317. rx_status = self.read_reg(0x13)
  318. rx_len = rx_status & 0x1FF
  319. if rx_len != 16:
  320. return None
  321. return self.read_data(16)
  322. def ntag_read_pages(self, start_page: int, num_pages: int) -> bytes | None:
  323. """Read NTAG pages (4 bytes each). No authentication required.
  324. Uses NTAG READ command (0x30) which returns 4 pages (16 bytes) at a time.
  325. """
  326. # One-time setup: Crypto1 off, TX CRC on, RX CRC off, IDLE→TRANSCEIVE
  327. self.write_reg_and(0x00, 0xFFFFFFBF) # Crypto1 off
  328. self.write_reg_or(0x19, 0x01) # TX CRC on
  329. self.write_reg_and(0x12, 0xFFFFFFFE) # RX CRC off
  330. self.write_reg(0x03, 0xFFFFFFFF) # Clear IRQs
  331. sys_cfg = self.read_reg(0x00)
  332. self.write_reg(0x00, sys_cfg & 0xFFFFFFF8) # IDLE
  333. time.sleep(0.001)
  334. self.write_reg(0x00, (sys_cfg & 0xFFFFFFF8) | 0x03) # TRANSCEIVE
  335. time.sleep(0.002)
  336. result = bytearray()
  337. pages_read = 0
  338. while pages_read < num_pages:
  339. if pages_read > 0:
  340. # Subsequent iterations: just clear IRQs and re-enter TRANSCEIVE
  341. self.write_reg(0x03, 0xFFFFFFFF)
  342. self.set_transceive_mode()
  343. time.sleep(0.001)
  344. # READ command: 0x30 + page number -> returns 16 bytes (4 pages)
  345. self.send_data([0x30, start_page + pages_read])
  346. time.sleep(0.010)
  347. rx_status = self.read_reg(0x13)
  348. rx_len = rx_status & 0x1FF
  349. if rx_len < 16:
  350. logger.warning(
  351. "NTAG read page %d: rx_len=%d (expected >=16), rx_status=0x%08X",
  352. start_page + pages_read,
  353. rx_len,
  354. rx_status,
  355. )
  356. return None
  357. data = self.read_data(16)
  358. pages_to_copy = min(4, num_pages - pages_read)
  359. result.extend(data[: pages_to_copy * 4])
  360. pages_read += 4
  361. return bytes(result)
  362. def reactivate_card(self) -> tuple[bytes, int] | None:
  363. """RF cycle and full re-select of the card. Returns (uid, sak) or None."""
  364. self.rf_off()
  365. time.sleep(0.010)
  366. self.write_reg(0x03, 0xFFFFFFFF) # Clear IRQs
  367. self.load_rf_config(0x00, 0x80) # ISO 14443A
  368. time.sleep(0.005)
  369. self.rf_on()
  370. time.sleep(0.020)
  371. return self.activate_type_a()
  372. def read_bambu_tag(self, uid: bytes) -> dict[int, bytes] | None:
  373. """Read Bambu tag data blocks using HKDF-derived keys.
  374. Args:
  375. uid: 4-byte tag UID (from activate_type_a)
  376. Returns:
  377. Dict mapping block number -> 16 bytes of data, or None on failure
  378. """
  379. # Derive per-sector keys from UID
  380. keys = hkdf_derive_keys(uid)
  381. # Clear Crypto1 state and IRQs
  382. self.write_reg_and(0x00, 0xFFFFFFBF) # Clear MFC_CRYPTO1_ON (bit 6)
  383. self.write_reg(0x03, 0xFFFFFFFF)
  384. # Reactivate card (may have timed out)
  385. result = self.reactivate_card()
  386. if result is None:
  387. logger.debug("Failed to reactivate card for Bambu tag read")
  388. return None
  389. uid_check, _ = result
  390. if uid_check != uid:
  391. logger.debug("UID mismatch after reactivation: %s != %s", uid_check.hex(), uid.hex())
  392. return None
  393. # Read blocks with per-sector authentication
  394. blocks = {}
  395. current_sector = -1
  396. for block in BAMBU_BLOCKS:
  397. sector = block // 4
  398. # Authenticate when entering a new sector
  399. if sector != current_sector:
  400. key = get_sector_key(keys, block)
  401. if not self.mfc_authenticate(block, key, uid):
  402. logger.debug("Auth failed for block %d (sector %d)", block, sector)
  403. return None
  404. current_sector = sector
  405. # Read the block
  406. data = self.mfc_read_block(block)
  407. if data is None:
  408. logger.debug("Read failed for block %d", block)
  409. return None
  410. blocks[block] = data
  411. return blocks
  412. def ntag_write_page(self, page: int, data: bytes) -> bool:
  413. """Write 4 bytes to a single NTAG page.
  414. NTAG WRITE command: 0xA2 + page_number + 4 bytes data.
  415. TX CRC on (tag requires it). Always returns True — the 4-bit ACK
  416. cannot be captured by the PN5180, so verification is deferred to
  417. ntag_write_pages() which reads back all written data.
  418. """
  419. if len(data) != 4:
  420. return False
  421. # Crypto1 off, TX CRC on (tag expects CRC), RX CRC off (ACK is 4-bit, no CRC)
  422. self.write_reg_and(0x00, 0xFFFFFFBF) # Crypto1 off
  423. self.write_reg_or(0x19, 0x01) # TX CRC on
  424. self.write_reg_and(0x12, 0xFFFFFFFE) # RX CRC off
  425. self.write_reg(0x03, 0xFFFFFFFF) # Clear IRQs
  426. # Reset state machine: IDLE then TRANSCEIVE
  427. sys_cfg = self.read_reg(0x00)
  428. self.write_reg(0x00, sys_cfg & 0xFFFFFFF8) # IDLE
  429. time.sleep(0.001)
  430. self.write_reg(0x00, (sys_cfg & 0xFFFFFFF8) | 0x03) # TRANSCEIVE
  431. time.sleep(0.002)
  432. # WRITE command: 0xA2 + page + 4 bytes
  433. self.send_data([0xA2, page] + list(data))
  434. time.sleep(0.010)
  435. # The NTAG ACK is only 4 bits (0x0A). The PN5180 detects SOF but
  436. # cannot capture sub-byte frames — RX_IRQ never fires. Skip ACK
  437. # checking; the tag's SOF response confirms it received the command.
  438. return True
  439. def ntag_write_pages(self, start_page: int, data: bytes) -> bool:
  440. """Write data to consecutive NTAG pages starting at start_page.
  441. Pads last chunk to 4 bytes. Verification is skipped — the PN5180
  442. cannot reliably read back NTAG pages after a batch write (the
  443. second READ command gets no response). The write itself is reliable:
  444. the tag ACKs each page (RX SOF detected on every response).
  445. """
  446. # Pad to 4-byte boundary
  447. padded = bytearray(data)
  448. while len(padded) % 4 != 0:
  449. padded.append(0x00)
  450. # Write page by page
  451. num_pages = len(padded) // 4
  452. for i in range(0, len(padded), 4):
  453. page = start_page + (i // 4)
  454. chunk = bytes(padded[i : i + 4])
  455. if not self.ntag_write_page(page, chunk):
  456. logger.warning("NTAG write failed at page %d (of %d pages)", page, num_pages)
  457. return False
  458. time.sleep(0.002)
  459. logger.info("NTAG write complete (%d pages)", num_pages)
  460. return True
  461. def read_ntag(self, uid: bytes) -> bytes | None:
  462. """Read NTAG pages 4-20 (NDEF data area, 68 bytes). No auth needed.
  463. Used for SpoolEase / OpenPrintTag community tags.
  464. """
  465. # Reactivate card
  466. result = self.reactivate_card()
  467. if result is None:
  468. logger.debug("Failed to reactivate card for NTAG read")
  469. return None
  470. return self.ntag_read_pages(start_page=4, num_pages=17)