mfm.py 12 KB

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  1. # greaseweazle/codec/ibm/mfm.py
  2. #
  3. # Written & released by Keir Fraser <keir.xen@gmail.com>
  4. #
  5. # This is free and unencumbered software released into the public domain.
  6. # See the file COPYING for more details, or visit <http://unlicense.org>.
  7. import copy, heapq, struct
  8. import itertools as it
  9. from bitarray import bitarray
  10. import crcmod.predefined
  11. from greaseweazle.track import MasterTrack, RawTrack
  12. default_trackset = 'c=0-79:h=0-1'
  13. default_revs = 2
  14. iam_sync_bytes = b'\x52\x24' * 3
  15. iam_sync = bitarray(endian='big')
  16. iam_sync.frombytes(iam_sync_bytes)
  17. sync_bytes = b'\x44\x89' * 3
  18. sync = bitarray(endian='big')
  19. sync.frombytes(sync_bytes)
  20. crc16 = crcmod.predefined.Crc('crc-ccitt-false')
  21. class TrackArea:
  22. def __init__(self, start, end, crc=None):
  23. self.start = start
  24. self.end = end
  25. self.crc = crc
  26. def delta(self, delta):
  27. self.start -= delta
  28. self.end -= delta
  29. def __eq__(self, x):
  30. return (isinstance(x, type(self))
  31. and self.start == x.start
  32. and self.end == x.end
  33. and self.crc == x.crc)
  34. class IDAM(TrackArea):
  35. def __init__(self, start, end, crc, c, h, r, n):
  36. super().__init__(start, end, crc)
  37. self.c = c
  38. self.h = h
  39. self.r = r
  40. self.n = n
  41. def __str__(self):
  42. return ("IDAM:%6d-%6d c=%02x h=%02x r=%02x n=%02x CRC:%04x"
  43. % (self.start, self.end, self.c, self.h, self.r, self.n,
  44. self.crc))
  45. def __eq__(self, x):
  46. return (super().__eq__(x)
  47. and self.c == x.c and self.h == x.h
  48. and self.r == x.r and self.n == x.n)
  49. def __copy__(self):
  50. return IDAM(self.start, self.end, self.crc,
  51. self.c, self.h, self.r, self.n)
  52. class DAM(TrackArea):
  53. def __init__(self, start, end, crc, mark, data=None):
  54. super().__init__(start, end, crc)
  55. self.mark = mark
  56. self.data = data
  57. def __str__(self):
  58. return "DAM: %6d-%6d mark=%02x" % (self.start, self.end, self.mark)
  59. def __eq__(self, x):
  60. return (super().__eq__(x)
  61. and self.mark == x.mark
  62. and self.data == x.data)
  63. def __copy__(self):
  64. return DAM(self.start, self.end, self.crc, self.mark, self.data)
  65. class Sector(TrackArea):
  66. def __init__(self, idam, dam):
  67. super().__init__(idam.start, dam.end, idam.crc | dam.crc)
  68. self.idam = idam
  69. self.dam = dam
  70. def __str__(self):
  71. s = "Sec: %6d-%6d CRC:%04x\n" % (self.start, self.end, self.crc)
  72. s += " " + str(self.idam) + "\n"
  73. s += " " + str(self.dam)
  74. return s
  75. def delta(self, delta):
  76. super().delta(delta)
  77. self.idam.delta(delta)
  78. self.dam.delta(delta)
  79. def __eq__(self, x):
  80. return (super().__eq__(x)
  81. and self.idam == x.idam
  82. and self.dam == x.dam)
  83. class IAM(TrackArea):
  84. def __str__(self):
  85. return "IAM: %6d-%6d" % (self.start, self.end)
  86. def __copy__(self):
  87. return IAM(self.start, self.end)
  88. class IBM_MFM:
  89. IAM = 0xfc
  90. IDAM = 0xfe
  91. DAM = 0xfb
  92. DDAM = 0xf8
  93. gap_presync = 12
  94. def __init__(self, cyl, head):
  95. self.cyl, self.head = cyl, head
  96. self.filler = 0x4e
  97. self.time_per_rev = 0.2
  98. self.clock = 1e-6
  99. self.sectors = []
  100. self.iams = []
  101. def summary_string(self):
  102. nsec, nbad = len(self.sectors), self.nr_missing()
  103. s = "IBM MFM (%d/%d sectors)" % (nsec - nbad, nsec)
  104. if nbad != 0:
  105. s += " - %d sectors missing" % nbad
  106. return s
  107. def has_sec(self, sec_id):
  108. return self.sectors[sec_id].crc == 0
  109. def nr_missing(self):
  110. return len(list(filter(lambda x: x.crc != 0, self.sectors)))
  111. def flux_for_writeout(self, *args, **kwargs):
  112. return self.raw_track().flux_for_writeout(args, kwargs)
  113. def flux(self, *args, **kwargs):
  114. return self.raw_track().flux(args, kwargs)
  115. def decode_raw(self, track):
  116. track.cue_at_index()
  117. raw = RawTrack(clock = self.clock, data = track)
  118. bits, _ = raw.get_all_data()
  119. areas = []
  120. idam = None
  121. ## 1. Calculate offsets within dump
  122. for offs in bits.itersearch(iam_sync):
  123. mark = decode(bits[offs+3*16:offs+4*16].tobytes())[0]
  124. if mark == IBM_MFM.IAM:
  125. areas.append(IAM(offs, offs+4*16))
  126. self.has_iam = True
  127. for offs in bits.itersearch(sync):
  128. mark = decode(bits[offs+3*16:offs+4*16].tobytes())[0]
  129. if mark == IBM_MFM.IDAM:
  130. s, e = offs, offs+10*16
  131. b = decode(bits[s:e].tobytes())
  132. c,h,r,n = struct.unpack(">4x4B2x", b)
  133. crc = crc16.new(b).crcValue
  134. if idam is not None:
  135. areas.append(idam)
  136. idam = IDAM(s, e, crc, c=c, h=h, r=r, n=n)
  137. elif mark == IBM_MFM.DAM or mark == IBM_MFM.DDAM:
  138. if idam is None or idam.end - offs > 1000:
  139. areas.append(DAM(offs, offs+4*16, 0xffff, mark=mark))
  140. else:
  141. sz = 128 << idam.n
  142. s, e = offs, offs+(4+sz+2)*16
  143. b = decode(bits[s:e].tobytes())
  144. crc = crc16.new(b).crcValue
  145. dam = DAM(s, e, crc, mark=mark, data=b[4:-2])
  146. areas.append(Sector(idam, dam))
  147. idam = None
  148. else:
  149. print("Unknown mark %02x" % mark)
  150. if idam is not None:
  151. areas.append(idam)
  152. # Convert to offsets within track
  153. areas.sort(key=lambda x:x.start)
  154. index = iter(raw.revolutions)
  155. p, n = 0, next(index)
  156. for a in areas:
  157. if a.start >= n:
  158. p = n
  159. try:
  160. n = next(index)
  161. except StopIteration:
  162. n = float('inf')
  163. a.delta(p)
  164. areas.sort(key=lambda x:x.start)
  165. # Add to the deduped lists
  166. for a in areas:
  167. match = False
  168. if isinstance(a, IAM):
  169. list = self.iams
  170. elif isinstance(a, Sector):
  171. list = self.sectors
  172. else:
  173. continue
  174. for s in list:
  175. if abs(s.start - a.start) < 1000:
  176. match = True
  177. break
  178. if match and isinstance(a, Sector) and s.crc != 0 and a.crc == 0:
  179. self.sectors = [x for x in self.sectors if x != a]
  180. match = False
  181. if not match:
  182. list.append(a)
  183. def raw_track(self):
  184. areas = heapq.merge(self.iams, self.sectors, key=lambda x:x.start)
  185. t = bytes()
  186. for a in areas:
  187. start = a.start//16 - self.gap_presync
  188. gap = max(start - len(t)//2, 0)
  189. t += encode(bytes([self.filler] * gap))
  190. t += encode(bytes(self.gap_presync))
  191. if isinstance(a, IAM):
  192. t += iam_sync_bytes
  193. t += encode(bytes([self.IAM]))
  194. elif isinstance(a, Sector):
  195. t += sync_bytes
  196. idam = bytes([0xa1, 0xa1, 0xa1, self.IDAM,
  197. a.idam.c, a.idam.h, a.idam.r, a.idam.n])
  198. idam += struct.pack('>H', crc16.new(idam).crcValue)
  199. t += encode(idam[3:])
  200. start = a.dam.start//16 - self.gap_presync
  201. gap = max(start - len(t)//2, 0)
  202. t += encode(bytes([self.filler] * gap))
  203. t += encode(bytes(self.gap_presync))
  204. t += sync_bytes
  205. dam = bytes([0xa1, 0xa1, 0xa1, a.dam.mark]) + a.dam.data
  206. dam += struct.pack('>H', crc16.new(dam).crcValue)
  207. t += encode(dam[3:])
  208. # Add the pre-index gap.
  209. tlen = int((self.time_per_rev / self.clock) // 16)
  210. gap = max(tlen - len(t)//2, 0)
  211. t += encode(bytes([self.filler] * gap))
  212. track = MasterTrack(
  213. bits = mfm_encode(t),
  214. time_per_rev = self.time_per_rev)
  215. track.verify = self
  216. track.verify_revs = default_revs
  217. return track
  218. class IBM_MFM_Formatted(IBM_MFM):
  219. gap_4a = 80 # Post-Index
  220. gap_1 = 50 # Post-IAM
  221. gap_2 = 22 # Post-IDAM
  222. def __init__(self, cyl, head):
  223. super().__init__(cyl, head)
  224. self.raw_iams, self.raw_sectors = [], []
  225. def decode_raw(self, track):
  226. iams, sectors = self.iams, self.sectors
  227. self.iams, self.sectors = self.raw_iams, self.raw_sectors
  228. super().decode_raw(track)
  229. self.iams, self.sectors = iams, sectors
  230. for r in self.raw_sectors:
  231. if r.idam.crc != 0:
  232. continue
  233. for s in self.sectors:
  234. if (s.idam.c == r.idam.c and
  235. s.idam.h == r.idam.h and
  236. s.idam.r == r.idam.r and
  237. s.idam.n == r.idam.n):
  238. s.idam.crc = 0
  239. if r.dam.crc == 0 and s.dam.crc != 0:
  240. s.dam.crc = s.crc = 0
  241. s.dam.data = r.dam.data
  242. def set_img_track(self, tdat):
  243. pos = 0
  244. self.sectors.sort(key = lambda x: x.idam.r)
  245. for s in self.sectors:
  246. s.crc = s.idam.crc = s.dam.crc = 0
  247. size = 128 << s.idam.n
  248. s.dam.data = tdat[pos:pos+size]
  249. pos += size
  250. self.sectors.sort(key = lambda x: x.start)
  251. def get_img_track(self):
  252. tdat = bytearray()
  253. sectors = self.sectors.copy()
  254. sectors.sort(key = lambda x: x.idam.r)
  255. for s in sectors:
  256. tdat += s.dam.data
  257. return tdat
  258. def verify_track(self, flux):
  259. readback_track = IBM_MFM_Formatted(self.cyl, self.head)
  260. readback_track.clock = self.clock
  261. readback_track.time_per_rev = self.time_per_rev
  262. for x in self.iams:
  263. readback_track.iams.append(copy.copy(x))
  264. for x in self.sectors:
  265. idam, dam = copy.copy(x.idam), copy.copy(x.dam)
  266. idam.crc, dam.crc = 0xffff, 0xffff
  267. readback_track.sectors.append(Sector(idam, dam))
  268. readback_track.decode_raw(flux)
  269. if readback_track.nr_missing() != 0:
  270. return False
  271. return self.sectors == readback_track.sectors
  272. class IBM_MFM_Predefined(IBM_MFM_Formatted):
  273. def __init__(self, cyl, head):
  274. super().__init__(cyl, head)
  275. pos = self.gap_4a
  276. if self.gap_1 is not None:
  277. self.iams = [IAM(pos*16,(pos+4)*16)]
  278. pos += 4 + self.gap_1
  279. for i in range(self.nsec):
  280. pos += self.gap_presync
  281. idam = IDAM(pos*16, (pos+10)*16, 0xffff,
  282. c=cyl, h=head, r=self.id0+i, n = self.sz)
  283. pos += 10 + self.gap_2 + self.gap_presync
  284. size = 128 << self.sz
  285. dam = DAM(pos*16, (pos+4+size+2)*16, 0xffff,
  286. mark=self.DAM, data=bytes(size))
  287. self.sectors.append(Sector(idam, dam))
  288. pos += 4 + size + 2 + self.gap_3
  289. class IBM_MFM_1M44(IBM_MFM_Predefined):
  290. gap_3 = 84 # Post-DAM
  291. nsec = 18
  292. id0 = 1
  293. sz = 2
  294. def mfm_encode(dat):
  295. y = 0
  296. out = bytearray()
  297. for x in dat:
  298. y = (y<<8) | x
  299. if (x & 0xaa) == 0:
  300. y |= ~((y>>1)|(y<<1)) & 0xaaaa
  301. y &= 255
  302. out.append(y)
  303. return bytes(out)
  304. encode_list = []
  305. for x in range(256):
  306. y = 0
  307. for i in range(8):
  308. y <<= 2
  309. y |= (x >> (7-i)) & 1
  310. encode_list.append(y)
  311. def encode(dat):
  312. out = bytearray()
  313. for x in dat:
  314. out += struct.pack('>H', encode_list[x])
  315. return bytes(out)
  316. decode_list = bytearray()
  317. for x in range(0x5555+1):
  318. y = 0
  319. for i in range(16):
  320. if x&(1<<(i*2)):
  321. y |= 1<<i
  322. decode_list.append(y)
  323. def decode(dat):
  324. out = bytearray()
  325. for x,y in zip(dat[::2], dat[1::2]):
  326. out.append(decode_list[((x<<8)|y)&0x5555])
  327. return bytes(out)
  328. def decode_track(cyl, head, track):
  329. mfm = IBM_MFM_1M44(cyl, head)
  330. mfm.decode_raw(track)
  331. return mfm
  332. # Local variables:
  333. # python-indent: 4
  334. # End: