scp.py 6.3 KB

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  1. # greaseweazle/image/scp.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 struct
  8. from greaseweazle.flux import Flux
  9. class SCP:
  10. # 40MHz
  11. sample_freq = 40000000
  12. def __init__(self, start_cyl, nr_sides):
  13. self.start_cyl = start_cyl
  14. self.nr_sides = nr_sides
  15. self.nr_revs = None
  16. self.track_list = []
  17. @classmethod
  18. def to_file(cls, start_cyl, nr_sides):
  19. hfe = cls(start_cyl, nr_sides)
  20. return hfe
  21. @classmethod
  22. def from_file(cls, dat):
  23. header = struct.unpack("<3s9BI", dat[0:16])
  24. (sig, _, _, nr_revs, s_trk, e_trk, flags, _, ss, _, _) = header
  25. assert sig == b"SCP"
  26. nr_sides = 1 if ss else 2
  27. trk_offs = struct.unpack("<168I", dat[16:0x2b0])
  28. scp = cls(s_trk // nr_sides, nr_sides)
  29. scp.nr_revs = nr_revs
  30. for trknr in range(s_trk, e_trk+1):
  31. trk_off = trk_offs[trknr]
  32. if trk_off == 0:
  33. scp.track_list.append((None, None))
  34. # Parse the SCP track header and extract the flux data.
  35. thdr = dat[trk_off:trk_off+4+12*nr_revs]
  36. sig, tnr, _, _, s_off = struct.unpack("<3sB3I", thdr[:16])
  37. assert sig == b"TRK"
  38. assert tnr == trknr
  39. _, e_nr, e_off = struct.unpack("<3I", thdr[-12:])
  40. tdat = dat[trk_off+s_off:trk_off+e_off+e_nr*2]
  41. scp.track_list.append((thdr, tdat))
  42. return scp
  43. def get_track(self, cyl, side, writeout=False):
  44. if side >= self.nr_sides or cyl < self.start_cyl:
  45. return None
  46. off = (cyl - self.start_cyl) * self.nr_sides + side
  47. if off >= len(self.track_list):
  48. return None
  49. tdh, dat = self.track_list[off]
  50. if not dat:
  51. return None
  52. tdh = tdh[4:]
  53. # Writeout requires only a single revolution
  54. if writeout:
  55. tdh = tdh[:12]
  56. _, nr, _ = struct.unpack("<3I", tdh)
  57. dat = dat[:nr*2]
  58. index_list = []
  59. while tdh:
  60. ticks, _, _ = struct.unpack("<3I", tdh[:12])
  61. index_list.append(ticks)
  62. tdh = tdh[12:]
  63. # Decode the SCP flux data into a simple list of flux times.
  64. flux_list = []
  65. val = 0
  66. for i in range(0, len(dat), 2):
  67. x = dat[i]*256 + dat[i+1]
  68. if x == 0:
  69. val += 65536
  70. continue
  71. flux_list.append(val + x)
  72. val = 0
  73. return Flux(index_list, flux_list, SCP.sample_freq)
  74. # append_track:
  75. # Converts a Flux object into a Supercard Pro Track and appends it to
  76. # the current image-in-progress.
  77. def append_track(self, flux):
  78. nr_revs = len(flux.index_list)
  79. if not self.nr_revs:
  80. self.nr_revs = nr_revs
  81. else:
  82. assert self.nr_revs == nr_revs
  83. factor = SCP.sample_freq / flux.sample_freq
  84. trknr = self.start_cyl * self.nr_sides + len(self.track_list)
  85. tdh = struct.pack("<3sB", b"TRK", trknr)
  86. dat = bytearray()
  87. len_at_index = rev = 0
  88. to_index = flux.index_list[0]
  89. rem = 0.0
  90. for x in flux.list:
  91. # Does the next flux interval cross the index mark?
  92. while to_index < x:
  93. # Append to the TDH for the previous full revolution
  94. tdh += struct.pack("<III",
  95. int(round(flux.index_list[rev]*factor)),
  96. (len(dat) - len_at_index) // 2,
  97. 4 + nr_revs*12 + len_at_index)
  98. # Set up for the next revolution
  99. len_at_index = len(dat)
  100. rev += 1
  101. if rev >= nr_revs:
  102. # We're done: We simply discard any surplus flux samples
  103. self.track_list.append((tdh, dat))
  104. return
  105. to_index += flux.index_list[rev]
  106. # Process the current flux sample into SCP "bitcell" format
  107. to_index -= x
  108. y = x * factor + rem
  109. val = int(round(y))
  110. if (val & 65535) == 0:
  111. val += 1
  112. rem = y - val
  113. while val >= 65536:
  114. dat.append(0)
  115. dat.append(0)
  116. val -= 65536
  117. dat.append(val>>8)
  118. dat.append(val&255)
  119. # Header for last track(s) in case we ran out of flux timings.
  120. while rev < nr_revs:
  121. tdh += struct.pack("<III",
  122. int(round(flux.index_list[rev]*factor)),
  123. (len(dat) - len_at_index) // 2,
  124. 4 + nr_revs*12 + len_at_index)
  125. len_at_index = len(dat)
  126. rev += 1
  127. self.track_list.append((tdh, dat))
  128. def get_image(self):
  129. s_trk = self.start_cyl * self.nr_sides
  130. e_trk = s_trk + len(self.track_list) - 1
  131. # Generate the TLUT and concatenate all the tracks together.
  132. trk_offs = bytearray(s_trk * 4)
  133. trk_dat = bytearray()
  134. for tdh, dat in self.track_list:
  135. trk_offs += struct.pack("<I", 0x2b0 + len(trk_dat))
  136. trk_dat += tdh + dat
  137. trk_offs += bytes(0x2a0 - len(trk_offs))
  138. # Calculate checksum over all data (except 16-byte image header).
  139. csum = 0
  140. for x in trk_offs:
  141. csum += x
  142. for x in trk_dat:
  143. csum += x
  144. # Generate the image header.
  145. header = struct.pack("<3s9BI",
  146. b"SCP", # Signature
  147. 0, # Version
  148. 0x80, # DiskType = Other
  149. self.nr_revs, s_trk, e_trk,
  150. 0x01, # Flags = Index
  151. 0, # 16-bit cell width
  152. 1 if self.nr_sides == 1 else 0,
  153. 0, # 25ns capture
  154. csum & 0xffffffff)
  155. # Concatenate it all together and send it back.
  156. return header + trk_offs + trk_dat
  157. # Local variables:
  158. # python-indent: 4
  159. # End: