195 lines
5.5 KiB
Python
Executable File
195 lines
5.5 KiB
Python
Executable File
#!/usr/bin/env python3
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from timecode import Timecode
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def bitstring_to_bytes(s, bytecount=1, byteorder='big'):
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return int(s, 2).to_bytes(bytecount, byteorder)
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# binary big-endian
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def bbe(n, bits=8):
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# terminal condition
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retval = ''
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if n == 0:
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retval = '0'
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else:
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retval = bbe(n//2, None) + str(n%2)
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if bits is None:
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return retval
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else:
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return (('0'*bits) + retval)[-bits:]
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# binary, little-endian
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def ble(n, bits=8):
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# terminal condition
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retval = ''
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if n == 0:
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retval = '0'
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else:
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retval = str(n%2) + ble(n//2, None)
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if bits is None:
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return retval
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else:
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return (retval + ('0'*bits))[0:bits]
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def cint(n, bytecount=2):
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return int(n).to_bytes(bytecount, byteorder='little')
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def units_tens(n):
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return n % 10, int(n/10)
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##
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## LTC functions
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##
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# GENERATE BINARY-CODED DATA FOR LTC
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# ACCORDING TO https://en.wikipedia.org/wiki/Linear_timecode
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# everything is encoded little endian
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# so to encode the number 3 with four bits, we have 1100
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def ltc_encode(timecode, as_string=False):
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LTC = ''
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HLP = ''
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hrs, mins, secs, frs = timecode.frames_to_tc(timecode.frames)
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frame_units, frame_tens = units_tens(frs)
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secs_units, secs_tens = units_tens(secs)
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mins_units, mins_tens = units_tens(mins)
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hrs_units, hrs_tens = units_tens(hrs)
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#frames units / user bits field 1 / frames tens
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LTC += ble(frame_units,4) + '0000' + ble(frame_tens,2)
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HLP += '---{u}____-{t}'.format(u=frame_units, t=frame_tens)
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#drop frame / color frame / user bits field 2
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LTC += '00'+'0000'
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HLP += '__'+'____'
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#secs units / user bits field 3 / secs tens
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LTC += ble(secs_units,4) + '0000' + ble(secs_tens,3)
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HLP += '---{u}____--{t}'.format(u=secs_units, t=secs_tens)
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# bit 27 flag / user bits field 4
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LTC += '0' + '0000'
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HLP += '_' + '____'
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#mins units / user bits field 5 / mins tens
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LTC += ble(mins_units,4) + '0000' + ble(mins_tens,3)
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HLP += '---{u}____--{t}'.format(u=mins_units, t=mins_tens)
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# bit 43 flag / user bits field 6
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LTC += '0' + '0000'
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HLP += '_' + '____'
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#hrs units / user bits field 7 / hrs tens
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LTC += ble(hrs_units,4) + '0000' + ble(hrs_tens,2)
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HLP += '---{u}____--{t}'.format(u=hrs_units, t=hrs_tens)
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# bit 58 clock flag / bit 59 flag / user bits field 8
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LTC += '0' + '0' + '0000'
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HLP += '_' + '_' + '____'
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# sync word
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LTC += '0011111111111101'
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HLP += '################'
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if as_string:
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return LTC
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else:
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return bitstring_to_bytes(LTC, bytecount=10)
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##
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## MTC functions
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##
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def mtc_encode(timecode, as_string=False):
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# MIDI bytes are little-endian
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# Byte 0
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# 0rrhhhhh: Rate (0–3) and hour (0–23).
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# rr = 000: 24 frames/s
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# rr = 001: 25 frames/s
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# rr = 010: 29.97 frames/s (SMPTE drop-frame timecode)
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# rr = 011: 30 frames/s
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# Byte 1
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# 00mmmmmm: Minute (0–59)
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# Byte 2
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# 00ssssss: Second (0–59)
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# Byte 3
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# 000fffff: Frame (0–29, or less at lower frame rates)
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hrs, mins, secs, frs = timecode.frames_to_tc(timecode.frames)
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framerate = timecode.framerate
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rateflags = {
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'24': 0,
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'25': 1,
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'29.97': 2,
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'30': 3
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}
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rateflag = rateflags[framerate] * 32 # multiply by 32, because the rate flag starts at bit 6
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# print('{:8} {:8} {:8} {:8}'.format(hrs, mins, secs, frs))
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if as_string:
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b0 = bbe(rateflag + hrs, 8)
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b1 = bbe(mins)
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b2 = bbe(secs)
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b3 = bbe(frs)
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# print('{:8} {:8} {:8} {:8}'.format(b0, b1, b2, b3))
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return b0+b1+b2+b3
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else:
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b = bytearray([rateflag + hrs, mins, secs, frs])
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# debug_string = ' 0x{:02} 0x{:02} 0x{:02} 0x{:02}'
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# debug_array = [ord(b[0]), ord(b[1]), ord(b[2]), ord(b[3])]
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# print(debug_string.format(debug_array))
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return b
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# convert a bytearray back to timecode
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def mtc_decode(mtc_bytes):
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rhh, mins, secs, frs = mtc_bytes
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rateflag = rhh >> 5
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hrs = rhh & 31
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fps = ['24','25','29.97','30'][rateflag]
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total_frames = int(frs + float(fps) * (secs + mins * 60 + hrs * 60 * 60))
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return Timecode(fps, frames=total_frames)
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def mtc_full_frame(timecode):
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# if sending this to a MIDI device, remember that MIDI is generally little endian
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# but the full frame timecode bytes are big endian
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mtc_bytes = mtc_encode(timecode)
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# mtc full frame has a special header and ignores the rate flag
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return bytearray([0xf0, 0x7f, 0x7f, 0x01, 0x01]) + mtc_bytes + bytearray([0xf7])
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def mtc_decode_full_frame(full_frame_bytes):
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mtc_bytes = full_frame_bytes[5:-1]
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return mtc_decode(mtc_bytes)
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def mtc_quarter_frame(timecode, piece=0):
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# there are 8 different mtc_quarter frame pieces
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# see https://en.wikipedia.org/wiki/MIDI_timecode
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# and https://web.archive.org/web/20120212181214/http://home.roadrunner.com/~jgglatt/tech/mtc.htm
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# these are little-endian bytes
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# piece 0 : 0xF1 0000 ffff frame
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mtc_bytes = mtc_encode(timecode)
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this_byte = mtc_bytes[3 - piece//2] #the order of pieces is the reverse of the mtc_encode
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if piece % 2 == 0:
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# even pieces get the low nibble
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nibble = this_byte & 15
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else:
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# odd pieces get the high nibble
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nibble = this_byte >> 4
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return bytearray([0xf1, piece * 16 + nibble])
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def mtc_decode_quarter_frames(frame_pieces):
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mtc_bytes = bytearray(4)
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if len(frame_pieces) < 8:
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return None
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for piece in range(8):
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mtc_index = 3 - piece//2 # quarter frame pieces are in reverse order of mtc_encode
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this_frame = frame_pieces[piece]
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if this_frame is bytearray or this_frame is list:
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this_frame = this_frame[1]
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data = this_frame & 15 # ignore the frame_piece marker bits
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if piece % 2 == 0:
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# 'even' pieces came from the low nibble
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# and the first piece is 0, so it's even
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mtc_bytes[mtc_index] += data
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else:
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# 'odd' pieces came from the high nibble
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mtc_bytes[mtc_index] += data * 16
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return mtc_decode(mtc_bytes)
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