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Rename 'probe' to 'channel' everywhere.
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1##
2## This file is part of the libsigrokdecode project.
3##
4## Copyright (C) 2012-2014 Uwe Hermann <uwe@hermann-uwe.de>
5##
6## This program is free software; you can redistribute it and/or modify
7## it under the terms of the GNU General Public License as published by
8## the Free Software Foundation; either version 2 of the License, or
9## (at your option) any later version.
10##
11## This program is distributed in the hope that it will be useful,
12## but WITHOUT ANY WARRANTY; without even the implied warranty of
13## MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14## GNU General Public License for more details.
15##
16## You should have received a copy of the GNU General Public License
17## along with this program; if not, write to the Free Software
18## Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA
19##
20
21import sigrokdecode as srd
22import calendar
23
24# Return the specified BCD number (max. 8 bits) as integer.
25def bcd2int(b):
26 return (b & 0x0f) + ((b >> 4) * 10)
27
28class Decoder(srd.Decoder):
29 api_version = 1
30 id = 'dcf77'
31 name = 'DCF77'
32 longname = 'DCF77 time protocol'
33 desc = 'European longwave time signal (77.5kHz carrier signal).'
34 license = 'gplv2+'
35 inputs = ['logic']
36 outputs = ['dcf77']
37 channels = (
38 {'id': 'data', 'name': 'DATA', 'desc': 'DATA line'},
39 )
40 annotations = (
41 ('start-of-minute', 'Start of minute'),
42 ('special-bits', 'Special bits (civil warnings, weather forecast)'),
43 ('call-bit', 'Call bit'),
44 ('summer-time', 'Summer time announcement'),
45 ('cest', 'CEST bit'),
46 ('cet', 'CET bit'),
47 ('leap-second', 'Leap second bit'),
48 ('start-of-time', 'Start of encoded time'),
49 ('minute', 'Minute'),
50 ('minute-parity', 'Minute parity bit'),
51 ('hour', 'Hour'),
52 ('hour-parity', 'Hour parity bit'),
53 ('day', 'Day of month'),
54 ('day-of-week', 'Day of week'),
55 ('month', 'Month'),
56 ('year', 'Year'),
57 ('date-parity', 'Date parity bit'),
58 ('raw-bits', 'Raw bits'),
59 ('unknown-bits', 'Unknown bits'),
60 ('warnings', 'Human-readable warnings'),
61 )
62 annotation_rows = (
63 ('bits', 'Bits', (17, 18)),
64 ('fields', 'Fields', tuple(range(0, 16 + 1))),
65 ('warnings', 'Warnings', (19,)),
66 )
67
68 def __init__(self, **kwargs):
69 self.samplerate = None
70 self.state = 'WAIT FOR RISING EDGE'
71 self.oldpins = None
72 self.oldval = None
73 self.samplenum = 0
74 self.ss_bit = self.ss_bit_old = self.es_bit = self.ss_block = 0
75 self.datebits = []
76 self.bitcount = 0 # Counter for the DCF77 bits (0..58)
77 self.dcf77_bitnumber_is_known = 0
78
79 def start(self):
80 # self.out_python = self.register(srd.OUTPUT_PYTHON)
81 self.out_ann = self.register(srd.OUTPUT_ANN)
82
83 def metadata(self, key, value):
84 if key == srd.SRD_CONF_SAMPLERATE:
85 self.samplerate = value
86
87 def putx(self, data):
88 # Annotation for a single DCF77 bit.
89 self.put(self.ss_bit, self.es_bit, self.out_ann, data)
90
91 def putb(self, data):
92 # Annotation for a multi-bit DCF77 field.
93 self.put(self.ss_block, self.samplenum, self.out_ann, data)
94
95 # TODO: Which range to use? Only the 100ms/200ms or full second?
96 def handle_dcf77_bit(self, bit):
97 c = self.bitcount
98
99 # Create one annotation for each DCF77 bit (containing the 0/1 value).
100 # Use 'Unknown DCF77 bit x: val' if we're not sure yet which of the
101 # 0..58 bits it is (because we haven't seen a 'new minute' marker yet).
102 # Otherwise, use 'DCF77 bit x: val'.
103 s = 'B' if self.dcf77_bitnumber_is_known else 'Unknown b'
104 ann = 17 if self.dcf77_bitnumber_is_known else 18
105 self.putx([ann, ['%sit %d: %d' % (s, c, bit), '%d' % bit]])
106
107 # If we're not sure yet which of the 0..58 DCF77 bits we have, return.
108 # We don't want to decode bogus data.
109 if not self.dcf77_bitnumber_is_known:
110 return
111
112 # Collect bits 36-58, we'll need them for a parity check later.
113 if c in range(36, 58 + 1):
114 self.datebits.append(bit)
115
116 # Output specific "decoded" annotations for the respective DCF77 bits.
117 if c == 0:
118 # Start of minute: DCF bit 0.
119 if bit == 0:
120 self.putx([0, ['Start of minute (always 0)',
121 'Start of minute', 'SoM']])
122 else:
123 self.putx([19, ['Start of minute != 0', 'SoM != 0']])
124 elif c in range(1, 14 + 1):
125 # Special bits (civil warnings, weather forecast): DCF77 bits 1-14.
126 if c == 1:
127 self.tmp = bit
128 self.ss_block = self.ss_bit
129 else:
130 self.tmp |= (bit << (c - 1))
131 if c == 14:
132 s = bin(self.tmp)[2:].zfill(14)
133 self.putb([1, ['Special bits: %s' % s, 'SB: %s' % s]])
134 elif c == 15:
135 s = '' if (bit == 1) else 'not '
136 self.putx([2, ['Call bit: %sset' % s, 'CB: %sset' % s]])
137 # TODO: Previously this bit indicated use of the backup antenna.
138 elif c == 16:
139 s = '' if (bit == 1) else 'not '
140 x = 'yes' if (bit == 1) else 'no'
141 self.putx([3, ['Summer time announcement: %sactive' % s,
142 'Summer time: %sactive' % s,
143 'Summer time: %s' % x, 'ST: %s' % x]])
144 elif c == 17:
145 s = '' if (bit == 1) else 'not '
146 x = 'yes' if (bit == 1) else 'no'
147 self.putx([4, ['CEST: %sin effect' % s, 'CEST: %s' % x]])
148 elif c == 18:
149 s = '' if (bit == 1) else 'not '
150 x = 'yes' if (bit == 1) else 'no'
151 self.putx([5, ['CET: %sin effect' % s, 'CET: %s' % x]])
152 elif c == 19:
153 s = '' if (bit == 1) else 'not '
154 x = 'yes' if (bit == 1) else 'no'
155 self.putx([6, ['Leap second announcement: %sactive' % s,
156 'Leap second: %sactive' % s,
157 'Leap second: %s' % x, 'LS: %s' % x]])
158 elif c == 20:
159 # Start of encoded time: DCF bit 20.
160 if bit == 1:
161 self.putx([7, ['Start of encoded time (always 1)',
162 'Start of encoded time', 'SoeT']])
163 else:
164 self.putx([19, ['Start of encoded time != 1', 'SoeT != 1']])
165 elif c in range(21, 27 + 1):
166 # Minutes (0-59): DCF77 bits 21-27 (BCD format).
167 if c == 21:
168 self.tmp = bit
169 self.ss_block = self.ss_bit
170 else:
171 self.tmp |= (bit << (c - 21))
172 if c == 27:
173 m = bcd2int(self.tmp)
174 self.putb([8, ['Minutes: %d' % m, 'Min: %d' % m]])
175 elif c == 28:
176 # Even parity over minute bits (21-28): DCF77 bit 28.
177 self.tmp |= (bit << (c - 21))
178 parity = bin(self.tmp).count('1')
179 s = 'OK' if ((parity % 2) == 0) else 'INVALID!'
180 self.putx([9, ['Minute parity: %s' % s, 'Min parity: %s' % s]])
181 elif c in range(29, 34 + 1):
182 # Hours (0-23): DCF77 bits 29-34 (BCD format).
183 if c == 29:
184 self.tmp = bit
185 self.ss_block = self.ss_bit
186 else:
187 self.tmp |= (bit << (c - 29))
188 if c == 34:
189 self.putb([10, ['Hours: %d' % bcd2int(self.tmp)]])
190 elif c == 35:
191 # Even parity over hour bits (29-35): DCF77 bit 35.
192 self.tmp |= (bit << (c - 29))
193 parity = bin(self.tmp).count('1')
194 s = 'OK' if ((parity % 2) == 0) else 'INVALID!'
195 self.putx([11, ['Hour parity: %s' % s]])
196 elif c in range(36, 41 + 1):
197 # Day of month (1-31): DCF77 bits 36-41 (BCD format).
198 if c == 36:
199 self.tmp = bit
200 self.ss_block = self.ss_bit
201 else:
202 self.tmp |= (bit << (c - 36))
203 if c == 41:
204 self.putb([12, ['Day: %d' % bcd2int(self.tmp)]])
205 elif c in range(42, 44 + 1):
206 # Day of week (1-7): DCF77 bits 42-44 (BCD format).
207 # A value of 1 means Monday, 7 means Sunday.
208 if c == 42:
209 self.tmp = bit
210 self.ss_block = self.ss_bit
211 else:
212 self.tmp |= (bit << (c - 42))
213 if c == 44:
214 d = bcd2int(self.tmp)
215 dn = calendar.day_name[d - 1] # day_name[0] == Monday
216 self.putb([13, ['Day of week: %d (%s)' % (d, dn),
217 'DoW: %d (%s)' % (d, dn)]])
218 elif c in range(45, 49 + 1):
219 # Month (1-12): DCF77 bits 45-49 (BCD format).
220 if c == 45:
221 self.tmp = bit
222 self.ss_block = self.ss_bit
223 else:
224 self.tmp |= (bit << (c - 45))
225 if c == 49:
226 m = bcd2int(self.tmp)
227 mn = calendar.month_name[m] # month_name[1] == January
228 self.putb([14, ['Month: %d (%s)' % (m, mn),
229 'Mon: %d (%s)' % (m, mn)]])
230 elif c in range(50, 57 + 1):
231 # Year (0-99): DCF77 bits 50-57 (BCD format).
232 if c == 50:
233 self.tmp = bit
234 self.ss_block = self.ss_bit
235 else:
236 self.tmp |= (bit << (c - 50))
237 if c == 57:
238 self.putb([15, ['Year: %d' % bcd2int(self.tmp)]])
239 elif c == 58:
240 # Even parity over date bits (36-58): DCF77 bit 58.
241 parity = self.datebits.count(1)
242 s = 'OK' if ((parity % 2) == 0) else 'INVALID!'
243 self.putx([16, ['Date parity: %s' % s, 'DP: %s' %s]])
244 self.datebits = []
245 else:
246 raise Exception('Invalid DCF77 bit: %d' % c)
247
248 def decode(self, ss, es, data):
249 if self.samplerate is None:
250 raise Exception("Cannot decode without samplerate.")
251 for (self.samplenum, pins) in data:
252
253 # Ignore identical samples early on (for performance reasons).
254 if self.oldpins == pins:
255 continue
256 self.oldpins, (val,) = pins, pins
257
258 if self.state == 'WAIT FOR RISING EDGE':
259 # Wait until the next rising edge occurs.
260 if not (self.oldval == 0 and val == 1):
261 self.oldval = val
262 continue
263
264 # Save the sample number where the DCF77 bit begins.
265 self.ss_bit = self.samplenum
266
267 # Calculate the length (in ms) between two rising edges.
268 len_edges = self.ss_bit - self.ss_bit_old
269 len_edges_ms = int((len_edges / self.samplerate) * 1000)
270
271 # The time between two rising edges is usually around 1000ms.
272 # For DCF77 bit 59, there is no rising edge at all, i.e. the
273 # time between DCF77 bit 59 and DCF77 bit 0 (of the next
274 # minute) is around 2000ms. Thus, if we see an edge with a
275 # 2000ms distance to the last one, this edge marks the
276 # beginning of a new minute (and DCF77 bit 0 of that minute).
277 if len_edges_ms in range(1600, 2400 + 1):
278 self.bitcount = 0
279 self.ss_bit_old = self.ss_bit
280 self.dcf77_bitnumber_is_known = 1
281
282 self.ss_bit_old = self.ss_bit
283 self.state = 'GET BIT'
284
285 elif self.state == 'GET BIT':
286 # Wait until the next falling edge occurs.
287 if not (self.oldval == 1 and val == 0):
288 self.oldval = val
289 continue
290
291 # Save the sample number where the DCF77 bit ends.
292 self.es_bit = self.samplenum
293
294 # Calculate the length (in ms) of the current high period.
295 len_high = self.samplenum - self.ss_bit
296 len_high_ms = int((len_high / self.samplerate) * 1000)
297
298 # If the high signal was 100ms long, that encodes a 0 bit.
299 # If it was 200ms long, that encodes a 1 bit.
300 if len_high_ms in range(40, 160 + 1):
301 bit = 0
302 elif len_high_ms in range(161, 260 + 1):
303 bit = 1
304 else:
305 bit = -1 # TODO: Error?
306
307 # There's no bit 59, make sure none is decoded.
308 if bit in (0, 1) and self.bitcount in range(0, 58 + 1):
309 self.handle_dcf77_bit(bit)
310 self.bitcount += 1
311
312 self.state = 'WAIT FOR RISING EDGE'
313
314 else:
315 raise Exception('Invalid state: %s' % self.state)
316
317 self.oldval = val
318