]> sigrok.org Git - libsigrokdecode.git/blame - decoders/edid/pd.py
Drop obsolete report() method.
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91b2e171 1##
50bd5d25 2## This file is part of the libsigrokdecode project.
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3##
4## Copyright (C) 2012 Bert Vermeulen <bert@biot.com>
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 3 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, see <http://www.gnu.org/licenses/>.
18##
19
156509ca
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20# EDID protocol decoder
21
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22# TODO:
23# - EDID < 1.3
1063646c 24# - add short annotations
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25# - Signal level standard field in basic display parameters block
26# - Additional color point descriptors
27# - Additional standard timing descriptors
28# - Extensions
29
30import sigrokdecode as srd
31import os
32
33EDID_HEADER = [0x00, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0x00]
34OFF_VENDOR = 8
35OFF_VERSION = 18
36OFF_BASIC = 20
37OFF_CHROM = 25
38OFF_EST_TIMING = 35
39OFF_STD_TIMING = 38
40OFF_DET_TIMING = 54
41OFF_NUM_EXT = 126
42OFF_CHECKSUM = 127
43
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44# Pre-EDID established timing modes
45est_modes = [
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46 '720x400@70Hz',
47 '720x400@88Hz',
48 '640x480@60Hz',
49 '640x480@67Hz',
50 '640x480@72Hz',
51 '640x480@75Hz',
52 '800x600@56Hz',
53 '800x600@60Hz',
54 '800x600@72Hz',
55 '800x600@75Hz',
56 '832x624@75Hz',
57 '1024x768@87Hz(i)',
58 '1024x768@60Hz',
59 '1024x768@70Hz',
60 '1024x768@75Hz',
61 '1280x1024@75Hz',
62 '1152x870@75Hz',
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63]
64
65# X:Y display aspect ratios, as used in standard timing modes
66xy_ratio = [
67 (16, 10),
68 (4, 3),
69 (5, 4),
e4f82268 70 (16, 9),
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71]
72
73# Annotation types
74ANN_FIELDS = 0
75ANN_SECTIONS = 1
76
77class Decoder(srd.Decoder):
78 api_version = 1
79 id = 'edid'
80 name = 'EDID'
b7a7e6f5 81 longname = 'Extended Display Identification Data'
a465436e 82 desc = 'Data structure describing display device capabilities.'
91b2e171 83 license = 'gplv3+'
9e1437a0 84 inputs = ['i2c']
91b2e171 85 outputs = ['edid']
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86 probes = []
87 optional_probes = []
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88 options = {}
89 annotations = [
90 ['EDID fields', 'EDID structure fields'],
91 ['EDID sections', 'EDID structure sections'],
92 ]
93
94 def __init__(self, **kwargs):
95 self.state = None
96 # Received data items, used as an index into samplenum/data
97 self.cnt = 0
98 # Start/end sample numbers per data item
99 self.sn = []
100 # Received data
101 self.cache = []
102
8915b346 103 def start(self):
be465111 104 self.out_ann = self.register(srd.OUTPUT_ANN)
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105
106 def decode(self, ss, es, data):
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107 cmd, data = data
108
109 # We only care about actual data bytes that are read (for now).
110 if cmd != 'DATA READ':
111 return
112
91b2e171 113 self.cnt += 1
e4f82268 114 self.sn.append([ss, es])
91b2e171 115 self.cache.append(data)
2a706c20 116 # debug
09059016 117# self.put(ss, es, self.out_ann, [0, ['%d: [%.2x]' % (self.cnt, data)]])
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118
119 if self.state is None:
120 # Wait for the EDID header
121 if self.cnt >= OFF_VENDOR:
122 if self.cache[-8:] == EDID_HEADER:
123 # Throw away any garbage before the header
124 self.sn = self.sn[-8:]
125 self.cache = self.cache[-8:]
2a706c20 126 self.cnt = 8
91b2e171 127 self.state = 'edid'
09059016 128 self.put(ss, es, self.out_ann, [0, ['EDID header']])
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129 elif self.state == 'edid':
130 if self.cnt == OFF_VERSION:
131 self.decode_vid(-10)
132 self.decode_pid(-8)
133 self.decode_serial(-6)
134 self.decode_mfrdate(-2)
135 elif self.cnt == OFF_BASIC:
09059016 136 version = 'EDID version: %d.%d' % (self.cache[-2], self.cache[-1])
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137 self.put(ss, es, self.out_ann, [0, [version]])
138 elif self.cnt == OFF_CHROM:
139 self.decode_basicdisplay(-5)
140 elif self.cnt == OFF_EST_TIMING:
141 self.decode_chromaticity(-10)
142 elif self.cnt == OFF_STD_TIMING:
143 self.decode_est_timing(-3)
144 elif self.cnt == OFF_DET_TIMING:
145 self.decode_std_timing(-16)
146 elif self.cnt == OFF_NUM_EXT:
147 self.decode_descriptors(-72)
148 elif self.cnt == OFF_CHECKSUM:
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149 self.put(ss, es, self.out_ann,
150 [0, ['Extensions present: %d' % self.cache[self.cnt-1]]])
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151 elif self.cnt == OFF_CHECKSUM+1:
152 checksum = 0
153 for i in range(128):
154 checksum += self.cache[i]
155 if checksum % 256 == 0:
09059016 156 csstr = 'OK'
91b2e171 157 else:
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158 csstr = 'WRONG!'
159 self.put(ss, es, self.out_ann, [0, ['Checksum: %d (%s)' % (
160 self.cache[self.cnt-1], csstr)]])
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161 self.state = 'extensions'
162 elif self.state == 'extensions':
163 pass
164
165 def ann_field(self, start, end, annotation):
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166 self.put(self.sn[start][0], self.sn[end][1],
167 self.out_ann, [ANN_FIELDS, [annotation]])
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168
169 def lookup_pnpid(self, pnpid):
1063646c 170 pnpid_file = os.path.join(os.path.dirname(__file__), 'pnpids.txt')
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171 if os.path.exists(pnpid_file):
172 for line in open(pnpid_file).readlines():
173 if line.find(pnpid + ';') == 0:
174 return line[4:].strip()
175 return ''
176
177 def decode_vid(self, offset):
178 pnpid = chr(64 + ((self.cache[offset] & 0x7c) >> 2))
179 pnpid += chr(64 + (((self.cache[offset] & 0x03) << 3)
180 | ((self.cache[offset+1] & 0xe0) >> 5)))
181 pnpid += chr(64 + (self.cache[offset+1] & 0x1f))
182 vendor = self.lookup_pnpid(pnpid)
183 if vendor:
09059016 184 pnpid += ' (%s)' % vendor
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185 self.ann_field(offset, offset+1, pnpid)
186
187 def decode_pid(self, offset):
09059016 188 pidstr = 'Product 0x%.2x%.2x' % (self.cache[offset+1], self.cache[offset])
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189 self.ann_field(offset, offset+1, pidstr)
190
191 def decode_serial(self, offset):
192 serialnum = (self.cache[offset+3] << 24) \
193 + (self.cache[offset+2] << 16) \
194 + (self.cache[offset+1] << 8) \
195 + self.cache[offset]
196 serialstr = ''
197 is_alnum = True
198 for i in range(4):
199 if not chr(self.cache[offset+3-i]).isalnum():
200 is_alnum = False
201 break
202 serialstr += chr(self.cache[offset+3-i])
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203 serial = serialstr if is_alnum else str(serialnum)
204 self.ann_field(offset, offset+3, 'Serial ' + serial)
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205
206 def decode_mfrdate(self, offset):
207 datestr = ''
208 if self.cache[offset]:
09059016 209 datestr += 'week %d, ' % self.cache[offset]
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210 datestr += str(1990 + self.cache[offset+1])
211 if datestr:
09059016 212 self.ann_field(offset, offset+1, 'Manufactured ' + datestr)
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213
214 def decode_basicdisplay(self, offset):
215 # Video input definition
216 vid = self.cache[offset]
217 if vid & 0x80:
218 # Digital
09059016 219 self.ann_field(offset, offset, 'Video input: VESA DFP 1.')
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220 else:
221 # Analog
222 sls = (vid & 60) >> 5
09059016 223 self.ann_field(offset, offset, 'Signal level standard: %.2x' % sls)
91b2e171 224 if vid & 0x10:
09059016 225 self.ann_field(offset, offset, 'Blank-to-black setup expected')
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226 syncs = ''
227 if vid & 0x08:
228 syncs += 'separate syncs, '
229 if vid & 0x04:
230 syncs += 'composite syncs, '
231 if vid & 0x02:
232 syncs += 'sync on green, '
233 if vid & 0x01:
234 syncs += 'Vsync serration required, '
235 if syncs:
09059016 236 self.ann_field(offset, offset, 'Supported syncs: %s' % syncs[:-2])
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237 # Max horizontal/vertical image size
238 if self.cache[offset+1] != 0 and self.cache[offset+2] != 0:
239 # Projectors have this set to 0
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240 sizestr = '%dx%dcm' % (self.cache[offset+1], self.cache[offset+2])
241 self.ann_field(offset+1, offset+2, 'Physical size: ' + sizestr)
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242 # Display transfer characteristic (gamma)
243 if self.cache[offset+3] != 0xff:
244 gamma = (self.cache[offset+3] + 100) / 100
09059016 245 self.ann_field(offset+3, offset+3, 'Gamma: %1.2f' % gamma)
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246 # Feature support
247 fs = self.cache[offset+4]
248 dpms = ''
249 if fs & 0x80:
250 dpms += 'standby, '
251 if fs & 0x40:
252 dpms += 'suspend, '
253 if fs & 0x20:
254 dpms += 'active off, '
255 if dpms:
09059016 256 self.ann_field(offset+4, offset+4, 'DPMS support: %s' % dpms[:-2])
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257 dt = (fs & 0x18) >> 3
258 dtstr = ''
259 if dt == 0:
260 dtstr = 'Monochrome'
261 elif dt == 1:
262 dtstr = 'RGB color'
263 elif dt == 2:
e4f82268 264 dtstr = 'non-RGB multicolor'
91b2e171 265 if dtstr:
09059016 266 self.ann_field(offset+4, offset+4, 'Display type: %s' % dtstr)
91b2e171 267 if fs & 0x04:
09059016 268 self.ann_field(offset+4, offset+4, 'Color space: standard sRGB')
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269 # Save this for when we decode the first detailed timing descriptor
270 self.have_preferred_timing = (fs & 0x02) == 0x02
271 if fs & 0x01:
272 gft = ''
273 else:
274 gft = 'not '
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275 self.ann_field(offset+4, offset+4,
276 'Generalized timing formula: %ssupported' % gft)
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277
278 def convert_color(self, value):
279 # Convert from 10-bit packet format to float
280 outval = 0.0
281 for i in range(10):
282 if value & 0x01:
283 outval += 2 ** -(10-i)
284 value >>= 1
285 return outval
286
287 def decode_chromaticity(self, offset):
288 redx = (self.cache[offset+2] << 2) + ((self.cache[offset] & 0xc0) >> 6)
289 redy = (self.cache[offset+3] << 2) + ((self.cache[offset] & 0x30) >> 4)
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290 self.ann_field(offset, offset+9, 'Chromacity red: X %1.3f, Y %1.3f' % (
291 self.convert_color(redx), self.convert_color(redy)))
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292
293 greenx = (self.cache[offset+4] << 2) + ((self.cache[offset] & 0x0c) >> 6)
294 greeny = (self.cache[offset+5] << 2) + ((self.cache[offset] & 0x03) >> 4)
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295 self.ann_field(offset, offset+9, 'Chromacity green: X %1.3f, Y %1.3f' % (
296 self.convert_color(greenx), self.convert_color(greeny)))
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297
298 bluex = (self.cache[offset+6] << 2) + ((self.cache[offset+1] & 0xc0) >> 6)
299 bluey = (self.cache[offset+7] << 2) + ((self.cache[offset+1] & 0x30) >> 4)
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300 self.ann_field(offset, offset+9, 'Chromacity blue: X %1.3f, Y %1.3f' % (
301 self.convert_color(bluex), self.convert_color(bluey)))
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302
303 whitex = (self.cache[offset+8] << 2) + ((self.cache[offset+1] & 0x0c) >> 6)
304 whitey = (self.cache[offset+9] << 2) + ((self.cache[offset+1] & 0x03) >> 4)
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305 self.ann_field(offset, offset+9, 'Chromacity white: X %1.3f, Y %1.3f' % (
306 self.convert_color(whitex), self.convert_color(whitey)))
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307
308 def decode_est_timing(self, offset):
309 # Pre-EDID modes
310 bitmap = (self.cache[offset] << 9) \
311 + (self.cache[offset+1] << 1) \
312 + ((self.cache[offset+2] & 0x80) >> 7)
313 modestr = ''
314 for i in range(17):
315 if bitmap & (1 << (16-i)):
316 modestr += est_modes[i] + ', '
317 if modestr:
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318 self.ann_field(offset, offset+2,
319 'Supported establised modes: %s' % modestr[:-2])
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320
321 def decode_std_timing(self, offset):
322 modestr = ''
323 for i in range(0, 16, 2):
324 if self.cache[offset+i] == 0x01 and self.cache[offset+i+1] == 0x01:
325 # Unused field
326 continue
327 x = (self.cache[offset+i] + 31) * 8
328 ratio = (self.cache[offset+i+1] & 0xc0) >> 6
329 ratio_x, ratio_y = xy_ratio[ratio]
330 y = x / ratio_x * ratio_y
331 refresh = (self.cache[offset+i+1] & 0x3f) + 60
09059016 332 modestr += '%dx%d@%dHz, ' % (x, y, refresh)
91b2e171 333 if modestr:
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334 self.ann_field(offset, offset+2,
335 'Supported standard modes: %s' % modestr[:-2])
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336
337 def decode_detailed_timing(self, offset):
338 if offset == -72 and self.have_preferred_timing:
339 # Only on first detailed timing descriptor
340 section = 'Preferred'
341 else:
342 section = 'Detailed'
343 section += ' timing descriptor'
344 self.put(self.sn[offset][0], self.sn[offset+18][1],
345 self.out_ann, [ANN_SECTIONS, [section]])
346
347 pixclock = float((self.cache[offset+1] << 8) + self.cache[offset]) / 100
09059016 348 self.ann_field(offset, offset+1, 'Pixel clock: %.2f MHz' % pixclock)
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349
350 horiz_active = ((self.cache[offset+4] & 0xf0) << 4) + self.cache[offset+2]
09059016 351 self.ann_field(offset+2, offset+4, 'Horizontal active: %d' % horiz_active)
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352
353 horiz_blank = ((self.cache[offset+4] & 0x0f) << 8) + self.cache[offset+3]
09059016 354 self.ann_field(offset+3, offset+4, 'Horizontal blanking: %d' % horiz_blank)
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355
356 vert_active = ((self.cache[offset+7] & 0xf0) << 4) + self.cache[offset+5]
09059016 357 self.ann_field(offset+5, offset+7, 'Vertical active: %d' % vert_active)
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358
359 vert_blank = ((self.cache[offset+7] & 0x0f) << 8) + self.cache[offset+6]
09059016 360 self.ann_field(offset+6, offset+7, 'Vertical blanking: %d' % vert_blank)
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361
362 horiz_sync_off = ((self.cache[offset+11] & 0xc0) << 2) + self.cache[offset+8]
09059016 363 self.ann_field(offset+8, offset+11, 'Horizontal sync offset: %d' % horiz_sync_off)
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364
365 horiz_sync_pw = ((self.cache[offset+11] & 0x30) << 4) + self.cache[offset+9]
09059016 366 self.ann_field(offset+9, offset+11, 'Horizontal sync pulse width: %d' % horiz_sync_pw)
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367
368 vert_sync_off = ((self.cache[offset+11] & 0x0c) << 2) \
369 + ((self.cache[offset+10] & 0xf0) >> 4)
09059016 370 self.ann_field(offset+10, offset+11, 'Vertical sync offset: %d' % vert_sync_off)
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371
372 vert_sync_pw = ((self.cache[offset+11] & 0x03) << 4) \
373 + (self.cache[offset+10] & 0x0f)
09059016 374 self.ann_field(offset+10, offset+11, 'Vertical sync pulse width: %d' % vert_sync_pw)
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375
376 horiz_size = ((self.cache[offset+14] & 0xf0) << 4) + self.cache[offset+12]
377 vert_size = ((self.cache[offset+14] & 0x0f) << 8) + self.cache[offset+13]
09059016 378 self.ann_field(offset+12, offset+14, 'Physical size: %dx%dmm' % (horiz_size, vert_size))
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379
380 horiz_border = self.cache[offset+15]
381 if horiz_border:
09059016 382 self.ann_field(offset+15, offset+15, 'Horizontal border: %d pixels' % horiz_border)
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383 vert_border = self.cache[offset+16]
384 if vert_border:
09059016 385 self.ann_field(offset+16, offset+16, 'Vertical border: %d lines' % vert_border)
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386
387 features = 'Flags: '
388 if self.cache[offset+17] & 0x80:
389 features += 'interlaced, '
390 stereo = (self.cache[offset+17] & 0x60) >> 5
391 if stereo:
392 if self.cache[offset+17] & 0x01:
393 features += '2-way interleaved stereo ('
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394 features += ['right image on even lines',
395 'left image on even lines',
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396 'side-by-side'][stereo-1]
397 features += '), '
398 else:
399 features += 'field sequential stereo ('
400 features += ['right image on sync=1', 'left image on sync=1',
401 '4-way interleaved'][stereo-1]
402 features += '), '
403 sync = (self.cache[offset+17] & 0x18) >> 3
404 sync2 = (self.cache[offset+17] & 0x06) >> 1
405 posneg = ['negative', 'positive']
406 features += 'sync type '
407 if sync == 0x00:
408 features += 'analog composite (serrate on RGB)'
409 elif sync == 0x01:
410 features += 'bipolar analog composite (serrate on RGB)'
411 elif sync == 0x02:
412 features += 'digital composite (serrate on composite polarity ' \
09059016 413 + (posneg[sync2 & 0x01]) + ')'
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414 elif sync == 0x03:
415 features += 'digital separate ('
2a706c20 416 features += 'Vsync polarity ' + (posneg[(sync2 & 0x02) >> 1])
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417 features += ', Hsync polarity ' + (posneg[sync2 & 0x01])
418 features += ')'
419 features += ', '
420 self.ann_field(offset+17, offset+17, features[:-2])
421
422 def decode_descriptor(self, offset):
423 tag = self.cache[offset+3]
424 if tag == 0xff:
425 # Monitor serial number
426 text = bytes(self.cache[offset+5:][:13]).decode(encoding='cp437', errors='replace')
09059016 427 self.ann_field(offset, offset+17, 'Serial number: %s' % text.strip())
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428 elif tag == 0xfe:
429 # Text
430 text = bytes(self.cache[offset+5:][:13]).decode(encoding='cp437', errors='replace')
09059016 431 self.ann_field(offset, offset+17, 'Info: %s' % text.strip())
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432 elif tag == 0xfc:
433 # Monitor name
434 text = bytes(self.cache[offset+5:][:13]).decode(encoding='cp437', errors='replace')
09059016 435 self.ann_field(offset, offset+17, 'Model name: %s' % text.strip())
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436 elif tag == 0xfd:
437 # Monitor range limits
438 self.put(self.sn[offset][0], self.sn[offset+17][1], self.out_ann,
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439 [ANN_SECTIONS, ['Monitor range limits']])
440 self.ann_field(offset+5, offset+5, 'Minimum vertical rate: %dHz' %
91b2e171 441 self.cache[offset+5])
09059016 442 self.ann_field(offset+6, offset+6, 'Maximum vertical rate: %dHz' %
91b2e171 443 self.cache[offset+6])
09059016 444 self.ann_field(offset+7, offset+7, 'Minimum horizontal rate: %dkHz' %
91b2e171 445 self.cache[offset+7])
09059016 446 self.ann_field(offset+8, offset+8, 'Maximum horizontal rate: %dkHz' %
91b2e171 447 self.cache[offset+8])
09059016 448 self.ann_field(offset+9, offset+9, 'Maximum pixel clock: %dMHz' %
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449 (self.cache[offset+9] * 10))
450 if self.cache[offset+10] == 0x02:
451 # Secondary GTF curve supported
09059016 452 self.ann_field(offset+10, offset+17, 'Secondary timing formula supported')
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453 elif tag == 0xfb:
454 # Additional color point data
455 self.put(self.sn[offset][0], self.sn[offset+17][1], self.out_ann,
09059016 456 [ANN_SECTIONS, ['Additional color point data']])
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457 elif tag == 0xfa:
458 # Additional standard timing definitions
459 self.put(self.sn[offset][0], self.sn[offset+17][1], self.out_ann,
09059016 460 [ANN_SECTIONS, ['Additional standard timing definitions']])
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461 else:
462 self.put(self.sn[offset][0], self.sn[offset+17][1], self.out_ann,
09059016 463 [ANN_SECTIONS, ['Unknown descriptor']])
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464
465 def decode_descriptors(self, offset):
466 # 4 consecutive 18-byte descriptor blocks
467 for i in range(offset, 0, 18):
468 if self.cache[i] != 0 and self.cache[i+1] != 0:
469 self.decode_detailed_timing(i)
470 else:
1063646c 471 if self.cache[i+2] == 0 or self.cache[i+4] == 0:
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472 self.decode_descriptor(i)
473