cec: and more LG hacks
[deb_libcec.git] / src / lib / CECProcessor.cpp
1 /*
2 * This file is part of the libCEC(R) library.
3 *
4 * libCEC(R) is Copyright (C) 2011 Pulse-Eight Limited. All rights reserved.
5 * libCEC(R) is an original work, containing original code.
6 *
7 * libCEC(R) is a trademark of Pulse-Eight Limited.
8 *
9 * This program is dual-licensed; you can redistribute it and/or modify
10 * it under the terms of the GNU General Public License as published by
11 * the Free Software Foundation; either version 2 of the License, or
12 * (at your option) any later version.
13 *
14 * This program is distributed in the hope that it will be useful,
15 * but WITHOUT ANY WARRANTY; without even the implied warranty of
16 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 * GNU General Public License for more details.
18 *
19 * You should have received a copy of the GNU General Public License
20 * along with this program; if not, write to the Free Software
21 * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
22 *
23 *
24 * Alternatively, you can license this library under a commercial license,
25 * please contact Pulse-Eight Licensing for more information.
26 *
27 * For more information contact:
28 * Pulse-Eight Licensing <license@pulse-eight.com>
29 * http://www.pulse-eight.com/
30 * http://www.pulse-eight.net/
31 */
32
33 #include "CECProcessor.h"
34
35 #include "AdapterCommunication.h"
36 #include "devices/CECBusDevice.h"
37 #include "devices/CECAudioSystem.h"
38 #include "devices/CECPlaybackDevice.h"
39 #include "devices/CECRecordingDevice.h"
40 #include "devices/CECTuner.h"
41 #include "devices/CECTV.h"
42 #include "implementations/CECCommandHandler.h"
43 #include "LibCEC.h"
44 #include "util/StdString.h"
45 #include "platform/timeutils.h"
46
47 using namespace CEC;
48 using namespace std;
49
50 CCECProcessor::CCECProcessor(CLibCEC *controller, const char *strDeviceName, cec_logical_address iLogicalAddress /* = CECDEVICE_PLAYBACKDEVICE1 */, uint16_t iPhysicalAddress /* = CEC_DEFAULT_PHYSICAL_ADDRESS*/) :
51 m_bStarted(false),
52 m_iHDMIPort(CEC_DEFAULT_HDMI_PORT),
53 m_iBaseDevice((cec_logical_address)CEC_DEFAULT_BASE_DEVICE),
54 m_lastInitiator(CECDEVICE_UNKNOWN),
55 m_strDeviceName(strDeviceName),
56 m_controller(controller),
57 m_bMonitor(false),
58 m_busScan(NULL),
59 m_iStandardLineTimeout(3),
60 m_iRetryLineTimeout(3),
61 m_iLastTransmission(0)
62 {
63 m_communication = new CAdapterCommunication(this);
64 m_logicalAddresses.Clear();
65 m_logicalAddresses.Set(iLogicalAddress);
66 m_types.clear();
67 for (int iPtr = 0; iPtr <= 16; iPtr++)
68 m_busDevices[iPtr] = new CCECBusDevice(this, (cec_logical_address) iPtr, iPtr == iLogicalAddress ? iPhysicalAddress : 0);
69 }
70
71 CCECProcessor::CCECProcessor(CLibCEC *controller, const char *strDeviceName, const cec_device_type_list &types) :
72 m_bStarted(false),
73 m_iHDMIPort(CEC_DEFAULT_HDMI_PORT),
74 m_iBaseDevice((cec_logical_address)CEC_DEFAULT_BASE_DEVICE),
75 m_strDeviceName(strDeviceName),
76 m_types(types),
77 m_controller(controller),
78 m_bMonitor(false),
79 m_iStandardLineTimeout(3),
80 m_iRetryLineTimeout(3),
81 m_iLastTransmission(0)
82 {
83 m_communication = new CAdapterCommunication(this);
84 m_logicalAddresses.Clear();
85 for (int iPtr = 0; iPtr < 16; iPtr++)
86 {
87 switch(iPtr)
88 {
89 case CECDEVICE_AUDIOSYSTEM:
90 m_busDevices[iPtr] = new CCECAudioSystem(this, (cec_logical_address) iPtr, 0xFFFF);
91 break;
92 case CECDEVICE_PLAYBACKDEVICE1:
93 case CECDEVICE_PLAYBACKDEVICE2:
94 case CECDEVICE_PLAYBACKDEVICE3:
95 m_busDevices[iPtr] = new CCECPlaybackDevice(this, (cec_logical_address) iPtr, 0xFFFF);
96 break;
97 case CECDEVICE_RECORDINGDEVICE1:
98 case CECDEVICE_RECORDINGDEVICE2:
99 case CECDEVICE_RECORDINGDEVICE3:
100 m_busDevices[iPtr] = new CCECRecordingDevice(this, (cec_logical_address) iPtr, 0xFFFF);
101 break;
102 case CECDEVICE_TUNER1:
103 case CECDEVICE_TUNER2:
104 case CECDEVICE_TUNER3:
105 case CECDEVICE_TUNER4:
106 m_busDevices[iPtr] = new CCECTuner(this, (cec_logical_address) iPtr, 0xFFFF);
107 break;
108 case CECDEVICE_TV:
109 m_busDevices[iPtr] = new CCECTV(this, (cec_logical_address) iPtr, 0);
110 break;
111 default:
112 m_busDevices[iPtr] = new CCECBusDevice(this, (cec_logical_address) iPtr, 0xFFFF);
113 break;
114 }
115 }
116 }
117
118 CCECProcessor::~CCECProcessor(void)
119 {
120 m_bStarted = false;
121 StopThread(false);
122
123 if (m_busScan)
124 {
125 m_busScan->StopThread();
126 delete m_busScan;
127 }
128
129 m_startCondition.Broadcast();
130 StopThread();
131
132 delete m_communication;
133 m_communication = NULL;
134 m_controller = NULL;
135 for (unsigned int iPtr = 0; iPtr < 16; iPtr++)
136 delete m_busDevices[iPtr];
137 }
138
139 bool CCECProcessor::Start(const char *strPort, uint16_t iBaudRate /* = 38400 */, uint32_t iTimeoutMs /* = 10000 */)
140 {
141 CLockObject lock(&m_mutex);
142 if (!m_communication || m_communication->IsOpen())
143 {
144 m_controller->AddLog(CEC_LOG_ERROR, "connection already opened");
145 return false;
146 }
147
148 if (!m_communication->Open(strPort, iBaudRate, iTimeoutMs))
149 {
150 m_controller->AddLog(CEC_LOG_ERROR, "could not open a connection");
151 return false;
152 }
153
154 if (CreateThread())
155 {
156 if (!m_startCondition.Wait(&m_mutex) || !m_bStarted)
157 {
158 m_controller->AddLog(CEC_LOG_ERROR, "could not create a processor thread");
159 return false;
160 }
161
162 lock.Leave();
163 if (SetAckMask(m_logicalAddresses.AckMask()) &&
164 SetHDMIPort(m_iBaseDevice, m_iHDMIPort, true))
165 {
166 m_controller->AddLog(CEC_LOG_DEBUG, "processor thread started");
167 m_busScan = new CCECBusScan(this);
168 m_busScan->CreateThread(true);
169 return true;
170 }
171 else
172 {
173 m_controller->AddLog(CEC_LOG_ERROR, "failed to initialise the processor");
174 }
175 }
176
177 m_controller->AddLog(CEC_LOG_ERROR, "could not create a processor thread");
178 return false;
179 }
180
181 bool CCECProcessor::TryLogicalAddress(cec_logical_address address)
182 {
183 if (m_busDevices[address]->TryLogicalAddress())
184 {
185 /* only set our OSD name and active source for the primary device */
186 if (m_logicalAddresses.IsEmpty())
187 {
188 m_busDevices[address]->m_strDeviceName = m_strDeviceName;
189 m_busDevices[address]->m_bActiveSource = true;
190 }
191 m_logicalAddresses.Set(address);
192 return true;
193 }
194
195 return false;
196 }
197
198 bool CCECProcessor::FindLogicalAddressRecordingDevice(void)
199 {
200 AddLog(CEC_LOG_DEBUG, "detecting logical address for type 'recording device'");
201 return TryLogicalAddress(CECDEVICE_RECORDINGDEVICE1) ||
202 TryLogicalAddress(CECDEVICE_RECORDINGDEVICE2) ||
203 TryLogicalAddress(CECDEVICE_RECORDINGDEVICE3);
204 }
205
206 bool CCECProcessor::FindLogicalAddressTuner(void)
207 {
208 AddLog(CEC_LOG_DEBUG, "detecting logical address for type 'tuner'");
209 return TryLogicalAddress(CECDEVICE_TUNER1) ||
210 TryLogicalAddress(CECDEVICE_TUNER2) ||
211 TryLogicalAddress(CECDEVICE_TUNER3) ||
212 TryLogicalAddress(CECDEVICE_TUNER4);
213 }
214
215 bool CCECProcessor::FindLogicalAddressPlaybackDevice(void)
216 {
217 AddLog(CEC_LOG_DEBUG, "detecting logical address for type 'playback device'");
218 return TryLogicalAddress(CECDEVICE_PLAYBACKDEVICE1) ||
219 TryLogicalAddress(CECDEVICE_PLAYBACKDEVICE2) ||
220 TryLogicalAddress(CECDEVICE_PLAYBACKDEVICE3);
221 }
222
223 bool CCECProcessor::FindLogicalAddressAudioSystem(void)
224 {
225 AddLog(CEC_LOG_DEBUG, "detecting logical address for type 'audio'");
226 return TryLogicalAddress(CECDEVICE_AUDIOSYSTEM);
227 }
228
229 bool CCECProcessor::FindLogicalAddresses(void)
230 {
231 bool bReturn(true);
232 m_logicalAddresses.Clear();
233 CStdString strLog;
234
235 for (unsigned int iPtr = 0; iPtr < 5; iPtr++)
236 {
237 if (m_types.types[iPtr] == CEC_DEVICE_TYPE_RESERVED)
238 continue;
239
240 strLog.Format("%s - device %d: type %d", __FUNCTION__, iPtr, m_types.types[iPtr]);
241 AddLog(CEC_LOG_DEBUG, strLog);
242
243 if (m_types.types[iPtr] == CEC_DEVICE_TYPE_RECORDING_DEVICE)
244 bReturn &= FindLogicalAddressRecordingDevice();
245 if (m_types.types[iPtr] == CEC_DEVICE_TYPE_TUNER)
246 bReturn &= FindLogicalAddressTuner();
247 if (m_types.types[iPtr] == CEC_DEVICE_TYPE_PLAYBACK_DEVICE)
248 bReturn &= FindLogicalAddressPlaybackDevice();
249 if (m_types.types[iPtr] == CEC_DEVICE_TYPE_AUDIO_SYSTEM)
250 bReturn &= FindLogicalAddressAudioSystem();
251 }
252
253 return bReturn;
254 }
255
256 void *CCECProcessor::Process(void)
257 {
258 bool bParseFrame(false);
259 cec_command command;
260 CCECAdapterMessage msg;
261
262 if (m_logicalAddresses.IsEmpty() && !FindLogicalAddresses())
263 {
264 CLockObject lock(&m_mutex);
265 m_controller->AddLog(CEC_LOG_ERROR, "could not detect our logical addresses");
266 m_startCondition.Signal();
267 return NULL;
268 }
269 else
270 {
271 m_busDevices[CECDEVICE_TV]->GetVendorId();
272 m_busDevices[m_logicalAddresses.primary]->TransmitVendorID(CECDEVICE_TV, false);
273
274 CLockObject lock(&m_mutex);
275 m_bStarted = true;
276 m_controller->AddLog(CEC_LOG_DEBUG, "processor thread started");
277 m_startCondition.Signal();
278 }
279
280 while (!IsStopped())
281 {
282 command.Clear();
283 msg.clear();
284
285 {
286 CLockObject lock(&m_mutex);
287 if (m_commandBuffer.Pop(command))
288 {
289 bParseFrame = true;
290 }
291 else if (m_communication->IsOpen() && m_communication->Read(msg, 50))
292 {
293 if ((bParseFrame = (ParseMessage(msg) && !IsStopped())) == true)
294 command = m_currentframe;
295 }
296 }
297
298 if (bParseFrame)
299 ParseCommand(command);
300 bParseFrame = false;
301
302 Sleep(5);
303
304 m_controller->CheckKeypressTimeout();
305 }
306
307 if (m_communication)
308 m_communication->Close();
309
310 return NULL;
311 }
312
313 bool CCECProcessor::SetActiveSource(cec_device_type type /* = CEC_DEVICE_TYPE_RESERVED */)
314 {
315 bool bReturn(false);
316
317 if (!IsRunning())
318 return bReturn;
319
320 cec_logical_address addr = m_logicalAddresses.primary;
321
322 if (type != CEC_DEVICE_TYPE_RESERVED)
323 {
324 for (uint8_t iPtr = 0; iPtr <= 11; iPtr++)
325 {
326 if (m_logicalAddresses[iPtr] && m_busDevices[iPtr]->m_type == type)
327 {
328 addr = (cec_logical_address) iPtr;
329 break;
330 }
331 }
332 }
333
334 bReturn = m_busDevices[addr]->TransmitActiveSource() &&
335 SetStreamPath(m_busDevices[addr]->GetPhysicalAddress(false));
336
337 if (bReturn && (m_busDevices[addr]->GetType() == CEC_DEVICE_TYPE_PLAYBACK_DEVICE ||
338 m_busDevices[addr]->GetType() == CEC_DEVICE_TYPE_RECORDING_DEVICE))
339 {
340 bReturn = ((CCECPlaybackDevice *)m_busDevices[addr])->TransmitDeckStatus(CECDEVICE_TV);
341 }
342
343 return bReturn;
344 }
345
346 void CCECProcessor::SetStandardLineTimeout(uint8_t iTimeout)
347 {
348 CLockObject lock(&m_mutex);
349 m_iStandardLineTimeout = iTimeout;
350 }
351
352 void CCECProcessor::SetRetryLineTimeout(uint8_t iTimeout)
353 {
354 CLockObject lock(&m_mutex);
355 m_iRetryLineTimeout = iTimeout;
356 }
357
358 bool CCECProcessor::SetActiveView(void)
359 {
360 return SetActiveSource(m_types.IsEmpty() ? CEC_DEVICE_TYPE_RESERVED : m_types[0]);
361 }
362
363 bool CCECProcessor::SetDeckControlMode(cec_deck_control_mode mode, bool bSendUpdate /* = true */)
364 {
365 bool bReturn(false);
366
367 CCECBusDevice *device = GetDeviceByType(CEC_DEVICE_TYPE_PLAYBACK_DEVICE);
368 if (device)
369 {
370 ((CCECPlaybackDevice *) device)->SetDeckControlMode(mode);
371 if (bSendUpdate)
372 ((CCECPlaybackDevice *) device)->TransmitDeckStatus(CECDEVICE_TV);
373 bReturn = true;
374 }
375
376 return bReturn;
377 }
378
379 bool CCECProcessor::SetDeckInfo(cec_deck_info info, bool bSendUpdate /* = true */)
380 {
381 bool bReturn(false);
382
383 CCECBusDevice *device = GetDeviceByType(CEC_DEVICE_TYPE_PLAYBACK_DEVICE);
384 if (device)
385 {
386 ((CCECPlaybackDevice *) device)->SetDeckStatus(info);
387 if (bSendUpdate)
388 ((CCECPlaybackDevice *) device)->TransmitDeckStatus(CECDEVICE_TV);
389 bReturn = true;
390 }
391
392 return bReturn;
393 }
394
395 bool CCECProcessor::SetHDMIPort(cec_logical_address iBaseDevice, uint8_t iPort, bool bForce /* = false */)
396 {
397 bool bReturn(false);
398
399 CStdString strLog;
400 strLog.Format("setting HDMI port to %d on device %s (%d)", iPort, ToString(iBaseDevice), (int)iBaseDevice);
401 AddLog(CEC_LOG_DEBUG, strLog);
402
403 m_iBaseDevice = iBaseDevice;
404 m_iHDMIPort = iPort;
405 if (!m_bStarted && !bForce)
406 return true;
407
408 uint16_t iPhysicalAddress(0);
409 iPhysicalAddress = m_busDevices[iBaseDevice]->GetPhysicalAddress();
410 uint16_t iPos = 0;
411 if (iPhysicalAddress == 0)
412 iPos = 0x1000;
413 else if (iPhysicalAddress % 0x1000 == 0)
414 iPos = 0x100;
415 else if (iPhysicalAddress % 0x100 == 0)
416 iPos = 0x10;
417 else if (iPhysicalAddress % 0x10 == 0)
418 iPos = 0x1;
419
420 while(!bReturn && iPos > 0)
421 {
422 iPhysicalAddress += (uint16_t)(iPort * iPos);
423 strLog.Format("checking physical address %4x", iPhysicalAddress);
424 AddLog(CEC_LOG_DEBUG, strLog);
425 if (PhysicalAddressInUse(iPhysicalAddress))
426 {
427 strLog.Format("physical address %4x is in use", iPhysicalAddress);
428 AddLog(CEC_LOG_DEBUG, strLog);
429 iPos = (iPos == 1) ? 0 : iPos / 0x10;
430 }
431 else
432 {
433 strLog.Format("physical address %4x is free", iPhysicalAddress);
434 AddLog(CEC_LOG_DEBUG, strLog);
435 SetPhysicalAddress(iPhysicalAddress);
436 bReturn = true;
437 }
438 }
439
440 return bReturn;
441 }
442
443 bool CCECProcessor::PhysicalAddressInUse(uint16_t iPhysicalAddress)
444 {
445 for (unsigned int iPtr = 0; iPtr < 15; iPtr++)
446 {
447 if (m_busDevices[iPtr]->GetPhysicalAddress(false) == iPhysicalAddress)
448 return true;
449 }
450 return false;
451 }
452
453 bool CCECProcessor::SetStreamPath(uint16_t iStreamPath)
454 {
455 bool bReturn(false);
456
457 CCECBusDevice *device = GetDeviceByPhysicalAddress(iStreamPath);
458 if (device)
459 {
460 device->SetActiveDevice();
461 bReturn = true;
462 }
463
464 return bReturn;
465 }
466
467 bool CCECProcessor::TransmitInactiveSource(void)
468 {
469 if (!IsRunning())
470 return false;
471
472 if (!m_logicalAddresses.IsEmpty() && m_busDevices[m_logicalAddresses.primary])
473 return m_busDevices[m_logicalAddresses.primary]->TransmitInactiveSource();
474 return false;
475 }
476
477 void CCECProcessor::LogOutput(const cec_command &data)
478 {
479 CStdString strTx;
480 strTx.Format("<< %02x", ((uint8_t)data.initiator << 4) + (uint8_t)data.destination);
481 if (data.opcode_set)
482 strTx.AppendFormat(":%02x", (uint8_t)data.opcode);
483
484 for (uint8_t iPtr = 0; iPtr < data.parameters.size; iPtr++)
485 strTx.AppendFormat(":%02x", data.parameters[iPtr]);
486 m_controller->AddLog(CEC_LOG_TRAFFIC, strTx.c_str());
487 }
488
489 bool CCECProcessor::SetLogicalAddress(cec_logical_address iLogicalAddress)
490 {
491 if (m_logicalAddresses.primary != iLogicalAddress)
492 {
493 CStdString strLog;
494 strLog.Format("<< setting primary logical address to %1x", iLogicalAddress);
495 m_controller->AddLog(CEC_LOG_NOTICE, strLog.c_str());
496 m_logicalAddresses.primary = iLogicalAddress;
497 m_logicalAddresses.Set(iLogicalAddress);
498 return SetAckMask(m_logicalAddresses.AckMask());
499 }
500
501 return true;
502 }
503
504 bool CCECProcessor::SetMenuState(cec_menu_state state, bool bSendUpdate /* = true */)
505 {
506 for (uint8_t iPtr = 0; iPtr < 16; iPtr++)
507 {
508 if (m_logicalAddresses[iPtr])
509 m_busDevices[iPtr]->SetMenuState(state);
510 }
511
512 if (bSendUpdate)
513 m_busDevices[m_logicalAddresses.primary]->TransmitMenuState(CECDEVICE_TV);
514
515 return true;
516 }
517
518 bool CCECProcessor::SetPhysicalAddress(uint16_t iPhysicalAddress)
519 {
520 if (!m_logicalAddresses.IsEmpty())
521 {
522 for (uint8_t iPtr = 0; iPtr < 15; iPtr++)
523 if (m_logicalAddresses[iPtr])
524 {
525 m_busDevices[iPtr]->SetPhysicalAddress(iPhysicalAddress);
526 m_busDevices[iPtr]->TransmitPhysicalAddress();
527 }
528 return SetActiveView();
529 }
530 return false;
531 }
532
533 bool CCECProcessor::SwitchMonitoring(bool bEnable)
534 {
535 CStdString strLog;
536 strLog.Format("== %s monitoring mode ==", bEnable ? "enabling" : "disabling");
537 m_controller->AddLog(CEC_LOG_NOTICE, strLog.c_str());
538
539 {
540 CLockObject lock(&m_mutex);
541 m_bMonitor = bEnable;
542
543 if (!bEnable)
544 {
545 if (!m_busScan)
546 {
547 m_busScan = new CCECBusScan(this);
548 m_busScan->CreateThread(true);
549 }
550 }
551 else
552 {
553 if (m_busScan)
554 {
555 m_busScan->StopThread();
556 delete m_busScan;
557 m_busScan = NULL;
558 }
559 }
560 }
561
562 if (bEnable)
563 return SetAckMask(0);
564 else
565 return SetAckMask(m_logicalAddresses.AckMask());
566 }
567
568 bool CCECProcessor::PollDevice(cec_logical_address iAddress)
569 {
570 if (iAddress != CECDEVICE_UNKNOWN && m_busDevices[iAddress])
571 {
572 return m_logicalAddresses.primary == CECDEVICE_UNKNOWN ?
573 m_busDevices[iAddress]->TransmitPoll(iAddress) :
574 m_busDevices[m_logicalAddresses.primary]->TransmitPoll(iAddress);
575 }
576 return false;
577 }
578
579 uint8_t CCECProcessor::VolumeUp(void)
580 {
581 uint8_t status = 0;
582 if (IsActiveDevice(CECDEVICE_AUDIOSYSTEM))
583 status = ((CCECAudioSystem *)m_busDevices[CECDEVICE_AUDIOSYSTEM])->VolumeUp();
584
585 return status;
586 }
587
588 uint8_t CCECProcessor::VolumeDown(void)
589 {
590 uint8_t status = 0;
591 if (IsActiveDevice(CECDEVICE_AUDIOSYSTEM))
592 status = ((CCECAudioSystem *)m_busDevices[CECDEVICE_AUDIOSYSTEM])->VolumeDown();
593
594 return status;
595 }
596
597 uint8_t CCECProcessor::MuteAudio(void)
598 {
599 uint8_t status = 0;
600 if (IsActiveDevice(CECDEVICE_AUDIOSYSTEM))
601 status = ((CCECAudioSystem *)m_busDevices[CECDEVICE_AUDIOSYSTEM])->MuteAudio();
602
603 return status;
604 }
605
606 CCECBusDevice *CCECProcessor::GetDeviceByPhysicalAddress(uint16_t iPhysicalAddress, bool bRefresh /* = false */) const
607 {
608 if (m_busDevices[m_logicalAddresses.primary]->GetPhysicalAddress(false) == iPhysicalAddress)
609 return m_busDevices[m_logicalAddresses.primary];
610
611 CCECBusDevice *device = NULL;
612 for (unsigned int iPtr = 0; iPtr < 16; iPtr++)
613 {
614 if (m_busDevices[iPtr]->GetPhysicalAddress(bRefresh) == iPhysicalAddress)
615 {
616 device = m_busDevices[iPtr];
617 break;
618 }
619 }
620
621 return device;
622 }
623
624 CCECBusDevice *CCECProcessor::GetDeviceByType(cec_device_type type) const
625 {
626 CCECBusDevice *device = NULL;
627
628 for (unsigned int iPtr = 0; iPtr < 16; iPtr++)
629 {
630 if (m_busDevices[iPtr]->m_type == type)
631 {
632 device = m_busDevices[iPtr];
633 break;
634 }
635 }
636
637 return device;
638 }
639
640 cec_version CCECProcessor::GetDeviceCecVersion(cec_logical_address iAddress)
641 {
642 return m_busDevices[iAddress]->GetCecVersion();
643 }
644
645 cec_osd_name CCECProcessor::GetDeviceOSDName(cec_logical_address iAddress)
646 {
647 CStdString strOSDName = m_busDevices[iAddress]->GetOSDName();
648 cec_osd_name retVal;
649
650 snprintf(retVal.name, sizeof(retVal.name), "%s", strOSDName.c_str());
651 retVal.device = iAddress;
652
653 return retVal;
654 }
655
656 bool CCECProcessor::GetDeviceMenuLanguage(cec_logical_address iAddress, cec_menu_language *language)
657 {
658 if (m_busDevices[iAddress])
659 {
660 *language = m_busDevices[iAddress]->GetMenuLanguage();
661 return (strcmp(language->language, "???") != 0);
662 }
663 return false;
664 }
665
666 uint64_t CCECProcessor::GetDeviceVendorId(cec_logical_address iAddress)
667 {
668 if (m_busDevices[iAddress])
669 return m_busDevices[iAddress]->GetVendorId();
670 return false;
671 }
672
673 cec_power_status CCECProcessor::GetDevicePowerStatus(cec_logical_address iAddress)
674 {
675 if (m_busDevices[iAddress])
676 return m_busDevices[iAddress]->GetPowerStatus();
677 return CEC_POWER_STATUS_UNKNOWN;
678 }
679
680 bool CCECProcessor::Transmit(const cec_command &data)
681 {
682 bool bReturn(false);
683 LogOutput(data);
684
685 CCECAdapterMessage *output = new CCECAdapterMessage(data);
686 bReturn = Transmit(output);
687
688 /* set to "not present" on failed ack */
689 if (output->is_error() && output->reply == MSGCODE_TRANSMIT_FAILED_ACK &&
690 output->destination() != CECDEVICE_BROADCAST)
691 m_busDevices[output->destination()]->SetDeviceStatus(CEC_DEVICE_STATUS_NOT_PRESENT);
692
693 delete output;
694 return bReturn;
695 }
696
697 bool CCECProcessor::Transmit(CCECAdapterMessage *output)
698 {
699 bool bReturn(false);
700 CLockObject lock(&m_mutex);
701 {
702 m_iLastTransmission = GetTimeMs();
703 m_communication->SetLineTimeout(m_iStandardLineTimeout);
704 output->tries = 1;
705
706 do
707 {
708 if (output->tries > 0)
709 m_communication->SetLineTimeout(m_iRetryLineTimeout);
710
711 CLockObject msgLock(&output->mutex);
712 if (!m_communication || !m_communication->Write(output))
713 return bReturn;
714 else
715 {
716 output->condition.Wait(&output->mutex);
717 if (output->state != ADAPTER_MESSAGE_STATE_SENT)
718 {
719 m_controller->AddLog(CEC_LOG_ERROR, "command was not sent");
720 return bReturn;
721 }
722 }
723
724 if (output->transmit_timeout > 0)
725 {
726 if ((bReturn = WaitForTransmitSucceeded(output)) == false)
727 m_controller->AddLog(CEC_LOG_DEBUG, "did not receive ack");
728 }
729 else
730 bReturn = true;
731 }while (output->transmit_timeout > 0 && output->needs_retry() && ++output->tries < output->maxTries);
732 }
733
734 m_communication->SetLineTimeout(m_iStandardLineTimeout);
735
736 return bReturn;
737 }
738
739 void CCECProcessor::TransmitAbort(cec_logical_address address, cec_opcode opcode, cec_abort_reason reason /* = CEC_ABORT_REASON_UNRECOGNIZED_OPCODE */)
740 {
741 m_controller->AddLog(CEC_LOG_DEBUG, "<< transmitting abort message");
742
743 cec_command command;
744 // TODO
745 cec_command::Format(command, m_logicalAddresses.primary, address, CEC_OPCODE_FEATURE_ABORT);
746 command.parameters.PushBack((uint8_t)opcode);
747 command.parameters.PushBack((uint8_t)reason);
748
749 Transmit(command);
750 }
751
752 bool CCECProcessor::WaitForTransmitSucceeded(CCECAdapterMessage *message)
753 {
754 bool bError(false);
755 bool bTransmitSucceeded(false);
756 uint8_t iPacketsLeft(message->size() / 4);
757
758 int64_t iNow = GetTimeMs();
759 int64_t iTargetTime = iNow + message->transmit_timeout;
760
761 while (!bTransmitSucceeded && !bError && (message->transmit_timeout == 0 || iNow < iTargetTime))
762 {
763 CCECAdapterMessage msg;
764
765 if (!m_communication->Read(msg, message->transmit_timeout > 0 ? (int32_t)(iTargetTime - iNow) : 1000))
766 {
767 iNow = GetTimeMs();
768 continue;
769 }
770
771 if (msg.message() == MSGCODE_FRAME_START && msg.ack())
772 {
773 m_busDevices[msg.initiator()]->GetHandler()->HandlePoll(msg.initiator(), msg.destination());
774 m_lastInitiator = msg.initiator();
775 iNow = GetTimeMs();
776 continue;
777 }
778
779 bError = msg.is_error();
780 if (msg.message() == MSGCODE_RECEIVE_FAILED &&
781 m_lastInitiator != CECDEVICE_UNKNOWN &&
782 !m_busDevices[m_lastInitiator]->GetHandler()->HandleReceiveFailed())
783 {
784 iNow = GetTimeMs();
785 continue;
786 }
787
788 if (bError)
789 {
790 message->reply = msg.message();
791 m_controller->AddLog(CEC_LOG_DEBUG, msg.ToString());
792 }
793 else
794 {
795 switch(msg.message())
796 {
797 case MSGCODE_COMMAND_ACCEPTED:
798 m_controller->AddLog(CEC_LOG_DEBUG, msg.ToString());
799 if (iPacketsLeft > 0)
800 iPacketsLeft--;
801 break;
802 case MSGCODE_TRANSMIT_SUCCEEDED:
803 m_controller->AddLog(CEC_LOG_DEBUG, msg.ToString());
804 bTransmitSucceeded = (iPacketsLeft == 0);
805 bError = !bTransmitSucceeded;
806 message->reply = MSGCODE_TRANSMIT_SUCCEEDED;
807 break;
808 default:
809 // ignore other data while waiting
810 break;
811 }
812
813 iNow = GetTimeMs();
814 }
815 }
816
817 return bTransmitSucceeded && !bError;
818 }
819
820 bool CCECProcessor::ParseMessage(const CCECAdapterMessage &msg)
821 {
822 bool bEom(false);
823 bool bIsError(msg.is_error());
824
825 if (msg.empty())
826 return bEom;
827
828 switch(msg.message())
829 {
830 case MSGCODE_FRAME_START:
831 {
832 m_currentframe.Clear();
833 if (msg.size() >= 2)
834 {
835 m_currentframe.initiator = msg.initiator();
836 m_currentframe.destination = msg.destination();
837 m_currentframe.ack = msg.ack();
838 m_currentframe.eom = msg.eom();
839 }
840 if (m_currentframe.ack == 0x1)
841 {
842 m_lastInitiator = m_currentframe.initiator;
843 m_busDevices[m_lastInitiator]->GetHandler()->HandlePoll(m_currentframe.initiator, m_currentframe.destination);
844 }
845 }
846 break;
847 case MSGCODE_RECEIVE_FAILED:
848 {
849 if (m_lastInitiator != CECDEVICE_UNKNOWN)
850 bIsError = m_busDevices[m_lastInitiator]->GetHandler()->HandleReceiveFailed();
851 }
852 break;
853 case MSGCODE_FRAME_DATA:
854 {
855 if (msg.size() >= 2)
856 {
857 m_currentframe.PushBack(msg[1]);
858 m_currentframe.eom = msg.eom();
859 }
860 bEom = msg.eom();
861 }
862 break;
863 default:
864 break;
865 }
866
867 m_controller->AddLog(bIsError ? CEC_LOG_WARNING : CEC_LOG_DEBUG, msg.ToString());
868 return bEom;
869 }
870
871 void CCECProcessor::ParseCommand(cec_command &command)
872 {
873 CStdString dataStr;
874 dataStr.Format(">> %1x%1x:%02x", command.initiator, command.destination, command.opcode);
875 for (uint8_t iPtr = 0; iPtr < command.parameters.size; iPtr++)
876 dataStr.AppendFormat(":%02x", (unsigned int)command.parameters[iPtr]);
877 m_controller->AddLog(CEC_LOG_TRAFFIC, dataStr.c_str());
878
879 if (!m_bMonitor && command.initiator >= CECDEVICE_TV && command.initiator <= CECDEVICE_BROADCAST)
880 m_busDevices[(uint8_t)command.initiator]->HandleCommand(command);
881 }
882
883 cec_logical_addresses CCECProcessor::GetActiveDevices(void)
884 {
885 cec_logical_addresses addresses;
886 addresses.Clear();
887 for (unsigned int iPtr = 0; iPtr < 15; iPtr++)
888 {
889 if (m_busDevices[iPtr]->GetStatus() == CEC_DEVICE_STATUS_PRESENT)
890 addresses.Set((cec_logical_address) iPtr);
891 }
892 return addresses;
893 }
894
895 bool CCECProcessor::IsActiveDevice(cec_logical_address address)
896 {
897 return m_busDevices[address]->GetStatus() == CEC_DEVICE_STATUS_PRESENT;
898 }
899
900 bool CCECProcessor::IsActiveDeviceType(cec_device_type type)
901 {
902 for (unsigned int iPtr = 0; iPtr < 15; iPtr++)
903 {
904 if (m_busDevices[iPtr]->GetType() == type && m_busDevices[iPtr]->GetStatus() == CEC_DEVICE_STATUS_PRESENT)
905 return true;
906 }
907
908 return false;
909 }
910
911 uint16_t CCECProcessor::GetPhysicalAddress(void) const
912 {
913 if (!m_logicalAddresses.IsEmpty() && m_busDevices[m_logicalAddresses.primary])
914 return m_busDevices[m_logicalAddresses.primary]->GetPhysicalAddress(false);
915 return false;
916 }
917
918 void CCECProcessor::SetCurrentButton(cec_user_control_code iButtonCode)
919 {
920 m_controller->SetCurrentButton(iButtonCode);
921 }
922
923 void CCECProcessor::AddCommand(const cec_command &command)
924 {
925 m_controller->AddCommand(command);
926 }
927
928 void CCECProcessor::AddKey(cec_keypress &key)
929 {
930 m_controller->AddKey(key);
931 }
932
933 void CCECProcessor::AddKey(void)
934 {
935 m_controller->AddKey();
936 }
937
938 void CCECProcessor::AddLog(cec_log_level level, const CStdString &strMessage)
939 {
940 m_controller->AddLog(level, strMessage);
941 }
942
943 bool CCECProcessor::SetAckMask(uint16_t iMask)
944 {
945 bool bReturn(false);
946 CStdString strLog;
947 strLog.Format("setting ackmask to %2x", iMask);
948 m_controller->AddLog(CEC_LOG_DEBUG, strLog.c_str());
949
950 CCECAdapterMessage *output = new CCECAdapterMessage;
951
952 output->push_back(MSGSTART);
953 output->push_escaped(MSGCODE_SET_ACK_MASK);
954 output->push_escaped(iMask >> 8);
955 output->push_escaped((uint8_t)iMask);
956 output->push_back(MSGEND);
957
958 if ((bReturn = Transmit(output)) == false)
959 m_controller->AddLog(CEC_LOG_ERROR, "could not set the ackmask");
960
961 delete output;
962
963 return bReturn;
964 }
965
966 bool CCECProcessor::TransmitKeypress(cec_logical_address iDestination, cec_user_control_code key)
967 {
968 return m_busDevices[iDestination]->TransmitKeypress(key);
969 }
970
971 bool CCECProcessor::TransmitKeyRelease(cec_logical_address iDestination)
972 {
973 return m_busDevices[iDestination]->TransmitKeyRelease();
974 }
975
976 const char *CCECProcessor::ToString(const cec_menu_state state)
977 {
978 switch (state)
979 {
980 case CEC_MENU_STATE_ACTIVATED:
981 return "activated";
982 case CEC_MENU_STATE_DEACTIVATED:
983 return "deactivated";
984 default:
985 return "unknown";
986 }
987 }
988
989 const char *CCECProcessor::ToString(const cec_version version)
990 {
991 switch (version)
992 {
993 case CEC_VERSION_1_2:
994 return "1.2";
995 case CEC_VERSION_1_2A:
996 return "1.2a";
997 case CEC_VERSION_1_3:
998 return "1.3";
999 case CEC_VERSION_1_3A:
1000 return "1.3a";
1001 case CEC_VERSION_1_4:
1002 return "1.4";
1003 default:
1004 return "unknown";
1005 }
1006 }
1007
1008 const char *CCECProcessor::ToString(const cec_power_status status)
1009 {
1010 switch (status)
1011 {
1012 case CEC_POWER_STATUS_ON:
1013 return "on";
1014 case CEC_POWER_STATUS_STANDBY:
1015 return "standby";
1016 case CEC_POWER_STATUS_IN_TRANSITION_ON_TO_STANDBY:
1017 return "in transition from on to standby";
1018 case CEC_POWER_STATUS_IN_TRANSITION_STANDBY_TO_ON:
1019 return "in transition from standby to on";
1020 default:
1021 return "unknown";
1022 }
1023 }
1024
1025 const char *CCECProcessor::ToString(const cec_logical_address address)
1026 {
1027 switch(address)
1028 {
1029 case CECDEVICE_AUDIOSYSTEM:
1030 return "Audio";
1031 case CECDEVICE_BROADCAST:
1032 return "Broadcast";
1033 case CECDEVICE_FREEUSE:
1034 return "Free use";
1035 case CECDEVICE_PLAYBACKDEVICE1:
1036 return "Playback 1";
1037 case CECDEVICE_PLAYBACKDEVICE2:
1038 return "Playback 2";
1039 case CECDEVICE_PLAYBACKDEVICE3:
1040 return "Playback 3";
1041 case CECDEVICE_RECORDINGDEVICE1:
1042 return "Recorder 1";
1043 case CECDEVICE_RECORDINGDEVICE2:
1044 return "Recorder 2";
1045 case CECDEVICE_RECORDINGDEVICE3:
1046 return "Recorder 3";
1047 case CECDEVICE_RESERVED1:
1048 return "Reserved 1";
1049 case CECDEVICE_RESERVED2:
1050 return "Reserved 2";
1051 case CECDEVICE_TUNER1:
1052 return "Tuner 1";
1053 case CECDEVICE_TUNER2:
1054 return "Tuner 2";
1055 case CECDEVICE_TUNER3:
1056 return "Tuner 3";
1057 case CECDEVICE_TUNER4:
1058 return "Tuner 4";
1059 case CECDEVICE_TV:
1060 return "TV";
1061 default:
1062 return "unknown";
1063 }
1064 }
1065
1066 const char *CCECProcessor::ToString(const cec_deck_control_mode mode)
1067 {
1068 switch (mode)
1069 {
1070 case CEC_DECK_CONTROL_MODE_SKIP_FORWARD_WIND:
1071 return "skip forward wind";
1072 case CEC_DECK_CONTROL_MODE_EJECT:
1073 return "eject";
1074 case CEC_DECK_CONTROL_MODE_SKIP_REVERSE_REWIND:
1075 return "reverse rewind";
1076 case CEC_DECK_CONTROL_MODE_STOP:
1077 return "stop";
1078 default:
1079 return "unknown";
1080 }
1081 }
1082
1083 const char *CCECProcessor::ToString(const cec_deck_info status)
1084 {
1085 switch (status)
1086 {
1087 case CEC_DECK_INFO_PLAY:
1088 return "play";
1089 case CEC_DECK_INFO_RECORD:
1090 return "record";
1091 case CEC_DECK_INFO_PLAY_REVERSE:
1092 return "play reverse";
1093 case CEC_DECK_INFO_STILL:
1094 return "still";
1095 case CEC_DECK_INFO_SLOW:
1096 return "slow";
1097 case CEC_DECK_INFO_SLOW_REVERSE:
1098 return "slow reverse";
1099 case CEC_DECK_INFO_FAST_FORWARD:
1100 return "fast forward";
1101 case CEC_DECK_INFO_FAST_REVERSE:
1102 return "fast reverse";
1103 case CEC_DECK_INFO_NO_MEDIA:
1104 return "no media";
1105 case CEC_DECK_INFO_STOP:
1106 return "stop";
1107 case CEC_DECK_INFO_SKIP_FORWARD_WIND:
1108 return "info skip forward wind";
1109 case CEC_DECK_INFO_SKIP_REVERSE_REWIND:
1110 return "info skip reverse rewind";
1111 case CEC_DECK_INFO_INDEX_SEARCH_FORWARD:
1112 return "info index search forward";
1113 case CEC_DECK_INFO_INDEX_SEARCH_REVERSE:
1114 return "info index search reverse";
1115 case CEC_DECK_INFO_OTHER_STATUS:
1116 return "other";
1117 default:
1118 return "unknown";
1119 }
1120 }
1121
1122 const char *CCECProcessor::ToString(const cec_opcode opcode)
1123 {
1124 switch (opcode)
1125 {
1126 case CEC_OPCODE_ACTIVE_SOURCE:
1127 return "active source";
1128 case CEC_OPCODE_IMAGE_VIEW_ON:
1129 return "image view on";
1130 case CEC_OPCODE_TEXT_VIEW_ON:
1131 return "text view on";
1132 case CEC_OPCODE_INACTIVE_SOURCE:
1133 return "inactive source";
1134 case CEC_OPCODE_REQUEST_ACTIVE_SOURCE:
1135 return "request active source";
1136 case CEC_OPCODE_ROUTING_CHANGE:
1137 return "routing change";
1138 case CEC_OPCODE_ROUTING_INFORMATION:
1139 return "routing information";
1140 case CEC_OPCODE_SET_STREAM_PATH:
1141 return "set stream path";
1142 case CEC_OPCODE_STANDBY:
1143 return "standby";
1144 case CEC_OPCODE_RECORD_OFF:
1145 return "record off";
1146 case CEC_OPCODE_RECORD_ON:
1147 return "record on";
1148 case CEC_OPCODE_RECORD_STATUS:
1149 return "record status";
1150 case CEC_OPCODE_RECORD_TV_SCREEN:
1151 return "record tv screen";
1152 case CEC_OPCODE_CLEAR_ANALOGUE_TIMER:
1153 return "clear analogue timer";
1154 case CEC_OPCODE_CLEAR_DIGITAL_TIMER:
1155 return "clear digital timer";
1156 case CEC_OPCODE_CLEAR_EXTERNAL_TIMER:
1157 return "clear external timer";
1158 case CEC_OPCODE_SET_ANALOGUE_TIMER:
1159 return "set analogue timer";
1160 case CEC_OPCODE_SET_DIGITAL_TIMER:
1161 return "set digital timer";
1162 case CEC_OPCODE_SET_EXTERNAL_TIMER:
1163 return "set external timer";
1164 case CEC_OPCODE_SET_TIMER_PROGRAM_TITLE:
1165 return "set timer program title";
1166 case CEC_OPCODE_TIMER_CLEARED_STATUS:
1167 return "timer cleared status";
1168 case CEC_OPCODE_TIMER_STATUS:
1169 return "timer status";
1170 case CEC_OPCODE_CEC_VERSION:
1171 return "cec version";
1172 case CEC_OPCODE_GET_CEC_VERSION:
1173 return "get cec version";
1174 case CEC_OPCODE_GIVE_PHYSICAL_ADDRESS:
1175 return "give physical address";
1176 case CEC_OPCODE_GET_MENU_LANGUAGE:
1177 return "get menu language";
1178 case CEC_OPCODE_REPORT_PHYSICAL_ADDRESS:
1179 return "report physical address";
1180 case CEC_OPCODE_SET_MENU_LANGUAGE:
1181 return "set menu language";
1182 case CEC_OPCODE_DECK_CONTROL:
1183 return "deck control";
1184 case CEC_OPCODE_DECK_STATUS:
1185 return "deck status";
1186 case CEC_OPCODE_GIVE_DECK_STATUS:
1187 return "give deck status";
1188 case CEC_OPCODE_PLAY:
1189 return "play";
1190 case CEC_OPCODE_GIVE_TUNER_DEVICE_STATUS:
1191 return "give tuner status";
1192 case CEC_OPCODE_SELECT_ANALOGUE_SERVICE:
1193 return "select analogue service";
1194 case CEC_OPCODE_SELECT_DIGITAL_SERVICE:
1195 return "set digital service";
1196 case CEC_OPCODE_TUNER_DEVICE_STATUS:
1197 return "tuner device status";
1198 case CEC_OPCODE_TUNER_STEP_DECREMENT:
1199 return "tuner step decrement";
1200 case CEC_OPCODE_TUNER_STEP_INCREMENT:
1201 return "tuner step increment";
1202 case CEC_OPCODE_DEVICE_VENDOR_ID:
1203 return "device vendor id";
1204 case CEC_OPCODE_GIVE_DEVICE_VENDOR_ID:
1205 return "give device vendor id";
1206 case CEC_OPCODE_VENDOR_COMMAND:
1207 return "vendor command";
1208 case CEC_OPCODE_VENDOR_COMMAND_WITH_ID:
1209 return "vendor command with id";
1210 case CEC_OPCODE_VENDOR_REMOTE_BUTTON_DOWN:
1211 return "vendor remote button down";
1212 case CEC_OPCODE_VENDOR_REMOTE_BUTTON_UP:
1213 return "vendor remote button up";
1214 case CEC_OPCODE_SET_OSD_STRING:
1215 return "set osd string";
1216 case CEC_OPCODE_GIVE_OSD_NAME:
1217 return "give osd name";
1218 case CEC_OPCODE_SET_OSD_NAME:
1219 return "set osd name";
1220 case CEC_OPCODE_MENU_REQUEST:
1221 return "menu request";
1222 case CEC_OPCODE_MENU_STATUS:
1223 return "menu status";
1224 case CEC_OPCODE_USER_CONTROL_PRESSED:
1225 return "user control pressed";
1226 case CEC_OPCODE_USER_CONTROL_RELEASE:
1227 return "user control release";
1228 case CEC_OPCODE_GIVE_DEVICE_POWER_STATUS:
1229 return "give device power status";
1230 case CEC_OPCODE_REPORT_POWER_STATUS:
1231 return "report power status";
1232 case CEC_OPCODE_FEATURE_ABORT:
1233 return "feature abort";
1234 case CEC_OPCODE_ABORT:
1235 return "abort";
1236 case CEC_OPCODE_GIVE_AUDIO_STATUS:
1237 return "give audio status";
1238 case CEC_OPCODE_GIVE_SYSTEM_AUDIO_MODE_STATUS:
1239 return "give audio mode status";
1240 case CEC_OPCODE_REPORT_AUDIO_STATUS:
1241 return "report audio status";
1242 case CEC_OPCODE_SET_SYSTEM_AUDIO_MODE:
1243 return "set system audio mode";
1244 case CEC_OPCODE_SYSTEM_AUDIO_MODE_REQUEST:
1245 return "system audio mode request";
1246 case CEC_OPCODE_SYSTEM_AUDIO_MODE_STATUS:
1247 return "system audio mode status";
1248 case CEC_OPCODE_SET_AUDIO_RATE:
1249 return "set audio rate";
1250 default:
1251 return "UNKNOWN";
1252 }
1253 }
1254
1255 const char *CCECProcessor::ToString(const cec_system_audio_status mode)
1256 {
1257 switch(mode)
1258 {
1259 case CEC_SYSTEM_AUDIO_STATUS_ON:
1260 return "on";
1261 case CEC_SYSTEM_AUDIO_STATUS_OFF:
1262 return "off";
1263 default:
1264 return "unknown";
1265 }
1266 }
1267
1268 const char *CCECProcessor::ToString(const cec_audio_status status)
1269 {
1270 // TODO this is a mask
1271 return "TODO";
1272 }
1273
1274 const char *CCECProcessor::ToString(const cec_vendor_id vendor)
1275 {
1276 switch (vendor)
1277 {
1278 case CEC_VENDOR_SAMSUNG:
1279 return "Samsung";
1280 case CEC_VENDOR_LG:
1281 return "LG";
1282 case CEC_VENDOR_PANASONIC:
1283 return "Panasonic";
1284 case CEC_VENDOR_PIONEER:
1285 return "Pioneer";
1286 case CEC_VENDOR_ONKYO:
1287 return "Onkyo";
1288 case CEC_VENDOR_YAMAHA:
1289 return "Yamaha";
1290 case CEC_VENDOR_PHILIPS:
1291 return "Philips";
1292 default:
1293 return "Unknown";
1294 }
1295 }
1296
1297 void *CCECBusScan::Process(void)
1298 {
1299 CCECBusDevice *device(NULL);
1300 uint8_t iCounter(0);
1301
1302 while (!IsStopped())
1303 {
1304 if (++iCounter < 30)
1305 {
1306 Sleep(1000);
1307 continue;
1308 }
1309 for (unsigned int iPtr = 0; iPtr <= 11 && !IsStopped(); iPtr++)
1310 {
1311 device = m_processor->m_busDevices[iPtr];
1312 WaitUntilIdle();
1313 if (device && device->GetStatus(true) == CEC_DEVICE_STATUS_PRESENT)
1314 {
1315 WaitUntilIdle();
1316 if (!IsStopped())
1317 device->GetVendorId();
1318
1319 WaitUntilIdle();
1320 if (!IsStopped())
1321 device->GetPowerStatus(true);
1322 }
1323 }
1324 }
1325
1326 return NULL;
1327 }
1328
1329 void CCECBusScan::WaitUntilIdle(void)
1330 {
1331 if (IsStopped())
1332 return;
1333
1334 int64_t iWaitTime = 3000 - (GetTimeMs() - m_processor->GetLastTransmission());
1335 while (iWaitTime > 0)
1336 {
1337 Sleep(iWaitTime);
1338 iWaitTime = 3000 - (GetTimeMs() - m_processor->GetLastTransmission());
1339 }
1340 }
1341
1342 bool CCECProcessor::StartBootloader(void)
1343 {
1344 return m_communication->StartBootloader();
1345 }
1346
1347 bool CCECProcessor::PingAdapter(void)
1348 {
1349 return m_communication->PingAdapter();
1350 }