add support for playing back videos with the not-yet-finished dvbvideosink/dvbaudiosink
[enigma2.git] / lib / dvb / frontend.cpp
1 #include <lib/dvb/dvb.h>
2 #include <lib/base/eerror.h>
3 #include <errno.h>
4 #include <unistd.h>
5 #include <fcntl.h>
6 #include <sys/ioctl.h>
7
8 #ifndef I2C_SLAVE_FORCE
9 #define I2C_SLAVE_FORCE 0x0706
10 #endif
11
12 #if HAVE_DVB_API_VERSION < 3
13 #include <ost/frontend.h>
14 #include <ost/sec.h>
15 #define QAM_AUTO                                (Modulation)6
16 #define TRANSMISSION_MODE_AUTO  (TransmitMode)2
17 #define BANDWIDTH_AUTO                  (BandWidth)3
18 #define GUARD_INTERVAL_AUTO             (GuardInterval)4
19 #define HIERARCHY_AUTO                  (Hierarchy)4
20 #define parm_frequency parm.Frequency
21 #define parm_inversion parm.Inversion
22 #define parm_u_qpsk_symbol_rate parm.u.qpsk.SymbolRate
23 #define parm_u_qpsk_fec_inner parm.u.qpsk.FEC_inner
24 #define parm_u_qam_symbol_rate parm.u.qam.SymbolRate
25 #define parm_u_qam_fec_inner parm.u.qam.FEC_inner
26 #define parm_u_qam_modulation parm.u.qam.QAM
27 #define parm_u_ofdm_bandwidth parm.u.ofdm.bandWidth
28 #define parm_u_ofdm_code_rate_LP parm.u.ofdm.LP_CodeRate
29 #define parm_u_ofdm_code_rate_HP parm.u.ofdm.HP_CodeRate
30 #define parm_u_ofdm_constellation parm.u.ofdm.Constellation
31 #define parm_u_ofdm_transmission_mode parm.u.ofdm.TransmissionMode
32 #define parm_u_ofdm_guard_interval parm.u.ofdm.guardInterval
33 #define parm_u_ofdm_hierarchy_information parm.u.ofdm.HierarchyInformation
34 #else
35 #include <linux/dvb/frontend.h>
36 #define parm_frequency parm.frequency
37 #define parm_inversion parm.inversion
38 #define parm_u_qpsk_symbol_rate parm.u.qpsk.symbol_rate
39 #define parm_u_qpsk_fec_inner parm.u.qpsk.fec_inner
40 #define parm_u_qam_symbol_rate parm.u.qam.symbol_rate
41 #define parm_u_qam_fec_inner parm.u.qam.fec_inner
42 #define parm_u_qam_modulation parm.u.qam.modulation
43 #define parm_u_ofdm_bandwidth parm.u.ofdm.bandwidth
44 #define parm_u_ofdm_code_rate_LP parm.u.ofdm.code_rate_LP
45 #define parm_u_ofdm_code_rate_HP parm.u.ofdm.code_rate_HP
46 #define parm_u_ofdm_constellation parm.u.ofdm.constellation
47 #define parm_u_ofdm_transmission_mode parm.u.ofdm.transmission_mode
48 #define parm_u_ofdm_guard_interval parm.u.ofdm.guard_interval
49 #define parm_u_ofdm_hierarchy_information parm.u.ofdm.hierarchy_information
50 #ifdef FEC_9_10
51         #warning "FEC_9_10 already exist in dvb api ... it seems it is now ready for DVB-S2"
52 #else
53         #define FEC_S2_QPSK_1_2 (fe_code_rate_t)(FEC_AUTO+1)
54         #define FEC_S2_QPSK_2_3 (fe_code_rate_t)(FEC_S2_QPSK_1_2+1)
55         #define FEC_S2_QPSK_3_4 (fe_code_rate_t)(FEC_S2_QPSK_2_3+1)
56         #define FEC_S2_QPSK_5_6 (fe_code_rate_t)(FEC_S2_QPSK_3_4+1)
57         #define FEC_S2_QPSK_7_8 (fe_code_rate_t)(FEC_S2_QPSK_5_6+1)
58         #define FEC_S2_QPSK_8_9 (fe_code_rate_t)(FEC_S2_QPSK_7_8+1)
59         #define FEC_S2_QPSK_3_5 (fe_code_rate_t)(FEC_S2_QPSK_8_9+1)
60         #define FEC_S2_QPSK_4_5 (fe_code_rate_t)(FEC_S2_QPSK_3_5+1)
61         #define FEC_S2_QPSK_9_10 (fe_code_rate_t)(FEC_S2_QPSK_4_5+1)
62         #define FEC_S2_8PSK_1_2 (fe_code_rate_t)(FEC_S2_QPSK_9_10+1)
63         #define FEC_S2_8PSK_2_3 (fe_code_rate_t)(FEC_S2_8PSK_1_2+1)
64         #define FEC_S2_8PSK_3_4 (fe_code_rate_t)(FEC_S2_8PSK_2_3+1)
65         #define FEC_S2_8PSK_5_6 (fe_code_rate_t)(FEC_S2_8PSK_3_4+1)
66         #define FEC_S2_8PSK_7_8 (fe_code_rate_t)(FEC_S2_8PSK_5_6+1)
67         #define FEC_S2_8PSK_8_9 (fe_code_rate_t)(FEC_S2_8PSK_7_8+1)
68         #define FEC_S2_8PSK_3_5 (fe_code_rate_t)(FEC_S2_8PSK_8_9+1)
69         #define FEC_S2_8PSK_4_5 (fe_code_rate_t)(FEC_S2_8PSK_3_5+1)
70         #define FEC_S2_8PSK_9_10 (fe_code_rate_t)(FEC_S2_8PSK_4_5+1)
71 #endif
72 #endif
73
74 #include <dvbsi++/satellite_delivery_system_descriptor.h>
75 #include <dvbsi++/cable_delivery_system_descriptor.h>
76 #include <dvbsi++/terrestrial_delivery_system_descriptor.h>
77
78 void eDVBDiseqcCommand::setCommandString(const char *str)
79 {
80         if (!str)
81                 return;
82         len=0;
83         int slen = strlen(str);
84         if (slen % 2)
85         {
86                 eDebug("invalid diseqc command string length (not 2 byte aligned)");
87                 return;
88         }
89         if (slen > MAX_DISEQC_LENGTH*2)
90         {
91                 eDebug("invalid diseqc command string length (string is to long)");
92                 return;
93         }
94         eDebugNoNewLine("send diseqc:");
95         unsigned char val=0;
96         for (int i=0; i < slen; ++i)
97         {
98                 unsigned char c = str[i];
99                 switch(c)
100                 {
101                         case '0' ... '9': c-=48; break;
102                         case 'a' ... 'f': c-=87; break;
103                         case 'A' ... 'F': c-=55; break;
104                         default:
105                                 eDebug("invalid character in hex string..ignore complete diseqc command !");
106                                 return;
107                 }
108                 if ( i % 2 )
109                 {
110                         val |= c;
111                         eDebugNoNewLine("%02x", val);
112                         data[i/2] = val;
113                 }
114                 else
115                         val = c << 4;
116         }
117         eDebug("");
118         len = slen/2;
119 }
120
121 void eDVBFrontendParametersSatellite::set(const SatelliteDeliverySystemDescriptor &descriptor)
122 {
123         frequency    = descriptor.getFrequency() * 10;
124         symbol_rate  = descriptor.getSymbolRate() * 100;
125         polarisation = descriptor.getPolarization();
126         fec = descriptor.getFecInner();
127         if ( fec != FEC::fNone && fec > FEC::f9_10 )
128                 fec = FEC::fAuto;
129         inversion = Inversion::Unknown;
130         orbital_position  = ((descriptor.getOrbitalPosition() >> 12) & 0xF) * 1000;
131         orbital_position += ((descriptor.getOrbitalPosition() >> 8) & 0xF) * 100;
132         orbital_position += ((descriptor.getOrbitalPosition() >> 4) & 0xF) * 10;
133         orbital_position += ((descriptor.getOrbitalPosition()) & 0xF);
134         if (orbital_position && (!descriptor.getWestEastFlag()))
135                 orbital_position = 3600 - orbital_position;
136         system = descriptor.getModulationSystem();
137         modulation = descriptor.getModulation();
138         if (system == System::DVB_S && modulation == Modulation::M8PSK)
139         {
140                 eDebug("satellite_delivery_descriptor non valid modulation type.. force QPSK");
141                 modulation=QPSK;
142         }
143         roll_off = descriptor.getRollOff();
144         if (system == System::DVB_S2)
145         {
146                 eDebug("SAT DVB-S2 freq %d, %s, pos %d, sr %d, fec %d, modulation %d, roll_off %d",
147                         frequency,
148                         polarisation ? "hor" : "vert",
149                         orbital_position,
150                         symbol_rate, fec,
151                         modulation,
152                         roll_off);
153         }
154         else
155         {
156                 eDebug("SAT DVB-S freq %d, %s, pos %d, sr %d, fec %d",
157                         frequency,
158                         polarisation ? "hor" : "vert",
159                         orbital_position,
160                         symbol_rate, fec);
161         }
162 }
163
164 void eDVBFrontendParametersCable::set(const CableDeliverySystemDescriptor &descriptor)
165 {
166         frequency = descriptor.getFrequency() / 10;
167         symbol_rate = descriptor.getSymbolRate() * 100;
168         fec_inner = descriptor.getFecInner();
169         if ( fec_inner == 0xF )
170                 fec_inner = FEC::fNone;
171         modulation = descriptor.getModulation();
172         if ( modulation > 0x5 )
173                 modulation = Modulation::Auto;
174         inversion = Inversion::Unknown;
175         eDebug("Cable freq %d, mod %d, sr %d, fec %d",
176                 frequency,
177                 modulation, symbol_rate, fec_inner);
178 }
179
180 void eDVBFrontendParametersTerrestrial::set(const TerrestrialDeliverySystemDescriptor &descriptor)
181 {
182         frequency = descriptor.getCentreFrequency() * 10;
183         bandwidth = descriptor.getBandwidth();
184         if ( bandwidth > 2 ) // 5Mhz forced to auto
185                 bandwidth = Bandwidth::BwAuto;
186         code_rate_HP = descriptor.getCodeRateHpStream();
187         if (code_rate_HP > 4)
188                 code_rate_HP = FEC::fAuto;
189         code_rate_LP = descriptor.getCodeRateLpStream();
190         if (code_rate_LP > 4)
191                 code_rate_LP = FEC::fAuto;
192         transmission_mode = descriptor.getTransmissionMode();
193         if (transmission_mode > 1) // TM4k forced to auto
194                 transmission_mode = TransmissionMode::TMAuto;
195         guard_interval = descriptor.getGuardInterval();
196         if (guard_interval > 3)
197                 guard_interval = GuardInterval::GI_Auto;
198         hierarchy = descriptor.getHierarchyInformation()&3;
199         modulation = descriptor.getConstellation();
200         if (modulation > 2)
201                 modulation = Modulation::Auto;
202         inversion = Inversion::Unknown;
203         eDebug("Terr freq %d, bw %d, cr_hp %d, cr_lp %d, tm_mode %d, guard %d, hierarchy %d, const %d",
204                 frequency, bandwidth, code_rate_HP, code_rate_LP, transmission_mode,
205                 guard_interval, hierarchy, modulation);
206 }
207
208 eDVBFrontendParameters::eDVBFrontendParameters(): m_type(-1)
209 {
210 }
211
212 DEFINE_REF(eDVBFrontendParameters);
213
214 RESULT eDVBFrontendParameters::getSystem(int &t) const
215 {
216         if (m_type == -1)
217                 return -1;
218         t = m_type;
219         return 0;
220 }
221
222 RESULT eDVBFrontendParameters::getDVBS(eDVBFrontendParametersSatellite &p) const
223 {
224         if (m_type != iDVBFrontend::feSatellite)
225                 return -1;
226         p = sat;
227         return 0;
228 }
229
230 RESULT eDVBFrontendParameters::getDVBC(eDVBFrontendParametersCable &p) const
231 {
232         if (m_type != iDVBFrontend::feCable)
233                 return -1;
234         p = cable;
235         return 0;
236 }
237
238 RESULT eDVBFrontendParameters::getDVBT(eDVBFrontendParametersTerrestrial &p) const
239 {
240         if (m_type != iDVBFrontend::feTerrestrial)
241                 return -1;
242         p = terrestrial;
243         return 0;
244 }
245
246 RESULT eDVBFrontendParameters::setDVBS(const eDVBFrontendParametersSatellite &p, bool no_rotor_command_on_tune)
247 {
248         sat = p;
249         sat.no_rotor_command_on_tune = no_rotor_command_on_tune;
250         m_type = iDVBFrontend::feSatellite;
251         return 0;
252 }
253
254 RESULT eDVBFrontendParameters::setDVBC(const eDVBFrontendParametersCable &p)
255 {
256         cable = p;
257         m_type = iDVBFrontend::feCable;
258         return 0;
259 }
260
261 RESULT eDVBFrontendParameters::setDVBT(const eDVBFrontendParametersTerrestrial &p)
262 {
263         terrestrial = p;
264         m_type = iDVBFrontend::feTerrestrial;
265         return 0;
266 }
267
268 RESULT eDVBFrontendParameters::calculateDifference(const iDVBFrontendParameters *parm, int &diff) const
269 {
270         if (!parm)
271                 return -1;
272         int type;
273         if (parm->getSystem(type))
274                 return -1;
275         if (type != m_type)
276         {
277                 diff = 1<<30; // big difference
278                 return 0;
279         }
280
281         switch (type)
282         {
283         case iDVBFrontend::feSatellite:
284         {
285                 eDVBFrontendParametersSatellite osat;
286                 if (parm->getDVBS(osat))
287                         return -2;
288
289                 if (sat.orbital_position != osat.orbital_position)
290                         diff = 1<<29;
291                 else if (sat.polarisation != osat.polarisation)
292                         diff = 1<<28;
293                 else
294                 {
295                         diff = abs(sat.frequency - osat.frequency);
296                         diff += abs(sat.symbol_rate - osat.symbol_rate);
297                 }
298                 return 0;
299         }
300         case iDVBFrontend::feCable:
301                 eDVBFrontendParametersCable ocable;
302                 if (parm->getDVBC(ocable))
303                         return -2;
304
305                 if (cable.modulation != ocable.modulation && cable.modulation != eDVBFrontendParametersCable::Modulation::Auto && ocable.modulation != eDVBFrontendParametersCable::Modulation::Auto)
306                         diff = 1 << 29;
307                 else if (cable.inversion != ocable.inversion && cable.inversion != eDVBFrontendParametersCable::Inversion::Unknown && ocable.inversion != eDVBFrontendParametersCable::Inversion::Unknown)
308                         diff = 1 << 28;
309                 else
310                 {
311                         diff = abs(cable.frequency - ocable.frequency);
312                         diff += abs(cable.symbol_rate - ocable.symbol_rate);
313                 }
314
315                 return 0;
316         case iDVBFrontend::feTerrestrial:
317                 eDVBFrontendParametersTerrestrial oterrestrial;
318                 if (parm->getDVBT(oterrestrial))
319                         return -2;
320
321                 diff = abs(terrestrial.frequency - oterrestrial.frequency);
322
323                 return 0;
324         default:
325                 return -1;
326         }
327         return 0;
328 }
329
330 RESULT eDVBFrontendParameters::getHash(unsigned long &hash) const
331 {
332         switch (m_type)
333         {
334         case iDVBFrontend::feSatellite:
335         {
336                 hash = (sat.orbital_position << 16);
337                 hash |= ((sat.frequency/1000)&0xFFFF)|((sat.polarisation&1) << 15);
338                 return 0;
339         }
340         case iDVBFrontend::feCable:
341                 hash = 0xFFFF0000;
342                 return 0;
343         case iDVBFrontend::feTerrestrial:
344                 hash = 0xEEEE0000;
345                 return 0;
346         default:
347                 return -1;
348         }
349 }
350
351 DEFINE_REF(eDVBFrontend);
352
353 eDVBFrontend::eDVBFrontend(int adap, int fe, int &ok)
354         :m_type(-1), m_fe(fe), m_fd(-1), m_sn(0), m_timeout(0), m_tuneTimer(0)
355 #if HAVE_DVB_API_VERSION < 3
356         ,m_secfd(-1)
357 #endif
358 {
359 #if HAVE_DVB_API_VERSION < 3
360         sprintf(m_filename, "/dev/dvb/card%d/frontend%d", adap, fe);
361         sprintf(m_sec_filename, "/dev/dvb/card%d/sec%d", adap, fe);
362 #else
363         sprintf(m_filename, "/dev/dvb/adapter%d/frontend%d", adap, fe);
364 #endif
365         m_timeout = new eTimer(eApp);
366         CONNECT(m_timeout->timeout, eDVBFrontend::timeout);
367
368         m_tuneTimer = new eTimer(eApp);
369         CONNECT(m_tuneTimer->timeout, eDVBFrontend::tuneLoop);
370
371         for (int i=0; i<eDVBFrontend::NUM_DATA_ENTRIES; ++i)
372                 m_data[i] = -1;
373
374         m_idleInputpower[0]=m_idleInputpower[1]=0;
375
376         ok = !openFrontend();
377         closeFrontend();
378 }
379
380 int eDVBFrontend::openFrontend()
381 {
382         if (m_sn)
383                 return -1;  // already opened
384
385         m_state=0;
386         m_tuning=0;
387
388 #if HAVE_DVB_API_VERSION < 3
389         if (m_secfd < 0)
390         {
391                 m_secfd = ::open(m_sec_filename, O_RDWR);
392                 if (m_secfd < 0)
393                 {
394                         eWarning("failed! (%s) %m", m_sec_filename);
395                         return -1;
396                 }
397         }
398         else
399                 eWarning("sec %d already opened", m_fe);
400         FrontendInfo fe_info;
401 #else
402         dvb_frontend_info fe_info;
403 #endif
404         eDebug("opening frontend %d", m_fe);
405         if (m_fd < 0)
406         {
407                 m_fd = ::open(m_filename, O_RDWR|O_NONBLOCK);
408                 if (m_fd < 0)
409                 {
410                         eWarning("failed! (%s) %m", m_filename);
411 #if HAVE_DVB_API_VERSION < 3
412                         ::close(m_secfd);
413                         m_secfd=-1;
414 #endif
415                         return -1;
416                 }
417         }
418         else
419                 eWarning("frontend %d already opened", m_fe);
420         if (m_type == -1)
421         {
422                 if (::ioctl(m_fd, FE_GET_INFO, &fe_info) < 0)
423                 {
424                         eWarning("ioctl FE_GET_INFO failed");
425                         ::close(m_fd);
426                         m_fd = -1;
427 #if HAVE_DVB_API_VERSION < 3
428                         ::close(m_secfd);
429                         m_secfd=-1;
430 #endif
431                         return -1;
432                 }
433
434                 switch (fe_info.type)
435                 {
436                 case FE_QPSK:
437                         m_type = iDVBFrontend::feSatellite;
438                         break;
439                 case FE_QAM:
440                         m_type = iDVBFrontend::feCable;
441                         break;
442                 case FE_OFDM:
443                         m_type = iDVBFrontend::feTerrestrial;
444                         break;
445                 default:
446                         eWarning("unknown frontend type.");
447                         ::close(m_fd);
448                         m_fd = -1;
449 #if HAVE_DVB_API_VERSION < 3
450                         ::close(m_secfd);
451                         m_secfd=-1;
452 #endif
453                         return -1;
454                 }
455                 eDebug("detected %s frontend", "satellite\0cable\0    terrestrial"+fe_info.type*10);
456         }
457
458         setTone(iDVBFrontend::toneOff);
459         setVoltage(iDVBFrontend::voltageOff);
460
461         m_sn = new eSocketNotifier(eApp, m_fd, eSocketNotifier::Read);
462         CONNECT(m_sn->activated, eDVBFrontend::feEvent);
463
464         return 0;
465 }
466
467 int eDVBFrontend::closeFrontend()
468 {
469         eDVBRegisteredFrontend *linked_fe = (eDVBRegisteredFrontend*)m_data[LINKED_NEXT_PTR];
470         while (linked_fe != (eDVBRegisteredFrontend*)-1)
471         {
472                 if (linked_fe->m_inuse)
473                 {
474                         eDebug("dont close frontend %d until the linked frontend %d is still in use",
475                                 m_fe, linked_fe->m_frontend->getID());
476                         return -1;
477                 }
478                 linked_fe->m_frontend->getData(LINKED_NEXT_PTR, (int&)linked_fe);
479         }
480         if (m_fd >= 0)
481         {
482                 eDebug("close frontend %d", m_fe);
483                 m_tuneTimer->stop();
484                 setTone(iDVBFrontend::toneOff);
485                 setVoltage(iDVBFrontend::voltageOff);
486                 if (m_sec)
487                         m_sec->setRotorMoving(false);
488                 if (!::close(m_fd))
489                         m_fd=-1;
490                 else
491                         eWarning("couldnt close frontend %d", m_fe);
492                 m_data[CSW] = m_data[UCSW] = m_data[TONEBURST] = -1;
493         }
494 #if HAVE_DVB_API_VERSION < 3
495         if (m_secfd >= 0)
496         {
497                 if (!::close(m_secfd))
498                         m_secfd=-1;
499                 else
500                         eWarning("couldnt close sec %d", m_fe);
501         }
502 #endif
503         delete m_sn;
504         m_sn=0;
505
506         return 0;
507 }
508
509 eDVBFrontend::~eDVBFrontend()
510 {
511         closeFrontend();
512         delete m_timeout;
513         delete m_tuneTimer;
514 }
515
516 void eDVBFrontend::feEvent(int w)
517 {
518         while (1)
519         {
520 #if HAVE_DVB_API_VERSION < 3
521                 FrontendEvent event;
522 #else
523                 dvb_frontend_event event;
524 #endif
525                 int res;
526                 int state;
527                 res = ::ioctl(m_fd, FE_GET_EVENT, &event);
528
529                 if (res && (errno == EAGAIN))
530                         break;
531
532                 if (res)
533                 {
534                         eWarning("FE_GET_EVENT failed! %m");
535                         return;
536                 }
537
538                 if (w < 0)
539                         continue;
540
541 #if HAVE_DVB_API_VERSION < 3
542                 if (event.type == FE_COMPLETION_EV)
543 #else
544                 eDebug("(%d)fe event: status %x, inversion %s", m_fe, event.status, (event.parameters.inversion == INVERSION_ON) ? "on" : "off");
545                 if (event.status & FE_HAS_LOCK)
546 #endif
547                 {
548                         state = stateLock;
549                         m_data[CSW] = m_data[NEW_CSW];
550                         m_data[UCSW] = m_data[NEW_UCSW];
551                         m_data[TONEBURST] = m_data[NEW_TONEBURST];
552                 } else
553                 {
554                         if (m_tuning)
555                                 state = stateTuning;
556                         else
557                         {
558                                 eDebug("stateLostLock");
559                                 state = stateLostLock;
560                                 m_data[CSW] = m_data[UCSW] = m_data[TONEBURST] = -1; // reset diseqc
561                         }
562                 }
563                 if (m_state != state)
564                 {
565                         m_state = state;
566                         m_stateChanged(this);
567                 }
568         }
569 }
570
571 void eDVBFrontend::timeout()
572 {
573         m_tuning = 0;
574         if (m_state == stateTuning)
575         {
576                 m_state = stateFailed;
577                 m_stateChanged(this);
578         }
579 }
580
581 int eDVBFrontend::readFrontendData(int type)
582 {
583         switch(type)
584         {
585                 case bitErrorRate:
586                 {
587                         uint32_t ber=0;
588                         if (ioctl(m_fd, FE_READ_BER, &ber) < 0 && errno != ERANGE)
589                                 eDebug("FE_READ_BER failed (%m)");
590                         return ber;
591                 }
592                 case signalPower:
593                 {
594                         uint16_t snr=0;
595                         if (ioctl(m_fd, FE_READ_SNR, &snr) < 0 && errno != ERANGE)
596                                 eDebug("FE_READ_SNR failed (%m)");
597                         return snr;
598                 }
599                 case signalQuality:
600                 {
601                         uint16_t strength=0;
602                         if (ioctl(m_fd, FE_READ_SIGNAL_STRENGTH, &strength) < 0 && errno != ERANGE)
603                                 eDebug("FE_READ_SIGNAL_STRENGTH failed (%m)");
604                         return strength;
605                 }
606                 case locked:
607                 {
608 #if HAVE_DVB_API_VERSION < 3
609                         FrontendStatus status=0;
610 #else
611                         fe_status_t status;
612 #endif
613                         if ( ioctl(m_fd, FE_READ_STATUS, &status) < 0 && errno != ERANGE )
614                                 eDebug("FE_READ_STATUS failed (%m)");
615                         return !!(status&FE_HAS_LOCK);
616                 }
617                 case synced:
618                 {
619 #if HAVE_DVB_API_VERSION < 3
620                         FrontendStatus status=0;
621 #else
622                         fe_status_t status;
623 #endif
624                         if ( ioctl(m_fd, FE_READ_STATUS, &status) < 0 && errno != ERANGE )
625                                 eDebug("FE_READ_STATUS failed (%m)");
626                         return !!(status&FE_HAS_SYNC);
627                 }
628                 case frontendNumber:
629                         return m_fe;
630         }
631         return 0;
632 }
633
634 void PutToDict(PyObject *dict, const char*key, long value)
635 {
636         PyObject *item = PyInt_FromLong(value);
637         if (item)
638         {
639                 if (PyDict_SetItemString(dict, key, item))
640                         eDebug("put %s to dict failed", key);
641                 Py_DECREF(item);
642         }
643         else
644                 eDebug("could not create PyObject for %s", key);
645 }
646
647 void PutToDict(PyObject *dict, const char*key, const char *value)
648 {
649         PyObject *item = PyString_FromString(value);
650         if (item)
651         {
652                 if (PyDict_SetItemString(dict, key, item))
653                         eDebug("put %s to dict failed", key);
654                 Py_DECREF(item);
655         }
656         else
657                 eDebug("could not create PyObject for %s", key);
658 }
659
660 void fillDictWithSatelliteData(PyObject *dict, const FRONTENDPARAMETERS &parm, eDVBFrontend *fe)
661 {
662         int freq_offset=0;
663         int csw=0;
664         const char *tmp=0;
665         fe->getData(eDVBFrontend::CSW, csw);
666         fe->getData(eDVBFrontend::FREQ_OFFSET, freq_offset);
667         int frequency = parm_frequency + freq_offset;
668         PutToDict(dict, "frequency", frequency);
669         PutToDict(dict, "symbol_rate", parm_u_qpsk_symbol_rate);
670         switch(parm_u_qpsk_fec_inner)
671         {
672         case FEC_1_2:
673                 tmp = "FEC_1_2";
674                 break;
675         case FEC_2_3:
676                 tmp = "FEC_2_3";
677                 break;
678         case FEC_3_4:
679                 tmp = "FEC_3_4";
680                 break;
681         case FEC_5_6:
682                 tmp = "FEC_5_6";
683                 break;
684         case FEC_7_8:
685                 tmp = "FEC_7_8";
686                 break;
687         case FEC_NONE:
688                 tmp = "FEC_NONE";
689         default:
690         case FEC_AUTO:
691                 tmp = "FEC_AUTO";
692                 break;
693 #if HAVE_DVB_API_VERSION >=3
694         case FEC_S2_8PSK_1_2:
695         case FEC_S2_QPSK_1_2:
696                 tmp = "FEC_1_2";
697                 break;
698         case FEC_S2_8PSK_2_3:
699         case FEC_S2_QPSK_2_3:
700                 tmp = "FEC_2_3";
701                 break;
702         case FEC_S2_8PSK_3_4:
703         case FEC_S2_QPSK_3_4:
704                 tmp = "FEC_3_4";
705                 break;
706         case FEC_S2_8PSK_5_6:
707         case FEC_S2_QPSK_5_6:
708                 tmp = "FEC_5_6";
709                 break;
710         case FEC_S2_8PSK_7_8:
711         case FEC_S2_QPSK_7_8:
712                 tmp = "FEC_7_8";
713                 break;
714         case FEC_S2_8PSK_8_9:
715         case FEC_S2_QPSK_8_9:
716                 tmp = "FEC_8_9";
717                 break;
718         case FEC_S2_8PSK_3_5:
719         case FEC_S2_QPSK_3_5:
720                 tmp = "FEC_3_5";
721                 break;
722         case FEC_S2_8PSK_4_5:
723         case FEC_S2_QPSK_4_5:
724                 tmp = "FEC_4_5";
725                 break;
726         case FEC_S2_8PSK_9_10:
727         case FEC_S2_QPSK_9_10:
728                 tmp = "FEC_9_10";
729                 break;
730 #endif
731         }
732 #if HAVE_DVB_API_VERSION >=3
733         PutToDict(dict, "modulation",
734                 parm_u_qpsk_fec_inner > FEC_S2_QPSK_9_10 ? "8PSK": "QPSK" );
735 #else
736         PutToDict(dict, "modulation", "QPSK" );
737 #endif
738         PutToDict(dict, "fec_inner", tmp);
739         tmp = parm_u_qpsk_fec_inner > FEC_AUTO ?
740                 "DVB-S2" : "DVB-S";
741         PutToDict(dict, "system", tmp);
742 }
743
744 void fillDictWithCableData(PyObject *dict, const FRONTENDPARAMETERS &parm)
745 {
746         const char *tmp=0;
747         PutToDict(dict, "frequency", parm_frequency/1000);
748         PutToDict(dict, "symbol_rate", parm_u_qam_symbol_rate);
749         switch(parm_u_qam_fec_inner)
750         {
751         case FEC_NONE:
752                 tmp = "FEC_NONE";
753                 break;
754         case FEC_1_2:
755                 tmp = "FEC_1_2";
756                 break;
757         case FEC_2_3:
758                 tmp = "FEC_2_3";
759                 break;
760         case FEC_3_4:
761                 tmp = "FEC_3_4";
762                 break;
763         case FEC_5_6:
764                 tmp = "FEC_5_6";
765                 break;
766         case FEC_7_8:
767                 tmp = "FEC_7_8";
768                 break;
769 #if HAVE_DVB_API_VERSION >= 3
770         case FEC_8_9:
771                 tmp = "FEC_8_9";
772                 break;
773 #endif
774         default:
775         case FEC_AUTO:
776                 tmp = "FEC_AUTO";
777                 break;
778         }
779         PutToDict(dict, "fec_inner", tmp);
780         switch(parm_u_qam_modulation)
781         {
782         case QAM_16:
783                 tmp = "QAM_16";
784                 break;
785         case QAM_32:
786                 tmp = "QAM_32";
787                 break;
788         case QAM_64:
789                 tmp = "QAM_64";
790                 break;
791         case QAM_128:
792                 tmp = "QAM_128";
793                 break;
794         case QAM_256:
795                 tmp = "QAM_256";
796                 break;
797         default:
798         case QAM_AUTO:
799                 tmp = "QAM_AUTO";
800                 break;
801         }
802         PutToDict(dict, "modulation", tmp);
803 }
804
805 void fillDictWithTerrestrialData(PyObject *dict, const FRONTENDPARAMETERS &parm)
806 {
807         const char *tmp=0;
808         PutToDict(dict, "frequency", parm_frequency);
809         switch (parm_u_ofdm_bandwidth)
810         {
811         case BANDWIDTH_8_MHZ:
812                 tmp = "BANDWIDTH_8_MHZ";
813                 break;
814         case BANDWIDTH_7_MHZ:
815                 tmp = "BANDWIDTH_7_MHZ";
816                 break;
817         case BANDWIDTH_6_MHZ:
818                 tmp = "BANDWIDTH_6_MHZ";
819                 break;
820         default:
821         case BANDWIDTH_AUTO:
822                 tmp = "BANDWIDTH_AUTO";
823                 break;
824         }
825         PutToDict(dict, "bandwidth", tmp);
826         switch (parm_u_ofdm_code_rate_LP)
827         {
828         case FEC_1_2:
829                 tmp = "FEC_1_2";
830                 break;
831         case FEC_2_3:
832                 tmp = "FEC_2_3";
833                 break;
834         case FEC_3_4:
835                 tmp = "FEC_3_4";
836                 break;
837         case FEC_5_6:
838                 tmp = "FEC_5_6";
839                 break;
840         case FEC_7_8:
841                 tmp = "FEC_7_8";
842                 break;
843         default:
844         case FEC_AUTO:
845                 tmp = "FEC_AUTO";
846                 break;
847         }
848         PutToDict(dict, "code_rate_lp", tmp);
849         switch (parm_u_ofdm_code_rate_HP)
850         {
851         case FEC_1_2:
852                 tmp = "FEC_1_2";
853                 break;
854         case FEC_2_3:
855                 tmp = "FEC_2_3";
856                 break;
857         case FEC_3_4:
858                 tmp = "FEC_3_4";
859                 break;
860         case FEC_5_6:
861                 tmp = "FEC_5_6";
862                 break;
863         case FEC_7_8:
864                 tmp = "FEC_7_8";
865                 break;
866         default:
867         case FEC_AUTO:
868                 tmp = "FEC_AUTO";
869                 break;
870         }
871         PutToDict(dict, "code_rate_hp", tmp);
872         switch (parm_u_ofdm_constellation)
873         {
874         case QPSK:
875                 tmp = "QPSK";
876                 break;
877         case QAM_16:
878                 tmp = "QAM_16";
879                 break;
880         case QAM_64:
881                 tmp = "QAM_64";
882                 break;
883         default:
884         case QAM_AUTO:
885                 tmp = "QAM_AUTO";
886                 break;
887         }
888         PutToDict(dict, "constellation", tmp);
889         switch (parm_u_ofdm_transmission_mode)
890         {
891         case TRANSMISSION_MODE_2K:
892                 tmp = "TRANSMISSION_MODE_2K";
893                 break;
894         case TRANSMISSION_MODE_8K:
895                 tmp = "TRANSMISSION_MODE_8K";
896                 break;
897         default:
898         case TRANSMISSION_MODE_AUTO:
899                 tmp = "TRANSMISSION_MODE_AUTO";
900                 break;
901         }
902         PutToDict(dict, "transmission_mode", tmp);
903         switch (parm_u_ofdm_guard_interval)
904         {
905                 case GUARD_INTERVAL_1_32:
906                         tmp = "GUARD_INTERVAL_1_32";
907                         break;
908                 case GUARD_INTERVAL_1_16:
909                         tmp = "GUARD_INTERVAL_1_16";
910                         break;
911                 case GUARD_INTERVAL_1_8:
912                         tmp = "GUARD_INTERVAL_1_8";
913                         break;
914                 case GUARD_INTERVAL_1_4:
915                         tmp = "GUARD_INTERVAL_1_4";
916                         break;
917                 default:
918                 case GUARD_INTERVAL_AUTO:
919                         tmp = "GUARD_INTERVAL_AUTO";
920                         break;
921         }
922         PutToDict(dict, "guard_interval", tmp);
923         switch (parm_u_ofdm_hierarchy_information)
924         {
925                 case HIERARCHY_NONE:
926                         tmp = "HIERARCHY_NONE";
927                         break;
928                 case HIERARCHY_1:
929                         tmp = "HIERARCHY_1";
930                         break;
931                 case HIERARCHY_2:
932                         tmp = "HIERARCHY_2";
933                         break;
934                 case HIERARCHY_4:
935                         tmp = "HIERARCHY_4";
936                         break;
937                 default:
938                 case HIERARCHY_AUTO:
939                         tmp = "HIERARCHY_AUTO";
940                         break;
941         }
942         PutToDict(dict, "hierarchy_information", tmp);
943 }
944
945 PyObject *eDVBFrontend::readTransponderData(bool original)
946 {
947         PyObject *ret=PyDict_New();
948
949         if (ret)
950         {
951                 bool read=m_fd != -1;
952                 const char *tmp=0;
953
954                 PutToDict(ret, "tuner_number", m_fe);
955
956                 switch(m_type)
957                 {
958                         case feSatellite:
959                                 tmp = "DVB-S";
960                                 break;
961                         case feCable:
962                                 tmp = "DVB-C";
963                                 break;
964                         case feTerrestrial:
965                                 tmp = "DVB-T";
966                                 break;
967                         default:
968                                 tmp = "UNKNOWN";
969                                 read=false;
970                                 break;
971                 }
972                 PutToDict(ret, "tuner_type", tmp);
973
974                 if (read)
975                 {
976                         FRONTENDPARAMETERS front;
977
978                         tmp = "UNKNOWN";
979                         switch(m_state)
980                         {
981                                 case stateIdle:
982                                         tmp="IDLE";
983                                         break;
984                                 case stateTuning:
985                                         tmp="TUNING";
986                                         break;
987                                 case stateFailed:
988                                         tmp="FAILED";
989                                         break;
990                                 case stateLock:
991                                         tmp="LOCKED";
992                                         break;
993                                 case stateLostLock:
994                                         tmp="LOSTLOCK";
995                                         break;
996                                 default:
997                                         break;
998                         }
999                         PutToDict(ret, "tuner_state", tmp);
1000
1001                         PutToDict(ret, "tuner_locked", readFrontendData(locked));
1002                         PutToDict(ret, "tuner_synced", readFrontendData(synced));
1003                         PutToDict(ret, "tuner_bit_error_rate", readFrontendData(bitErrorRate));
1004                         PutToDict(ret, "tuner_signal_power", readFrontendData(signalPower));
1005                         PutToDict(ret, "tuner_signal_quality", readFrontendData(signalQuality));
1006
1007                         if (!original && ioctl(m_fd, FE_GET_FRONTEND, &front)<0)
1008                                 eDebug("FE_GET_FRONTEND (%m)");
1009                         else
1010                         {
1011                                 tmp = "INVERSION_AUTO";
1012                                 switch(parm_inversion)
1013                                 {
1014                                         case INVERSION_ON:
1015                                                 tmp = "INVERSION_ON";
1016                                                 break;
1017                                         case INVERSION_OFF:
1018                                                 tmp = "INVERSION_OFF";
1019                                                 break;
1020                                         default:
1021                                                 break;
1022                                 }
1023                                 if (tmp)
1024                                         PutToDict(ret, "inversion", tmp);
1025
1026                                 switch(m_type)
1027                                 {
1028                                         case feSatellite:
1029                                                 fillDictWithSatelliteData(ret, original?parm:front, this);
1030                                                 break;
1031                                         case feCable:
1032                                                 fillDictWithCableData(ret, original?parm:front);
1033                                                 break;
1034                                         case feTerrestrial:
1035                                                 fillDictWithTerrestrialData(ret, original?parm:front);
1036                                                 break;
1037                                 }
1038                         }
1039                 }
1040         }
1041         else
1042         {
1043                 Py_INCREF(Py_None);
1044                 ret = Py_None;
1045         }
1046         return ret;
1047 }
1048
1049 #ifndef FP_IOCTL_GET_ID
1050 #define FP_IOCTL_GET_ID 0
1051 #endif
1052 int eDVBFrontend::readInputpower()
1053 {
1054         int power=m_fe;  // this is needed for read inputpower from the correct tuner !
1055
1056         // open front prozessor
1057         int fp=::open("/dev/dbox/fp0", O_RDWR);
1058         if (fp < 0)
1059         {
1060                 eDebug("couldn't open fp");
1061                 return -1;
1062         }
1063         static bool old_fp = (::ioctl(fp, FP_IOCTL_GET_ID) < 0);
1064         if ( ioctl( fp, old_fp ? 9 : 0x100, &power ) < 0 )
1065         {
1066                 eDebug("FP_IOCTL_GET_LNB_CURRENT failed (%m)");
1067                 return -1;
1068         }
1069         ::close(fp);
1070
1071         return power;
1072 }
1073
1074 bool eDVBFrontend::setSecSequencePos(int steps)
1075 {
1076         eDebug("set sequence pos %d", steps);
1077         if (!steps)
1078                 return false;
1079         while( steps > 0 )
1080         {
1081                 if (m_sec_sequence.current() != m_sec_sequence.end())
1082                         ++m_sec_sequence.current();
1083                 --steps;
1084         }
1085         while( steps < 0 )
1086         {
1087                 if (m_sec_sequence.current() != m_sec_sequence.begin() && m_sec_sequence.current() != m_sec_sequence.end())
1088                         --m_sec_sequence.current();
1089                 ++steps;
1090         }
1091         return true;
1092 }
1093
1094 void eDVBFrontend::tuneLoop()  // called by m_tuneTimer
1095 {
1096         int delay=0;
1097         if ( m_sec_sequence && m_sec_sequence.current() != m_sec_sequence.end() )
1098         {
1099 //              eDebug("tuneLoop %d\n", m_sec_sequence.current()->cmd);
1100                 switch (m_sec_sequence.current()->cmd)
1101                 {
1102                         case eSecCommand::SLEEP:
1103                                 delay = m_sec_sequence.current()++->msec;
1104                                 eDebug("[SEC] sleep %dms", delay);
1105                                 break;
1106                         case eSecCommand::GOTO:
1107                                 if ( !setSecSequencePos(m_sec_sequence.current()->steps) )
1108                                         ++m_sec_sequence.current();
1109                                 break;
1110                         case eSecCommand::SET_VOLTAGE:
1111                         {
1112                                 int voltage = m_sec_sequence.current()++->voltage;
1113                                 eDebug("[SEC] setVoltage %d", voltage);
1114                                 setVoltage(voltage);
1115                                 break;
1116                         }
1117                         case eSecCommand::IF_VOLTAGE_GOTO:
1118                         {
1119                                 eSecCommand::pair &compare = m_sec_sequence.current()->compare;
1120                                 if ( compare.voltage == m_curVoltage && setSecSequencePos(compare.steps) )
1121                                         break;
1122                                 ++m_sec_sequence.current();
1123                                 break;
1124                         }
1125                         case eSecCommand::IF_NOT_VOLTAGE_GOTO:
1126                         {
1127                                 eSecCommand::pair &compare = m_sec_sequence.current()->compare;
1128                                 if ( compare.voltage != m_curVoltage && setSecSequencePos(compare.steps) )
1129                                         break;
1130                                 ++m_sec_sequence.current();
1131                                 break;
1132                         }
1133                         case eSecCommand::SET_TONE:
1134                                 eDebug("[SEC] setTone %d", m_sec_sequence.current()->tone);
1135                                 setTone(m_sec_sequence.current()++->tone);
1136                                 break;
1137                         case eSecCommand::SEND_DISEQC:
1138                                 sendDiseqc(m_sec_sequence.current()->diseqc);
1139                                 eDebugNoNewLine("[SEC] sendDiseqc: ");
1140                                 for (int i=0; i < m_sec_sequence.current()->diseqc.len; ++i)
1141                                     eDebugNoNewLine("%02x", m_sec_sequence.current()->diseqc.data[i]);
1142                                 eDebug("");
1143                                 ++m_sec_sequence.current();
1144                                 break;
1145                         case eSecCommand::SEND_TONEBURST:
1146                                 eDebug("[SEC] sendToneburst: %d", m_sec_sequence.current()->toneburst);
1147                                 sendToneburst(m_sec_sequence.current()++->toneburst);
1148                                 break;
1149                         case eSecCommand::SET_FRONTEND:
1150                                 eDebug("[SEC] setFrontend");
1151                                 setFrontend();
1152                                 ++m_sec_sequence.current();
1153                                 break;
1154                         case eSecCommand::START_TUNE_TIMEOUT:
1155                                 m_timeout->start(5000, 1); // 5 sec timeout. TODO: symbolrate dependent
1156                                 ++m_sec_sequence.current();
1157                                 break;
1158                         case eSecCommand::SET_TIMEOUT:
1159                                 m_timeoutCount = m_sec_sequence.current()++->val;
1160                                 eDebug("[SEC] set timeout %d", m_timeoutCount);
1161                                 break;
1162                         case eSecCommand::IF_TIMEOUT_GOTO:
1163                                 if (!m_timeoutCount)
1164                                 {
1165                                         eDebug("[SEC] rotor timout");
1166                                         m_sec->setRotorMoving(false);
1167                                         setSecSequencePos(m_sec_sequence.current()->steps);
1168                                 }
1169                                 else
1170                                         ++m_sec_sequence.current();
1171                                 break;
1172                         case eSecCommand::MEASURE_IDLE_INPUTPOWER:
1173                         {
1174                                 int idx = m_sec_sequence.current()++->val;
1175                                 if ( idx == 0 || idx == 1 )
1176                                 {
1177                                         m_idleInputpower[idx] = readInputpower();
1178                                         eDebug("[SEC] idleInputpower[%d] is %d", idx, m_idleInputpower[idx]);
1179                                 }
1180                                 else
1181                                         eDebug("[SEC] idleInputpower measure index(%d) out of bound !!!", idx);
1182                                 break;
1183                         }
1184                         case eSecCommand::IF_MEASURE_IDLE_WAS_NOT_OK_GOTO:
1185                         {
1186                                 eSecCommand::pair &compare = m_sec_sequence.current()->compare;
1187                                 int idx = compare.voltage;
1188                                 if ( idx == 0 || idx == 1 )
1189                                 {
1190                                         int idle = readInputpower();
1191                                         int diff = abs(idle-m_idleInputpower[idx]);
1192                                         if ( diff > 0)
1193                                         {
1194                                                 eDebug("measure idle(%d) was not okay.. (%d - %d = %d) retry", idx, m_idleInputpower[idx], idle, diff);
1195                                                 setSecSequencePos(compare.steps);
1196                                                 break;
1197                                         }
1198                                 }
1199                                 ++m_sec_sequence.current();
1200                                 break;
1201                         }
1202                         case eSecCommand::IF_TUNER_LOCKED_GOTO:
1203                         {
1204                                 eSecCommand::rotor &cmd = m_sec_sequence.current()->measure;
1205                                 if (readFrontendData(locked))
1206                                 {
1207                                         eDebug("[SEC] locked step %d ok", cmd.okcount);
1208                                         ++cmd.okcount;
1209                                         if (cmd.okcount > 12)
1210                                         {
1211                                                 eDebug("ok > 12 .. goto %d\n",m_sec_sequence.current()->steps);
1212                                                 setSecSequencePos(cmd.steps);
1213                                                 break;
1214                                         }
1215                                 }
1216                                 else
1217                                 {
1218                                         eDebug("[SEC] rotor locked step %d failed", cmd.okcount);
1219                                         --m_timeoutCount;
1220                                         if (!m_timeoutCount && m_retryCount > 0)
1221                                                 --m_retryCount;
1222                                         cmd.okcount=0;
1223                                 }
1224                                 ++m_sec_sequence.current();
1225                                 break;
1226                         }
1227                         case eSecCommand::MEASURE_RUNNING_INPUTPOWER:
1228                                 m_runningInputpower = readInputpower();
1229                                 eDebug("[SEC] runningInputpower is %d", m_runningInputpower);
1230                                 ++m_sec_sequence.current();
1231                                 break;
1232                         case eSecCommand::IF_INPUTPOWER_DELTA_GOTO:
1233                         {
1234                                 int idleInputpower = m_idleInputpower[ (m_curVoltage&1) ? 0 : 1];
1235                                 eSecCommand::rotor &cmd = m_sec_sequence.current()->measure;
1236                                 const char *txt = cmd.direction ? "running" : "stopped";
1237                                 eDebug("[SEC] waiting for rotor %s %d, idle %d, delta %d",
1238                                         txt,
1239                                         m_runningInputpower,
1240                                         idleInputpower,
1241                                         cmd.deltaA);
1242                                 if ( (cmd.direction && abs(m_runningInputpower - idleInputpower) >= cmd.deltaA)
1243                                         || (!cmd.direction && abs(m_runningInputpower - idleInputpower) <= cmd.deltaA) )
1244                                 {
1245                                         ++cmd.okcount;
1246                                         eDebug("[SEC] rotor %s step %d ok", txt, cmd.okcount);
1247                                         if ( cmd.okcount > 6 )
1248                                         {
1249                                                 m_sec->setRotorMoving(cmd.direction);
1250                                                 eDebug("[SEC] rotor is %s", txt);
1251                                                 if (setSecSequencePos(cmd.steps))
1252                                                         break;
1253                                         }
1254                                 }
1255                                 else
1256                                 {
1257                                         eDebug("[SEC] rotor not %s... reset counter.. increase timeout", txt);
1258                                         --m_timeoutCount;
1259                                         if (!m_timeoutCount && m_retryCount > 0)
1260                                                 --m_retryCount;
1261                                         cmd.okcount=0;
1262                                 }
1263                                 ++m_sec_sequence.current();
1264                                 break;
1265                         }
1266                         case eSecCommand::IF_ROTORPOS_VALID_GOTO:
1267                                 if (m_data[ROTOR_CMD] != -1 && m_data[ROTOR_POS] != -1)
1268                                         setSecSequencePos(m_sec_sequence.current()->steps);
1269                                 else
1270                                         ++m_sec_sequence.current();
1271                                 break;
1272                         case eSecCommand::INVALIDATE_CURRENT_ROTORPARMS:
1273                                 m_data[ROTOR_CMD] = m_data[ROTOR_POS] = -1;
1274                                 eDebug("[SEC] invalidate current rotorparams");
1275                                 ++m_sec_sequence.current();
1276                                 break;
1277                         case eSecCommand::UPDATE_CURRENT_ROTORPARAMS:
1278                                 m_data[ROTOR_CMD] = m_data[NEW_ROTOR_CMD];
1279                                 m_data[ROTOR_POS] = m_data[NEW_ROTOR_POS];
1280                                 eDebug("[SEC] update current rotorparams %d %04x %d", m_timeoutCount, m_data[5], m_data[6]);
1281                                 ++m_sec_sequence.current();
1282                                 break;
1283                         case eSecCommand::SET_ROTOR_DISEQC_RETRYS:
1284                                 m_retryCount = m_sec_sequence.current()++->val;
1285                                 eDebug("[SEC] set rotor retries %d", m_retryCount);
1286                                 break;
1287                         case eSecCommand::IF_NO_MORE_ROTOR_DISEQC_RETRYS_GOTO:
1288                                 if (!m_retryCount)
1289                                 {
1290                                         eDebug("[SEC] no more rotor retrys");
1291                                         setSecSequencePos(m_sec_sequence.current()->steps);
1292                                 }
1293                                 else
1294                                         ++m_sec_sequence.current();
1295                                 break;
1296                         case eSecCommand::SET_POWER_LIMITING_MODE:
1297                         {
1298                                 int fd = m_fe ?
1299                                         ::open("/dev/i2c/1", O_RDWR) :
1300                                         ::open("/dev/i2c/0", O_RDWR);
1301
1302                                 unsigned char data[2];
1303                                 ::ioctl(fd, I2C_SLAVE_FORCE, 0x10 >> 1);
1304                                 if(::read(fd, data, 1) != 1)
1305                                         eDebug("[SEC] error read lnbp (%m)");
1306                                 if ( m_sec_sequence.current()->mode == eSecCommand::modeStatic )
1307                                 {
1308                                         data[0] |= 0x80;  // enable static current limiting
1309                                         eDebug("[SEC] set static current limiting");
1310                                 }
1311                                 else
1312                                 {
1313                                         data[0] &= ~0x80;  // enable dynamic current limiting
1314                                         eDebug("[SEC] set dynamic current limiting");
1315                                 }
1316                                 if(::write(fd, data, 1) != 1)
1317                                         eDebug("[SEC] error write lnbp (%m)");
1318                                 ::close(fd);
1319                                 ++m_sec_sequence.current();
1320                                 break;
1321                         }
1322                         default:
1323                                 ++m_sec_sequence.current();
1324                                 eDebug("[SEC] unhandled sec command");
1325                 }
1326                 m_tuneTimer->start(delay,true);
1327         }
1328 }
1329
1330 void eDVBFrontend::setFrontend()
1331 {
1332         eDebug("setting frontend %d", m_fe);
1333         m_sn->start();
1334         feEvent(-1);
1335         if (ioctl(m_fd, FE_SET_FRONTEND, &parm) == -1)
1336         {
1337                 perror("FE_SET_FRONTEND failed");
1338                 return;
1339         }
1340 }
1341
1342 RESULT eDVBFrontend::getFrontendType(int &t)
1343 {
1344         if (m_type == -1)
1345                 return -ENODEV;
1346         t = m_type;
1347         return 0;
1348 }
1349
1350 RESULT eDVBFrontend::prepare_sat(const eDVBFrontendParametersSatellite &feparm)
1351 {
1352         int res;
1353         if (!m_sec)
1354         {
1355                 eWarning("no SEC module active!");
1356                 return -ENOENT;
1357         }
1358         res = m_sec->prepare(*this, parm, feparm, 1 << m_fe);
1359         if (!res)
1360         {
1361                 eDebug("prepare_sat System %d Freq %d Pol %d SR %d INV %d FEC %d",
1362                         feparm.system,
1363                         feparm.frequency,
1364                         feparm.polarisation,
1365                         feparm.symbol_rate,
1366                         feparm.inversion,
1367                         feparm.fec);
1368                 parm_u_qpsk_symbol_rate = feparm.symbol_rate;
1369                 switch (feparm.inversion)
1370                 {
1371                         case eDVBFrontendParametersSatellite::Inversion::On:
1372                                 parm_inversion = INVERSION_ON;
1373                                 break;
1374                         case eDVBFrontendParametersSatellite::Inversion::Off:
1375                                 parm_inversion = INVERSION_OFF;
1376                                 break;
1377                         default:
1378                         case eDVBFrontendParametersSatellite::Inversion::Unknown:
1379                                 parm_inversion = INVERSION_AUTO;
1380                                 break;
1381                 }
1382                 if (feparm.system == eDVBFrontendParametersSatellite::System::DVB_S)
1383                         switch (feparm.fec)
1384                         {
1385                                 case eDVBFrontendParametersSatellite::FEC::fNone:
1386                                         parm_u_qpsk_fec_inner = FEC_NONE;
1387                                         break;
1388                                 case eDVBFrontendParametersSatellite::FEC::f1_2:
1389                                         parm_u_qpsk_fec_inner = FEC_1_2;
1390                                         break;
1391                                 case eDVBFrontendParametersSatellite::FEC::f2_3:
1392                                         parm_u_qpsk_fec_inner = FEC_2_3;
1393                                         break;
1394                                 case eDVBFrontendParametersSatellite::FEC::f3_4:
1395                                         parm_u_qpsk_fec_inner = FEC_3_4;
1396                                         break;
1397                                 case eDVBFrontendParametersSatellite::FEC::f5_6:
1398                                         parm_u_qpsk_fec_inner = FEC_5_6;
1399                                         break;
1400                                 case eDVBFrontendParametersSatellite::FEC::f7_8:
1401                                         parm_u_qpsk_fec_inner = FEC_7_8;
1402                                         break;
1403                                 default:
1404                                         eDebug("no valid fec for DVB-S set.. assume auto");
1405                                 case eDVBFrontendParametersSatellite::FEC::fAuto:
1406                                         parm_u_qpsk_fec_inner = FEC_AUTO;
1407                                         break;
1408                         }
1409 #if HAVE_DVB_API_VERSION >= 3
1410                 else // DVB_S2
1411                 {
1412                         switch (feparm.fec)
1413                         {
1414                                 case eDVBFrontendParametersSatellite::FEC::f1_2:
1415                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_1_2;
1416                                         break;
1417                                 case eDVBFrontendParametersSatellite::FEC::f2_3:
1418                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_2_3;
1419                                         break;
1420                                 case eDVBFrontendParametersSatellite::FEC::f3_4:
1421                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_3_4;
1422                                         break;
1423                                 case eDVBFrontendParametersSatellite::FEC::f3_5:
1424                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_3_5;
1425                                         break;
1426                                 case eDVBFrontendParametersSatellite::FEC::f4_5:
1427                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_4_5;
1428                                         break;
1429                                 case eDVBFrontendParametersSatellite::FEC::f5_6:
1430                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_5_6;
1431                                         break;
1432                                 case eDVBFrontendParametersSatellite::FEC::f7_8:
1433                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_7_8;
1434                                         break;
1435                                 case eDVBFrontendParametersSatellite::FEC::f8_9:
1436                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_8_9;
1437                                         break;
1438                                 case eDVBFrontendParametersSatellite::FEC::f9_10:
1439                                         parm_u_qpsk_fec_inner = FEC_S2_QPSK_9_10;
1440                                         break;
1441                                 default:
1442                                         eDebug("no valid fec for DVB-S2 set.. abort !!");
1443                                         return -EINVAL;
1444                         }
1445                         if (feparm.modulation == eDVBFrontendParametersSatellite::Modulation::M8PSK)
1446                                 parm_u_qpsk_fec_inner = (fe_code_rate_t)((int)parm_u_qpsk_fec_inner+9);
1447                                 // 8PSK fec driver values are decimal 9 bigger
1448                 }
1449 #endif
1450                 // FIXME !!! get frequency range from tuner
1451                 if ( parm_frequency < 900000 || parm_frequency > 2200000 )
1452                 {
1453                         eDebug("%d mhz out of tuner range.. dont tune", parm_frequency/1000);
1454                         return -EINVAL;
1455                 }
1456                 eDebug("tuning to %d mhz", parm_frequency/1000);
1457         }
1458         return res;
1459 }
1460
1461 RESULT eDVBFrontend::prepare_cable(const eDVBFrontendParametersCable &feparm)
1462 {
1463         parm_frequency = feparm.frequency * 1000;
1464         parm_u_qam_symbol_rate = feparm.symbol_rate;
1465         switch (feparm.modulation)
1466         {
1467         case eDVBFrontendParametersCable::Modulation::QAM16:
1468                 parm_u_qam_modulation = QAM_16;
1469                 break;
1470         case eDVBFrontendParametersCable::Modulation::QAM32:
1471                 parm_u_qam_modulation = QAM_32;
1472                 break;
1473         case eDVBFrontendParametersCable::Modulation::QAM64:
1474                 parm_u_qam_modulation = QAM_64;
1475                 break;
1476         case eDVBFrontendParametersCable::Modulation::QAM128:
1477                 parm_u_qam_modulation = QAM_128;
1478                 break;
1479         case eDVBFrontendParametersCable::Modulation::QAM256:
1480                 parm_u_qam_modulation = QAM_256;
1481                 break;
1482         default:
1483         case eDVBFrontendParametersCable::Modulation::Auto:
1484                 parm_u_qam_modulation = QAM_AUTO;
1485                 break;
1486         }
1487         switch (feparm.inversion)
1488         {
1489         case eDVBFrontendParametersCable::Inversion::On:
1490                 parm_inversion = INVERSION_ON;
1491                 break;
1492         case eDVBFrontendParametersCable::Inversion::Off:
1493                 parm_inversion = INVERSION_OFF;
1494                 break;
1495         default:
1496         case eDVBFrontendParametersCable::Inversion::Unknown:
1497                 parm_inversion = INVERSION_AUTO;
1498                 break;
1499         }
1500         switch (feparm.fec_inner)
1501         {
1502         case eDVBFrontendParametersCable::FEC::fNone:
1503                 parm_u_qam_fec_inner = FEC_NONE;
1504                 break;
1505         case eDVBFrontendParametersCable::FEC::f1_2:
1506                 parm_u_qam_fec_inner = FEC_1_2;
1507                 break;
1508         case eDVBFrontendParametersCable::FEC::f2_3:
1509                 parm_u_qam_fec_inner = FEC_2_3;
1510                 break;
1511         case eDVBFrontendParametersCable::FEC::f3_4:
1512                 parm_u_qam_fec_inner = FEC_3_4;
1513                 break;
1514         case eDVBFrontendParametersCable::FEC::f5_6:
1515                 parm_u_qam_fec_inner = FEC_5_6;
1516                 break;
1517         case eDVBFrontendParametersCable::FEC::f7_8:
1518                 parm_u_qam_fec_inner = FEC_7_8;
1519                 break;
1520 #if HAVE_DVB_API_VERSION >= 3
1521         case eDVBFrontendParametersCable::FEC::f8_9:
1522                 parm_u_qam_fec_inner = FEC_8_9;
1523                 break;
1524 #endif
1525         default:
1526         case eDVBFrontendParametersCable::FEC::fAuto:
1527                 parm_u_qam_fec_inner = FEC_AUTO;
1528                 break;
1529         }
1530         return 0;
1531 }
1532
1533 RESULT eDVBFrontend::prepare_terrestrial(const eDVBFrontendParametersTerrestrial &feparm)
1534 {
1535         parm_frequency = feparm.frequency;
1536
1537         switch (feparm.bandwidth)
1538         {
1539         case eDVBFrontendParametersTerrestrial::Bandwidth::Bw8MHz:
1540                 parm_u_ofdm_bandwidth = BANDWIDTH_8_MHZ;
1541                 break;
1542         case eDVBFrontendParametersTerrestrial::Bandwidth::Bw7MHz:
1543                 parm_u_ofdm_bandwidth = BANDWIDTH_7_MHZ;
1544                 break;
1545         case eDVBFrontendParametersTerrestrial::Bandwidth::Bw6MHz:
1546                 parm_u_ofdm_bandwidth = BANDWIDTH_6_MHZ;
1547                 break;
1548         default:
1549         case eDVBFrontendParametersTerrestrial::Bandwidth::BwAuto:
1550                 parm_u_ofdm_bandwidth = BANDWIDTH_AUTO;
1551                 break;
1552         }
1553         switch (feparm.code_rate_LP)
1554         {
1555         case eDVBFrontendParametersTerrestrial::FEC::f1_2:
1556                 parm_u_ofdm_code_rate_LP = FEC_1_2;
1557                 break;
1558         case eDVBFrontendParametersTerrestrial::FEC::f2_3:
1559                 parm_u_ofdm_code_rate_LP = FEC_2_3;
1560                 break;
1561         case eDVBFrontendParametersTerrestrial::FEC::f3_4:
1562                 parm_u_ofdm_code_rate_LP = FEC_3_4;
1563                 break;
1564         case eDVBFrontendParametersTerrestrial::FEC::f5_6:
1565                 parm_u_ofdm_code_rate_LP = FEC_5_6;
1566                 break;
1567         case eDVBFrontendParametersTerrestrial::FEC::f7_8:
1568                 parm_u_ofdm_code_rate_LP = FEC_7_8;
1569                 break;
1570         default:
1571         case eDVBFrontendParametersTerrestrial::FEC::fAuto:
1572                 parm_u_ofdm_code_rate_LP = FEC_AUTO;
1573                 break;
1574         }
1575         switch (feparm.code_rate_HP)
1576         {
1577         case eDVBFrontendParametersTerrestrial::FEC::f1_2:
1578                 parm_u_ofdm_code_rate_HP = FEC_1_2;
1579                 break;
1580         case eDVBFrontendParametersTerrestrial::FEC::f2_3:
1581                 parm_u_ofdm_code_rate_HP = FEC_2_3;
1582                 break;
1583         case eDVBFrontendParametersTerrestrial::FEC::f3_4:
1584                 parm_u_ofdm_code_rate_HP = FEC_3_4;
1585                 break;
1586         case eDVBFrontendParametersTerrestrial::FEC::f5_6:
1587                 parm_u_ofdm_code_rate_HP = FEC_5_6;
1588                 break;
1589         case eDVBFrontendParametersTerrestrial::FEC::f7_8:
1590                 parm_u_ofdm_code_rate_HP = FEC_7_8;
1591                 break;
1592         default:
1593         case eDVBFrontendParametersTerrestrial::FEC::fAuto:
1594                 parm_u_ofdm_code_rate_HP = FEC_AUTO;
1595                 break;
1596         }
1597         switch (feparm.modulation)
1598         {
1599         case eDVBFrontendParametersTerrestrial::Modulation::QPSK:
1600                 parm_u_ofdm_constellation = QPSK;
1601                 break;
1602         case eDVBFrontendParametersTerrestrial::Modulation::QAM16:
1603                 parm_u_ofdm_constellation = QAM_16;
1604                 break;
1605         case eDVBFrontendParametersTerrestrial::Modulation::QAM64:
1606                 parm_u_ofdm_constellation = QAM_64;
1607                 break;
1608         default:
1609         case eDVBFrontendParametersTerrestrial::Modulation::Auto:
1610                 parm_u_ofdm_constellation = QAM_AUTO;
1611                 break;
1612         }
1613         switch (feparm.transmission_mode)
1614         {
1615         case eDVBFrontendParametersTerrestrial::TransmissionMode::TM2k:
1616                 parm_u_ofdm_transmission_mode = TRANSMISSION_MODE_2K;
1617                 break;
1618         case eDVBFrontendParametersTerrestrial::TransmissionMode::TM8k:
1619                 parm_u_ofdm_transmission_mode = TRANSMISSION_MODE_8K;
1620                 break;
1621         default:
1622         case eDVBFrontendParametersTerrestrial::TransmissionMode::TMAuto:
1623                 parm_u_ofdm_transmission_mode = TRANSMISSION_MODE_AUTO;
1624                 break;
1625         }
1626         switch (feparm.guard_interval)
1627         {
1628                 case eDVBFrontendParametersTerrestrial::GuardInterval::GI_1_32:
1629                         parm_u_ofdm_guard_interval = GUARD_INTERVAL_1_32;
1630                         break;
1631                 case eDVBFrontendParametersTerrestrial::GuardInterval::GI_1_16:
1632                         parm_u_ofdm_guard_interval = GUARD_INTERVAL_1_16;
1633                         break;
1634                 case eDVBFrontendParametersTerrestrial::GuardInterval::GI_1_8:
1635                         parm_u_ofdm_guard_interval = GUARD_INTERVAL_1_8;
1636                         break;
1637                 case eDVBFrontendParametersTerrestrial::GuardInterval::GI_1_4:
1638                         parm_u_ofdm_guard_interval = GUARD_INTERVAL_1_4;
1639                         break;
1640                 default:
1641                 case eDVBFrontendParametersTerrestrial::GuardInterval::GI_Auto:
1642                         parm_u_ofdm_guard_interval = GUARD_INTERVAL_AUTO;
1643                         break;
1644         }
1645         switch (feparm.hierarchy)
1646         {
1647                 case eDVBFrontendParametersTerrestrial::Hierarchy::HNone:
1648                         parm_u_ofdm_hierarchy_information = HIERARCHY_NONE;
1649                         break;
1650                 case eDVBFrontendParametersTerrestrial::Hierarchy::H1:
1651                         parm_u_ofdm_hierarchy_information = HIERARCHY_1;
1652                         break;
1653                 case eDVBFrontendParametersTerrestrial::Hierarchy::H2:
1654                         parm_u_ofdm_hierarchy_information = HIERARCHY_2;
1655                         break;
1656                 case eDVBFrontendParametersTerrestrial::Hierarchy::H4:
1657                         parm_u_ofdm_hierarchy_information = HIERARCHY_4;
1658                         break;
1659                 default:
1660                 case eDVBFrontendParametersTerrestrial::Hierarchy::HAuto:
1661                         parm_u_ofdm_hierarchy_information = HIERARCHY_AUTO;
1662                         break;
1663         }
1664         switch (feparm.inversion)
1665         {
1666         case eDVBFrontendParametersTerrestrial::Inversion::On:
1667                 parm_inversion = INVERSION_ON;
1668                 break;
1669         case eDVBFrontendParametersTerrestrial::Inversion::Off:
1670                 parm_inversion = INVERSION_OFF;
1671                 break;
1672         default:
1673         case eDVBFrontendParametersTerrestrial::Inversion::Unknown:
1674                 parm_inversion = INVERSION_AUTO;
1675                 break;
1676         }
1677         return 0;
1678 }
1679
1680 RESULT eDVBFrontend::tune(const iDVBFrontendParameters &where)
1681 {
1682         eDebug("(%d)tune", m_fe);
1683
1684         m_timeout->stop();
1685
1686         int res=0;
1687
1688         if (m_type == -1)
1689                 return -ENODEV;
1690
1691         m_sn->stop();
1692         m_sec_sequence.clear();
1693
1694         switch (m_type)
1695         {
1696         case feSatellite:
1697         {
1698                 eDVBFrontendParametersSatellite feparm;
1699                 if (where.getDVBS(feparm))
1700                 {
1701                         eDebug("no dvbs data!");
1702                         return -EINVAL;
1703                 }
1704                 res=prepare_sat(feparm);
1705                 m_sec->setRotorMoving(false);
1706                 break;
1707         }
1708         case feCable:
1709         {
1710                 eDVBFrontendParametersCable feparm;
1711                 if (where.getDVBC(feparm))
1712                         return -EINVAL;
1713                 res=prepare_cable(feparm);
1714                 if (!res)
1715                 {
1716                         m_sec_sequence.push_back( eSecCommand(eSecCommand::START_TUNE_TIMEOUT) );
1717                         m_sec_sequence.push_back( eSecCommand(eSecCommand::SET_FRONTEND) );
1718                 }
1719                 break;
1720         }
1721         case feTerrestrial:
1722         {
1723                 eDVBFrontendParametersTerrestrial feparm;
1724                 if (where.getDVBT(feparm))
1725                 {
1726                         eDebug("no -T data");
1727                         return -EINVAL;
1728                 }
1729                 res=prepare_terrestrial(feparm);
1730                 if (!res)
1731                 {
1732                         m_sec_sequence.push_back( eSecCommand(eSecCommand::START_TUNE_TIMEOUT) );
1733                         m_sec_sequence.push_back( eSecCommand(eSecCommand::SET_FRONTEND) );
1734                 }
1735                 break;
1736         }
1737         }
1738
1739         if (!res)  // prepare ok
1740         {
1741                 m_tuneTimer->start(0,true);
1742                 m_sec_sequence.current() = m_sec_sequence.begin();
1743
1744                 if (m_state != stateTuning)
1745                 {
1746                         m_tuning = 1;
1747                         m_state = stateTuning;
1748                         m_stateChanged(this);
1749                 }
1750         }
1751
1752         return res;
1753 }
1754
1755 RESULT eDVBFrontend::connectStateChange(const Slot1<void,iDVBFrontend*> &stateChange, ePtr<eConnection> &connection)
1756 {
1757         connection = new eConnection(this, m_stateChanged.connect(stateChange));
1758         return 0;
1759 }
1760
1761 RESULT eDVBFrontend::setVoltage(int voltage)
1762 {
1763         if (m_type != feSatellite)
1764                 return -1;
1765 #if HAVE_DVB_API_VERSION < 3
1766         secVoltage vlt;
1767 #else
1768         bool increased=false;
1769         fe_sec_voltage_t vlt;
1770 #endif
1771         m_curVoltage=voltage;
1772         switch (voltage)
1773         {
1774         case voltageOff:
1775                 for (int i=0; i < 3; ++i)  // reset diseqc
1776                         m_data[i]=-1;
1777                 vlt = SEC_VOLTAGE_OFF;
1778                 break;
1779         case voltage13_5:
1780 #if HAVE_DVB_API_VERSION < 3
1781                 vlt = SEC_VOLTAGE_13_5;
1782                 break;
1783 #else
1784                 increased = true;
1785 #endif
1786         case voltage13:
1787                 vlt = SEC_VOLTAGE_13;
1788                 break;
1789         case voltage18_5:
1790 #if HAVE_DVB_API_VERSION < 3
1791                 vlt = SEC_VOLTAGE_18_5;
1792                 break;
1793 #else
1794                 increased = true;
1795 #endif
1796         case voltage18:
1797                 vlt = SEC_VOLTAGE_18;
1798                 break;
1799         default:
1800                 return -ENODEV;
1801         }
1802 #if HAVE_DVB_API_VERSION < 3
1803         return ::ioctl(m_secfd, SEC_SET_VOLTAGE, vlt);
1804 #else
1805         if (::ioctl(m_fd, FE_ENABLE_HIGH_LNB_VOLTAGE, increased) < 0)
1806                 perror("FE_ENABLE_HIGH_LNB_VOLTAGE");
1807         return ::ioctl(m_fd, FE_SET_VOLTAGE, vlt);
1808 #endif
1809 }
1810
1811 RESULT eDVBFrontend::getState(int &state)
1812 {
1813         state = m_state;
1814         return 0;
1815 }
1816
1817 RESULT eDVBFrontend::setTone(int t)
1818 {
1819         if (m_type != feSatellite)
1820                 return -1;
1821 #if HAVE_DVB_API_VERSION < 3
1822         secToneMode_t tone;
1823 #else
1824         fe_sec_tone_mode_t tone;
1825 #endif
1826
1827         switch (t)
1828         {
1829         case toneOn:
1830                 tone = SEC_TONE_ON;
1831                 break;
1832         case toneOff:
1833                 tone = SEC_TONE_OFF;
1834                 break;
1835         default:
1836                 return -ENODEV;
1837         }
1838 #if HAVE_DVB_API_VERSION < 3    
1839         return ::ioctl(m_secfd, SEC_SET_TONE, tone);
1840 #else   
1841         return ::ioctl(m_fd, FE_SET_TONE, tone);
1842 #endif
1843 }
1844
1845 #if HAVE_DVB_API_VERSION < 3 && !defined(SEC_DISEQC_SEND_MASTER_CMD)
1846         #define SEC_DISEQC_SEND_MASTER_CMD _IOW('o', 97, struct secCommand *)
1847 #endif
1848
1849 RESULT eDVBFrontend::sendDiseqc(const eDVBDiseqcCommand &diseqc)
1850 {
1851 #if HAVE_DVB_API_VERSION < 3
1852         struct secCommand cmd;
1853         cmd.type = SEC_CMDTYPE_DISEQC_RAW;
1854         cmd.u.diseqc.cmdtype = diseqc.data[0];
1855         cmd.u.diseqc.addr = diseqc.data[1];
1856         cmd.u.diseqc.cmd = diseqc.data[2];
1857         cmd.u.diseqc.numParams = diseqc.len-3;
1858         memcpy(cmd.u.diseqc.params, diseqc.data+3, diseqc.len-3);
1859         if (::ioctl(m_secfd, SEC_DISEQC_SEND_MASTER_CMD, &cmd))
1860 #else
1861         struct dvb_diseqc_master_cmd cmd;
1862         memcpy(cmd.msg, diseqc.data, diseqc.len);
1863         cmd.msg_len = diseqc.len;
1864         if (::ioctl(m_fd, FE_DISEQC_SEND_MASTER_CMD, &cmd))
1865 #endif
1866                 return -EINVAL;
1867         return 0;
1868 }
1869
1870 #if HAVE_DVB_API_VERSION < 3 && !defined(SEC_DISEQC_SEND_BURST)
1871         #define SEC_DISEQC_SEND_BURST _IO('o', 96)
1872 #endif
1873 RESULT eDVBFrontend::sendToneburst(int burst)
1874 {
1875 #if HAVE_DVB_API_VERSION < 3
1876         secMiniCmd cmd = SEC_MINI_NONE;
1877 #else
1878         fe_sec_mini_cmd_t cmd = SEC_MINI_A;
1879 #endif
1880         if ( burst == eDVBSatelliteDiseqcParameters::A )
1881                 cmd = SEC_MINI_A;
1882         else if ( burst == eDVBSatelliteDiseqcParameters::B )
1883                 cmd = SEC_MINI_B;
1884 #if HAVE_DVB_API_VERSION < 3
1885         if (::ioctl(m_secfd, SEC_DISEQC_SEND_BURST, cmd))
1886                 return -EINVAL;
1887 #else
1888         if (::ioctl(m_fd, FE_DISEQC_SEND_BURST, cmd))
1889                 return -EINVAL;
1890 #endif
1891         return 0;
1892 }
1893
1894 RESULT eDVBFrontend::setSEC(iDVBSatelliteEquipmentControl *sec)
1895 {
1896         m_sec = sec;
1897         return 0;
1898 }
1899
1900 RESULT eDVBFrontend::setSecSequence(const eSecCommandList &list)
1901 {
1902         m_sec_sequence = list;
1903         return 0;
1904 }
1905
1906 RESULT eDVBFrontend::getData(int num, int &data)
1907 {
1908         if ( num < NUM_DATA_ENTRIES )
1909         {
1910                 data = m_data[num];
1911                 return 0;
1912         }
1913         return -EINVAL;
1914 }
1915
1916 RESULT eDVBFrontend::setData(int num, int val)
1917 {
1918         if ( num < NUM_DATA_ENTRIES )
1919         {
1920                 m_data[num] = val;
1921                 return 0;
1922         }
1923         return -EINVAL;
1924 }
1925
1926 int eDVBFrontend::isCompatibleWith(ePtr<iDVBFrontendParameters> &feparm)
1927 {
1928         int type;
1929         if (feparm->getSystem(type) || type != m_type)
1930                 return 0;
1931
1932         if (m_type == eDVBFrontend::feSatellite)
1933         {
1934                 ASSERT(m_sec);
1935                 eDVBFrontendParametersSatellite sat_parm;
1936                 ASSERT(!feparm->getDVBS(sat_parm));
1937                 return m_sec->canTune(sat_parm, this, 1 << m_fe);
1938         }
1939         return 1;
1940 }