source: ntrip/trunk/BNC/src/PPP/pppFilter.cpp@ 10251

Last change on this file since 10251 was 10251, checked in by stuerze, 10 months ago

changes regarding PPP: allow single frequency PPP and allow to select the frequency bands that are used

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[7237]1/* -------------------------------------------------------------------------
2 * BKG NTRIP Client
3 * -------------------------------------------------------------------------
4 *
5 * Class: t_pppFilter
6 *
7 * Purpose: Filter Adjustment
8 *
9 * Author: L. Mervart
10 *
11 * Created: 29-Jul-2014
12 *
[7267]13 * Changes:
[7237]14 *
15 * -----------------------------------------------------------------------*/
16
17#include <iostream>
18#include <iomanip>
19#include <cmath>
20#include <newmat.h>
21#include <newmatio.h>
22#include <newmatap.h>
23
24#include "pppFilter.h"
25#include "bncutils.h"
26#include "pppParlist.h"
27#include "pppObsPool.h"
28#include "pppStation.h"
[10034]29#include "pppClient.h"
[7237]30
31using namespace BNC_PPP;
32using namespace std;
33
34// Constructor
35////////////////////////////////////////////////////////////////////////////
[10034]36t_pppFilter::t_pppFilter() {
37 _parlist = 0;
[7237]38}
39
40// Destructor
41////////////////////////////////////////////////////////////////////////////
42t_pppFilter::~t_pppFilter() {
[10034]43 delete _parlist;
[7237]44}
45
46// Process Single Epoch
47////////////////////////////////////////////////////////////////////////////
[10034]48t_irc t_pppFilter::processEpoch(t_pppObsPool* obsPool) {
49
[9642]50 _numSat = 0;
[7302]51 const double maxSolGap = 60.0;
[10028]52 bool setNeuNoiseToZero = false;
[7237]53
[10034]54 if (!_parlist) {
55 _parlist = new t_pppParlist();
[10028]56 }
57
[7237]58 // Vector of all Observations
59 // --------------------------
[10034]60 t_pppObsPool::t_epoch *epoch = obsPool->lastEpoch();
[7237]61 if (!epoch) {
62 return failure;
63 }
[9642]64 vector<t_pppSatObs*> &allObs = epoch->obsVector();
[7237]65
66 // Time of the Epoch
67 // -----------------
68 _epoTime = epoch->epoTime();
69
[10015]70 if (!_firstEpoTime.valid() ||
71 !_lastEpoTimeOK.valid()||
72 (maxSolGap > 0.0 && _epoTime - _lastEpoTimeOK > maxSolGap)) {
[7237]73 _firstEpoTime = _epoTime;
74 }
75
[7267]76 string epoTimeStr = string(_epoTime);
77
[10034]78 const QList<char> &usedSystems = _parlist->usedSystems();
[10015]79
[7237]80 // Set Parameters
[10034]81 // --------------
82 if (_parlist->set(_epoTime, allObs) != success) {
[9419]83 return failure;
84 }
[10028]85
[7237]86 // Status Vector, Variance-Covariance Matrix
87 // -----------------------------------------
[10249]88 _xFltOld = _xFlt;
89 _QFltOld = _QFlt;
90 setStateVectorAndVarCovMatrix(setNeuNoiseToZero);
[8956]91
[7237]92 // Process Satellite Systems separately
93 // ------------------------------------
[9431]94 for (int iSys = 0; iSys < usedSystems.size(); iSys++) {
95 char sys = usedSystems[iSys];
[7267]96 unsigned int num = 0;
[7237]97 vector<t_pppSatObs*> obsVector;
98 for (unsigned jj = 0; jj < allObs.size(); jj++) {
[9419]99 if (allObs[jj]->prn().system() == sys) {
[7237]100 obsVector.push_back(allObs[jj]);
[10034]101 num++;
[7237]102 }
103 }
[10034]104 LOG << epoTimeStr << " SATNUM " << sys << ' ' << right << setw(2) << num << endl;
105 if (processSystem(OPT->LCs(sys), obsVector, epoch->pseudoObsIono()) != success) {
[10220]106 LOG << "t_pppFilter::processSystem() != success: " << sys << endl;
[7237]107 return failure;
108 }
109 }
[8912]110
111 // close epoch processing
112 // ----------------------
[10034]113 cmpDOP(allObs);
114 _parlist->printResult(_epoTime, _QFlt, _xFlt);
[9642]115 _lastEpoTimeOK = _epoTime; // remember time of last successful epoch processing
[7237]116 return success;
117}
118
119// Process Selected LCs
120////////////////////////////////////////////////////////////////////////////
[9642]121t_irc t_pppFilter::processSystem(const vector<t_lc::type> &LCs,
[10034]122 const vector<t_pppSatObs*> &obsVector,
123 bool pseudoObsIonoAvailable) {
[7237]124 LOG.setf(ios::fixed);
125
126 // Detect Cycle Slips
127 // ------------------
[10034]128 if (detectCycleSlips(LCs, obsVector) != success) {
[7237]129 return failure;
130 }
131
[10034]132 ColumnVector xSav = _xFlt;
[9642]133 SymmetricMatrix QSav = _QFlt;
[10034]134 string epoTimeStr = string(_epoTime);
135 const vector<t_pppParam*> &params = _parlist->params();
136 unsigned nPar = _parlist->nPar();
[8965]137
[9642]138 unsigned usedLCs = LCs.size();
[8965]139 if (OPT->_pseudoObsIono && !pseudoObsIonoAvailable) {
[9642]140 usedLCs -= 1; // GIM not used
[8961]141 }
142 // max Obs
[9538]143 unsigned maxObs = obsVector.size() * usedLCs;
144
[7237]145 // Outlier Detection Loop
146 // ----------------------
147 for (unsigned iOutlier = 0; iOutlier < maxObs; iOutlier++) {
148
149 if (iOutlier > 0) {
150 _xFlt = xSav;
151 _QFlt = QSav;
152 }
153
154 // First-Design Matrix, Terms Observed-Computed, Weight Matrix
155 // -----------------------------------------------------------
[9642]156 Matrix AA(maxObs, nPar);
[10034]157 ColumnVector ll(maxObs); ll = 0.0;
158 DiagonalMatrix PP(maxObs); PP = 0.0;
[8912]159
[7237]160 int iObs = -1;
161 vector<t_pppSatObs*> usedObs;
[9642]162 vector<t_lc::type> usedTypes;
[9386]163
164 // Real Observations
165 // =================
[10184]166 int nSat = 0;
[7237]167 for (unsigned ii = 0; ii < obsVector.size(); ii++) {
[9642]168 t_pppSatObs *obs = obsVector[ii];
[10034]169 if (iOutlier == 0) {
[9419]170 obs->resetOutlier();
171 }
[7237]172 if (!obs->outlier()) {
[9583]173 nSat++;
[8905]174 for (unsigned jj = 0; jj < usedLCs; jj++) {
[7237]175 const t_lc::type tLC = LCs[jj];
[9642]176 if (tLC == t_lc::GIM) {
177 continue;
178 }
[7237]179 ++iObs;
180 usedObs.push_back(obs);
181 usedTypes.push_back(tLC);
[9524]182 for (unsigned iPar = 0; iPar < nPar; iPar++) {
[9642]183 const t_pppParam *par = params[iPar];
[10034]184 AA[iObs][iPar] = par->partial(_epoTime, obs, tLC);
[7237]185 }
[10034]186 ll[iObs] = obs->obsValue(tLC) - obs->cmpValue(tLC) - DotProduct(_x0, AA.Row(iObs + 1));
[7237]187 PP[iObs] = 1.0 / (obs->sigma(tLC) * obs->sigma(tLC));
188 }
189 }
190 }
191
[9556]192 // Check number of observations
193 // ----------------------------
[10220]194 if (!nSat) {
[9701]195 return failure;
[9699]196 }
[9625]197
[9386]198 // Pseudo Obs Iono
199 // ================
200 if (OPT->_pseudoObsIono && pseudoObsIonoAvailable) {
201 for (unsigned ii = 0; ii < obsVector.size(); ii++) {
[9642]202 t_pppSatObs *obs = obsVector[ii];
[9386]203 if (!obs->outlier()) {
204 for (unsigned jj = 0; jj < usedLCs; jj++) {
205 const t_lc::type tLC = LCs[jj];
[10034]206 if (tLC == t_lc::GIM) {
[9386]207 ++iObs;
[9642]208 } else {
209 continue;
210 }
[9386]211 usedObs.push_back(obs);
212 usedTypes.push_back(tLC);
[9524]213 for (unsigned iPar = 0; iPar < nPar; iPar++) {
[9642]214 const t_pppParam *par = params[iPar];
[10034]215 AA[iObs][iPar] = par->partial(_epoTime, obs, tLC);
[9386]216 }
[10034]217 ll[iObs] = obs->obsValue(tLC) - obs->cmpValue(tLC) - DotProduct(_x0, AA.Row(iObs + 1));
[9386]218 PP[iObs] = 1.0 / (obs->sigma(tLC) * obs->sigma(tLC));
219 }
220 }
[8956]221 }
[8915]222 }
223
[9556]224 // Truncate matrices
225 // -----------------
[9642]226 AA = AA.Rows(1, iObs + 1);
227 ll = ll.Rows(1, iObs + 1);
228 PP = PP.SymSubMatrix(1, iObs + 1);
[7237]229
230 // Kalman update step
231 // ------------------
232 kalman(AA, ll, PP, _QFlt, _xFlt);
233
234 // Check Residuals
235 // ---------------
236 ColumnVector vv = AA * _xFlt - ll;
[9642]237 double maxOutlier = 0.0;
238 int maxOutlierIndex = -1;
239 t_lc::type maxOutlierLC = t_lc::dummy;
[7237]240 for (unsigned ii = 0; ii < usedObs.size(); ii++) {
241 const t_lc::type tLC = usedTypes[ii];
242 double res = fabs(vv[ii]);
243 if (res > usedObs[ii]->maxRes(tLC)) {
244 if (res > fabs(maxOutlier)) {
[9642]245 maxOutlier = vv[ii];
[7237]246 maxOutlierIndex = ii;
[9642]247 maxOutlierLC = tLC;
[7237]248 }
249 }
250 }
251
252 // Mark outlier or break outlier detection loop
253 // --------------------------------------------
254 if (maxOutlierIndex > -1) {
[9642]255 t_pppSatObs *obs = usedObs[maxOutlierIndex];
256 t_pppParam *par = 0;
[10034]257 LOG << epoTimeStr << " Outlier " << t_lc::toString(maxOutlierLC) << ' '
258 << obs->prn().toString() << ' ' << setw(8) << setprecision(4)
259 << maxOutlier << endl;
[9524]260 for (unsigned iPar = 0; iPar < nPar; iPar++) {
[9642]261 t_pppParam *hlp = params[iPar];
[10008]262 if (hlp->type() == t_pppParam::amb &&
[10034]263 hlp->prn() == obs->prn() &&
264 hlp->tLC() == usedTypes[maxOutlierIndex]) {
[7237]265 par = hlp;
266 }
267 }
[10034]268 if (par) {
[10250]269 if (par->ambResetCandidate()) {
[10248]270 resetAmb(obs->prn(), obsVector, maxOutlierLC, &QSav, &xSav);
[10250]271 adjustNoise(t_pppParam::ion, obs->prn(), 0.1, &QSav);
272 }
273 else {
274 par->setAmbResetCandidate();
275 obs->setOutlier();
276 }
[10021]277 }
[10034]278 else {
279 obs->setOutlier();
[7237]280 }
281 }
282 // Print Residuals
283 // ---------------
284 else {
[8905]285 for (unsigned jj = 0; jj < LCs.size(); jj++) {
286 for (unsigned ii = 0; ii < usedObs.size(); ii++) {
287 const t_lc::type tLC = usedTypes[ii];
[9642]288 t_pppSatObs *obs = usedObs[ii];
[8905]289 if (tLC == LCs[jj]) {
290 obs->setRes(tLC, vv[ii]);
[9642]291 LOG << epoTimeStr << " RES " << left << setw(3)
[9699]292 << t_lc::toString(tLC) << right << ' '
[10034]293 << obs->prn().toString() << ' '
294 << setw(8) << setprecision(4) << vv[ii] << endl;
[7237]295 }
296 }
297 }
298 break;
299 }
300 }
301 return success;
302}
303
304// Cycle-Slip Detection
305////////////////////////////////////////////////////////////////////////////
[9642]306t_irc t_pppFilter::detectCycleSlips(const vector<t_lc::type> &LCs,
[10034]307 const vector<t_pppSatObs*> &obsVector) {
308
[10251]309 const double SLIP = 200.0;
[9386]310 string epoTimeStr = string(_epoTime);
[10034]311 const vector<t_pppParam*> &params = _parlist->params();
[7237]312
313 for (unsigned ii = 0; ii < LCs.size(); ii++) {
[9642]314 const t_lc::type &tLC = LCs[ii];
[7237]315 if (t_lc::includesPhase(tLC)) {
316 for (unsigned iObs = 0; iObs < obsVector.size(); iObs++) {
[9642]317 const t_pppSatObs *obs = obsVector[iObs];
[7237]318
[7267]319 // Check set Slips and Jump Counters
[7237]320 // ---------------------------------
321 bool slip = false;
[9386]322
[7237]323 if (obs->slip()) {
[10034]324 LOG << epoTimeStr << "cycle slip set (obs) " << obs->prn().toString() << endl;
[7237]325 slip = true;
326 }
327
[10034]328 if (_slips[obs->prn()]._obsSlipCounter != -1 &&
329 _slips[obs->prn()]._obsSlipCounter != obs->slipCounter()) {
330 LOG << epoTimeStr << "cycle slip set (obsSlipCounter) " << obs->prn().toString() << endl;
[7237]331 slip = true;
332 }
[10034]333 _slips[obs->prn()]._obsSlipCounter = obs->slipCounter();
334
335 if (_slips[obs->prn()]._biasJumpCounter != -1 &&
336 _slips[obs->prn()]._biasJumpCounter != obs->biasJumpCounter()) {
337 LOG << epoTimeStr << "cycle slip set (biasJumpCounter) " << obs->prn().toString() << endl;
[7237]338 slip = true;
339 }
[10034]340 _slips[obs->prn()]._biasJumpCounter = obs->biasJumpCounter();
341
[7237]342 // Slip Set
[7267]343 // --------
[7237]344 if (slip) {
[10034]345 resetAmb(obs->prn(), obsVector, tLC);
[10250]346 adjustNoise(t_pppParam::ion, obs->prn(), 0.1);
[7237]347 }
[10034]348
[10002]349 // Check Pre-Fit Residuals
[10034]350 // -----------------------
[7237]351 else {
[10034]352 ColumnVector AA(params.size());
353 for (unsigned iPar = 0; iPar < params.size(); iPar++) {
354 const t_pppParam* par = params[iPar];
355 AA[iPar] = par->partial(_epoTime, obs, tLC);
[7237]356 }
[10034]357
358 double ll = obs->obsValue(tLC) - obs->cmpValue(tLC) - DotProduct(_x0, AA);
359 double vv = DotProduct(AA, _xFlt) - ll;
360
361 if (fabs(vv) > SLIP) {
362 LOG << epoTimeStr << " cycle slip detected " << t_lc::toString(tLC) << ' '
363 << obs->prn().toString() << ' ' << setw(8) << setprecision(4) << vv << endl;
364 resetAmb(obs->prn(), obsVector, tLC);
[10250]365 adjustNoise(t_pppParam::ion, obs->prn(), 0.1);
[10034]366 }
367 }
[7237]368 }
369 }
370 }
[10034]371
[7237]372 return success;
373}
374
375// Reset Ambiguity Parameter (cycle slip)
376////////////////////////////////////////////////////////////////////////////
[10248]377t_irc t_pppFilter::resetAmb(const t_prn prn, const vector<t_pppSatObs*> &obsVector, t_lc::type lc,
378 SymmetricMatrix *QSav, ColumnVector *xSav) {
[8965]379
[7237]380 t_irc irc = failure;
[10034]381 vector<t_pppParam*>& params = _parlist->params();
[7237]382 for (unsigned iPar = 0; iPar < params.size(); iPar++) {
[9642]383 t_pppParam *par = params[iPar];
[7237]384 if (par->type() == t_pppParam::amb && par->prn() == prn) {
[10249]385 int ind = par->indexNew();
386 double eleSat = par->ambEleSat();
[10156]387 bncTime firstObsTime;
388 bncTime lastObsTime = par->lastObsTime();
[10249]389 (par->firstObsTime().undef()) ?
390 firstObsTime = lastObsTime : firstObsTime = par->firstObsTime();
[7237]391 t_lc::type tLC = par->tLC();
[10184]392 if (tLC != lc) {continue;}
[7237]393 LOG << string(_epoTime) << " RESET " << par->toString() << endl;
[10034]394 delete par; par = new t_pppParam(t_pppParam::amb, prn, tLC, &obsVector);
[7237]395 par->setIndex(ind);
[10156]396 par->setFirstObsTime(firstObsTime);
397 par->setLastObsTime(lastObsTime);
[10248]398 par->setAmbEleSat(eleSat);
[7237]399 params[iPar] = par;
400 for (unsigned ii = 1; ii <= params.size(); ii++) {
[9642]401 _QFlt(ii, ind + 1) = 0.0;
[7237]402 if (QSav) {
[10250]403 (*QSav)(ii, ind + 1) = 0.0;
[7237]404 }
405 }
[9642]406 _QFlt(ind + 1, ind + 1) = par->sigma0() * par->sigma0();
[7237]407 if (QSav) {
[9642]408 (*QSav)(ind + 1, ind + 1) = _QFlt(ind + 1, ind + 1);
[7237]409 }
410 _xFlt[ind] = 0.0;
411 if (xSav) {
412 (*xSav)[ind] = _xFlt[ind];
413 }
414 _x0[ind] = par->x0();
[10248]415 return success;
[7237]416 }
417 }
418
419 return irc;
420}
421
[10248]422// Adjust process noise of individual parameters
[10168]423////////////////////////////////////////////////////////////////////////////
[10248]424t_irc t_pppFilter::adjustNoise(t_pppParam::e_type parType, t_prn prn, double noise,
425 SymmetricMatrix *QSav) {
426
[10168]427 t_irc irc = failure;
[10248]428 vector<t_pppParam*>& params = _parlist->params();
[10168]429 for (unsigned iPar = 0; iPar < params.size(); iPar++) {
430 t_pppParam *par = params[iPar];
431 if (par->type() == parType && par->prn() == prn) {
[10249]432 int iOld = par->indexOld();
433 int iNew = par->indexNew();
434 LOG << string(_epoTime) << " ADJUSTNOISE " << prn.toString() << endl;
435 _QFlt[iNew][iNew] = _QFltOld[iOld][iOld] + noise * noise;
[10248]436 if (QSav) {
[10249]437 (*QSav)(iNew + 1, iNew + 1) = _QFlt(iNew + 1, iNew + 1);
[10248]438 }
[10249]439 return success;
[10168]440 }
441 }
442 return irc;
443}
444
[7237]445// Compute various DOP Values
446////////////////////////////////////////////////////////////////////////////
[10034]447void t_pppFilter::cmpDOP(const vector<t_pppSatObs*> &obsVector) {
[7237]448
449 _dop.reset();
450
451 try {
452 const unsigned numPar = 4;
453 Matrix AA(obsVector.size(), numPar);
454 _numSat = 0;
455 for (unsigned ii = 0; ii < obsVector.size(); ii++) {
[9642]456 t_pppSatObs *obs = obsVector[ii];
[7237]457 if (obs->isValid() && !obs->outlier()) {
458 ++_numSat;
459 for (unsigned iPar = 0; iPar < numPar; iPar++) {
[10034]460 const t_pppParam* par = _parlist->params()[iPar];
461 AA[_numSat - 1][iPar] = par->partial(_epoTime, obs, t_lc::c1);
[7237]462 }
463 }
464 }
465 if (_numSat < 4) {
466 return;
467 }
468 AA = AA.Rows(1, _numSat);
[10034]469 SymmetricMatrix NN; NN << AA.t() * AA;
[7237]470 SymmetricMatrix QQ = NN.i();
[7267]471
[9642]472 _dop.H = sqrt(QQ(1, 1) + QQ(2, 2));
473 _dop.V = sqrt(QQ(3, 3));
474 _dop.P = sqrt(QQ(1, 1) + QQ(2, 2) + QQ(3, 3));
475 _dop.T = sqrt(QQ(4, 4));
476 _dop.G = sqrt(QQ(1, 1) + QQ(2, 2) + QQ(3, 3) + QQ(4, 4));
[7237]477 }
[10034]478 catch (...) {
479 }
[7237]480}
481
[9526]482//
[7237]483////////////////////////////////////////////////////////////////////////////
[10249]484void t_pppFilter::predictCovCrdPart(bool setNeuNoiseToZero) {
[7237]485
[10034]486 const vector<t_pppParam*>& params = _parlist->params();
487
[7237]488 if (params.size() < 3) {
489 return;
490 }
491
492 bool first = (params[0]->indexOld() < 0);
493
[10034]494 SymmetricMatrix Qneu(3); Qneu = 0.0;
[7237]495 for (unsigned ii = 0; ii < 3; ii++) {
[9642]496 const t_pppParam *par = params[ii];
[7237]497 if (first) {
498 Qneu[ii][ii] = par->sigma0() * par->sigma0();
[10034]499 }
500 else {
[7237]501 Qneu[ii][ii] = par->noise() * par->noise();
502 }
503 }
504
[9642]505 const t_pppStation *sta = PPP_CLIENT->staRover();
[7237]506 SymmetricMatrix Qxyz(3);
507 covariNEU_XYZ(Qneu, sta->ellApr().data(), Qxyz);
508
509 if (first) {
[9642]510 _QFlt.SymSubMatrix(1, 3) = Qxyz;
[10034]511 }
512 else {
[7237]513 double dt = _epoTime - _firstEpoTime;
[10010]514 if (dt < OPT->_seedingTime || setNeuNoiseToZero) {
[10249]515 _QFlt.SymSubMatrix(1, 3) = _QFltOld.SymSubMatrix(1, 3);
[10034]516 }
517 else {
[10249]518 _QFlt.SymSubMatrix(1, 3) = _QFltOld.SymSubMatrix(1, 3) + Qxyz;
[7237]519 }
520 }
521}
[8912]522
[9526]523//
524////////////////////////////////////////////////////////////////////////////
[10249]525void t_pppFilter::setStateVectorAndVarCovMatrix(bool setNeuNoiseToZero) {
[9526]526
[10034]527 const vector<t_pppParam*>& params = _parlist->params();
[9526]528 unsigned nPar = params.size();
529
[10034]530 _QFlt.ReSize(nPar); _QFlt = 0.0;
531 _xFlt.ReSize(nPar); _xFlt = 0.0;
532 _x0.ReSize(nPar); _x0 = 0.0;
[9526]533
534 for (unsigned ii = 0; ii < nPar; ii++) {
[9642]535 t_pppParam *par1 = params[ii];
[10249]536 if (_QFltOld.size() == 0) {
[9526]537 par1->resetIndex();
538 }
539 _x0[ii] = par1->x0();
540 int iOld = par1->indexOld();
541 if (iOld < 0) {
542 _QFlt[ii][ii] = par1->sigma0() * par1->sigma0(); // new parameter
[9642]543 } else {
[10249]544 _QFlt[ii][ii] = _QFltOld[iOld][iOld] + par1->noise() * par1->noise();
545 _xFlt[ii] = _xFltOld[iOld];
[9526]546 for (unsigned jj = 0; jj < ii; jj++) {
[9642]547 t_pppParam *par2 = params[jj];
548 int jOld = par2->indexOld();
[9526]549 if (jOld >= 0) {
[10249]550 _QFlt[ii][jj] = _QFltOld(iOld + 1, jOld + 1);
[9526]551 }
552 }
553 }
554 }
[10249]555 predictCovCrdPart(setNeuNoiseToZero);
[9526]556}
557
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