QGIS API Documentation  3.4.15-Madeira (e83d02e274)
qgsgeos.cpp
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1 /***************************************************************************
2  qgsgeos.cpp
3  -------------------------------------------------------------------
4 Date : 22 Sept 2014
5 Copyright : (C) 2014 by Marco Hugentobler
6 email : marco.hugentobler at sourcepole dot com
7  ***************************************************************************
8  * *
9  * This program is free software; you can redistribute it and/or modify *
10  * it under the terms of the GNU General Public License as published by *
11  * the Free Software Foundation; either version 2 of the License, or *
12  * (at your option) any later version. *
13  * *
14  ***************************************************************************/
15 
16 #include "qgsgeos.h"
17 #include "qgsabstractgeometry.h"
18 #include "qgsgeometrycollection.h"
19 #include "qgsgeometryfactory.h"
20 #include "qgslinestring.h"
21 #include "qgsmulticurve.h"
22 #include "qgsmultilinestring.h"
23 #include "qgsmultipoint.h"
24 #include "qgsmultipolygon.h"
25 #include "qgslogger.h"
26 #include "qgspolygon.h"
27 #include "qgsgeometryeditutils.h"
28 #include <limits>
29 #include <cstdio>
30 
31 #define DEFAULT_QUADRANT_SEGMENTS 8
32 
33 #define CATCH_GEOS(r) \
34  catch (GEOSException &) \
35  { \
36  return r; \
37  }
38 
39 #define CATCH_GEOS_WITH_ERRMSG(r) \
40  catch (GEOSException &e) \
41  { \
42  if ( errorMsg ) \
43  { \
44  *errorMsg = e.what(); \
45  } \
46  return r; \
47  }
48 
50 
51 static void throwGEOSException( const char *fmt, ... )
52 {
53  va_list ap;
54  char buffer[1024];
55 
56  va_start( ap, fmt );
57  vsnprintf( buffer, sizeof buffer, fmt, ap );
58  va_end( ap );
59 
60  qWarning( "GEOS exception: %s", buffer );
61  QString message = QString::fromUtf8( buffer );
62 
63 #ifdef _MSC_VER
64  // stupid stupid MSVC, *SOMETIMES* raises it's own exception if we throw GEOSException, resulting in a crash!
65  // see https://issues.qgis.org/issues/14752
66  // if you want to test alternative fixes for this, run the testqgsexpression.cpp test suite - that will crash
67  // and burn on the "line_interpolate_point point" test if a GEOSException is thrown.
68  // TODO - find a real fix for the underlying issue
69  try
70  {
71  throw GEOSException( message );
72  }
73  catch ( ... )
74  {
75  // oops, msvc threw an exception when we tried to throw the exception!
76  // just throw nothing instead (except your mouse at your monitor)
77  }
78 #else
79  throw GEOSException( message );
80 #endif
81 }
82 
83 
84 static void printGEOSNotice( const char *fmt, ... )
85 {
86 #if defined(QGISDEBUG)
87  va_list ap;
88  char buffer[1024];
89 
90  va_start( ap, fmt );
91  vsnprintf( buffer, sizeof buffer, fmt, ap );
92  va_end( ap );
93 
94  QgsDebugMsg( QStringLiteral( "GEOS notice: %1" ).arg( QString::fromUtf8( buffer ) ) );
95 #else
96  Q_UNUSED( fmt );
97 #endif
98 }
99 
100 class GEOSInit
101 {
102  public:
103  GEOSContextHandle_t ctxt;
104 
105  GEOSInit()
106  {
107  ctxt = initGEOS_r( printGEOSNotice, throwGEOSException );
108  }
109 
110  ~GEOSInit()
111  {
112  finishGEOS_r( ctxt );
113  }
114 
115  GEOSInit( const GEOSInit &rh ) = delete;
116  GEOSInit &operator=( const GEOSInit &rh ) = delete;
117 };
118 
119 static GEOSInit geosinit;
120 
121 void geos::GeosDeleter::operator()( GEOSGeometry *geom )
122 {
123  GEOSGeom_destroy_r( geosinit.ctxt, geom );
124 }
125 
126 void geos::GeosDeleter::operator()( const GEOSPreparedGeometry *geom )
127 {
128  GEOSPreparedGeom_destroy_r( geosinit.ctxt, geom );
129 }
130 
131 void geos::GeosDeleter::operator()( GEOSBufferParams *params )
132 {
133  GEOSBufferParams_destroy_r( geosinit.ctxt, params );
134 }
135 
136 void geos::GeosDeleter::operator()( GEOSCoordSequence *sequence )
137 {
138  GEOSCoordSeq_destroy_r( geosinit.ctxt, sequence );
139 }
140 
141 
143 
144 
146  : QgsGeometryEngine( geometry )
147  , mGeos( nullptr )
148  , mPrecision( precision )
149 {
150  cacheGeos();
151 }
152 
154 {
155  QgsGeometry g( QgsGeos::fromGeos( geos ) );
156  GEOSGeom_destroy_r( QgsGeos::getGEOSHandler(), geos );
157  return g;
158 }
159 
161 {
162  QgsGeometry g( QgsGeos::fromGeos( geos.get() ) );
163  return g;
164 }
165 
167 {
168  if ( geometry.isNull() )
169  {
170  return nullptr;
171  }
172 
173  return asGeos( geometry.constGet(), precision );
174 }
175 
176 QgsGeometry::OperationResult QgsGeos::addPart( QgsGeometry &geometry, GEOSGeometry *newPart )
177 {
178  if ( geometry.isNull() )
179  {
181  }
182  if ( !newPart )
183  {
185  }
186 
187  std::unique_ptr< QgsAbstractGeometry > geom = fromGeos( newPart );
188  return QgsGeometryEditUtils::addPart( geometry.get(), std::move( geom ) );
189 }
190 
192 {
193  mGeos.reset();
194  mGeosPrepared.reset();
195  cacheGeos();
196 }
197 
199 {
200  mGeosPrepared.reset();
201  if ( mGeos )
202  {
203  mGeosPrepared.reset( GEOSPrepare_r( geosinit.ctxt, mGeos.get() ) );
204  }
205 }
206 
207 void QgsGeos::cacheGeos() const
208 {
209  if ( !mGeometry )
210  {
211  return;
212  }
213 
214  mGeos = asGeos( mGeometry, mPrecision );
215 }
216 
217 QgsAbstractGeometry *QgsGeos::intersection( const QgsAbstractGeometry *geom, QString *errorMsg ) const
218 {
219  return overlay( geom, OverlayIntersection, errorMsg ).release();
220 }
221 
222 QgsAbstractGeometry *QgsGeos::difference( const QgsAbstractGeometry *geom, QString *errorMsg ) const
223 {
224  return overlay( geom, OverlayDifference, errorMsg ).release();
225 }
226 
227 std::unique_ptr<QgsAbstractGeometry> QgsGeos::clip( const QgsRectangle &rect, QString *errorMsg ) const
228 {
229  if ( !mGeos || rect.isNull() || rect.isEmpty() )
230  {
231  return nullptr;
232  }
233 
234  try
235  {
236  geos::unique_ptr opGeom( GEOSClipByRect_r( geosinit.ctxt, mGeos.get(), rect.xMinimum(), rect.yMinimum(), rect.xMaximum(), rect.yMaximum() ) );
237  return fromGeos( opGeom.get() );
238  }
239  catch ( GEOSException &e )
240  {
241  if ( errorMsg )
242  {
243  *errorMsg = e.what();
244  }
245  return nullptr;
246  }
247 }
248 
249 
250 
251 
252 void QgsGeos::subdivideRecursive( const GEOSGeometry *currentPart, int maxNodes, int depth, QgsGeometryCollection *parts, const QgsRectangle &clipRect ) const
253 {
254  int partType = GEOSGeomTypeId_r( geosinit.ctxt, currentPart );
255  if ( qgsDoubleNear( clipRect.width(), 0.0 ) && qgsDoubleNear( clipRect.height(), 0.0 ) )
256  {
257  if ( partType == GEOS_POINT )
258  {
259  parts->addGeometry( fromGeos( currentPart ).release() );
260  return;
261  }
262  else
263  {
264  return;
265  }
266  }
267 
268  if ( partType == GEOS_MULTILINESTRING || partType == GEOS_MULTIPOLYGON || partType == GEOS_GEOMETRYCOLLECTION )
269  {
270  int partCount = GEOSGetNumGeometries_r( geosinit.ctxt, currentPart );
271  for ( int i = 0; i < partCount; ++i )
272  {
273  subdivideRecursive( GEOSGetGeometryN_r( geosinit.ctxt, currentPart, i ), maxNodes, depth, parts, clipRect );
274  }
275  return;
276  }
277 
278  if ( depth > 50 )
279  {
280  parts->addGeometry( fromGeos( currentPart ).release() );
281  return;
282  }
283 
284  int vertexCount = GEOSGetNumCoordinates_r( geosinit.ctxt, currentPart );
285  if ( vertexCount == 0 )
286  {
287  return;
288  }
289  else if ( vertexCount < maxNodes )
290  {
291  parts->addGeometry( fromGeos( currentPart ).release() );
292  return;
293  }
294 
295  // chop clipping rect in half by longest side
296  double width = clipRect.width();
297  double height = clipRect.height();
298  QgsRectangle halfClipRect1 = clipRect;
299  QgsRectangle halfClipRect2 = clipRect;
300  if ( width > height )
301  {
302  halfClipRect1.setXMaximum( clipRect.xMinimum() + width / 2.0 );
303  halfClipRect2.setXMinimum( halfClipRect1.xMaximum() );
304  }
305  else
306  {
307  halfClipRect1.setYMaximum( clipRect.yMinimum() + height / 2.0 );
308  halfClipRect2.setYMinimum( halfClipRect1.yMaximum() );
309  }
310 
311  if ( height <= 0 )
312  {
313  halfClipRect1.setYMinimum( halfClipRect1.yMinimum() - std::numeric_limits<double>::epsilon() );
314  halfClipRect2.setYMinimum( halfClipRect2.yMinimum() - std::numeric_limits<double>::epsilon() );
315  halfClipRect1.setYMaximum( halfClipRect1.yMaximum() + std::numeric_limits<double>::epsilon() );
316  halfClipRect2.setYMaximum( halfClipRect2.yMaximum() + std::numeric_limits<double>::epsilon() );
317  }
318  if ( width <= 0 )
319  {
320  halfClipRect1.setXMinimum( halfClipRect1.xMinimum() - std::numeric_limits<double>::epsilon() );
321  halfClipRect2.setXMinimum( halfClipRect2.xMinimum() - std::numeric_limits<double>::epsilon() );
322  halfClipRect1.setXMaximum( halfClipRect1.xMaximum() + std::numeric_limits<double>::epsilon() );
323  halfClipRect2.setXMaximum( halfClipRect2.xMaximum() + std::numeric_limits<double>::epsilon() );
324  }
325 
326  geos::unique_ptr clipPart1( GEOSClipByRect_r( geosinit.ctxt, currentPart, halfClipRect1.xMinimum(), halfClipRect1.yMinimum(), halfClipRect1.xMaximum(), halfClipRect1.yMaximum() ) );
327  geos::unique_ptr clipPart2( GEOSClipByRect_r( geosinit.ctxt, currentPart, halfClipRect2.xMinimum(), halfClipRect2.yMinimum(), halfClipRect2.xMaximum(), halfClipRect2.yMaximum() ) );
328 
329  ++depth;
330 
331  if ( clipPart1 )
332  {
333  subdivideRecursive( clipPart1.get(), maxNodes, depth, parts, halfClipRect1 );
334  }
335  if ( clipPart2 )
336  {
337  subdivideRecursive( clipPart2.get(), maxNodes, depth, parts, halfClipRect2 );
338  }
339 }
340 
341 std::unique_ptr<QgsAbstractGeometry> QgsGeos::subdivide( int maxNodes, QString *errorMsg ) const
342 {
343  if ( !mGeos )
344  {
345  return nullptr;
346  }
347 
348  // minimum allowed max is 8
349  maxNodes = std::max( maxNodes, 8 );
350 
351  std::unique_ptr< QgsGeometryCollection > parts = QgsGeometryFactory::createCollectionOfType( mGeometry->wkbType() );
352  try
353  {
354  subdivideRecursive( mGeos.get(), maxNodes, 0, parts.get(), mGeometry->boundingBox() );
355  }
356  CATCH_GEOS_WITH_ERRMSG( nullptr )
357 
358  return std::move( parts );
359 }
360 
361 QgsAbstractGeometry *QgsGeos::combine( const QgsAbstractGeometry *geom, QString *errorMsg ) const
362 {
363  return overlay( geom, OverlayUnion, errorMsg ).release();
364 }
365 
366 QgsAbstractGeometry *QgsGeos::combine( const QVector<QgsAbstractGeometry *> &geomList, QString *errorMsg ) const
367 {
368  QVector< GEOSGeometry * > geosGeometries;
369  geosGeometries.reserve( geomList.size() );
370  for ( const QgsAbstractGeometry *g : geomList )
371  {
372  if ( !g )
373  continue;
374 
375  geosGeometries << asGeos( g, mPrecision ).release();
376  }
377 
378  geos::unique_ptr geomUnion;
379  try
380  {
381  geos::unique_ptr geomCollection = createGeosCollection( GEOS_GEOMETRYCOLLECTION, geosGeometries );
382  geomUnion.reset( GEOSUnaryUnion_r( geosinit.ctxt, geomCollection.get() ) );
383  }
384  CATCH_GEOS_WITH_ERRMSG( nullptr )
385 
386  std::unique_ptr< QgsAbstractGeometry > result = fromGeos( geomUnion.get() );
387  return result.release();
388 }
389 
390 QgsAbstractGeometry *QgsGeos::combine( const QVector<QgsGeometry> &geomList, QString *errorMsg ) const
391 {
392  QVector< GEOSGeometry * > geosGeometries;
393  geosGeometries.reserve( geomList.size() );
394  for ( const QgsGeometry &g : geomList )
395  {
396  if ( g.isNull() )
397  continue;
398 
399  geosGeometries << asGeos( g.constGet(), mPrecision ).release();
400  }
401 
402  geos::unique_ptr geomUnion;
403  try
404  {
405  geos::unique_ptr geomCollection = createGeosCollection( GEOS_GEOMETRYCOLLECTION, geosGeometries );
406  geomUnion.reset( GEOSUnaryUnion_r( geosinit.ctxt, geomCollection.get() ) );
407  }
408  CATCH_GEOS_WITH_ERRMSG( nullptr )
409 
410  std::unique_ptr< QgsAbstractGeometry > result = fromGeos( geomUnion.get() );
411  return result.release();
412 }
413 
414 QgsAbstractGeometry *QgsGeos::symDifference( const QgsAbstractGeometry *geom, QString *errorMsg ) const
415 {
416  return overlay( geom, OverlaySymDifference, errorMsg ).release();
417 }
418 
419 double QgsGeos::distance( const QgsAbstractGeometry *geom, QString *errorMsg ) const
420 {
421  double distance = -1.0;
422  if ( !mGeos )
423  {
424  return distance;
425  }
426 
427  geos::unique_ptr otherGeosGeom( asGeos( geom, mPrecision ) );
428  if ( !otherGeosGeom )
429  {
430  return distance;
431  }
432 
433  try
434  {
435  GEOSDistance_r( geosinit.ctxt, mGeos.get(), otherGeosGeom.get(), &distance );
436  }
437  CATCH_GEOS_WITH_ERRMSG( -1.0 )
438 
439  return distance;
440 }
441 
442 double QgsGeos::hausdorffDistance( const QgsAbstractGeometry *geom, QString *errorMsg ) const
443 {
444  double distance = -1.0;
445  if ( !mGeos )
446  {
447  return distance;
448  }
449 
450  geos::unique_ptr otherGeosGeom( asGeos( geom, mPrecision ) );
451  if ( !otherGeosGeom )
452  {
453  return distance;
454  }
455 
456  try
457  {
458  GEOSHausdorffDistance_r( geosinit.ctxt, mGeos.get(), otherGeosGeom.get(), &distance );
459  }
460  CATCH_GEOS_WITH_ERRMSG( -1.0 )
461 
462  return distance;
463 }
464 
465 double QgsGeos::hausdorffDistanceDensify( const QgsAbstractGeometry *geom, double densifyFraction, QString *errorMsg ) const
466 {
467  double distance = -1.0;
468  if ( !mGeos )
469  {
470  return distance;
471  }
472 
473  geos::unique_ptr otherGeosGeom( asGeos( geom, mPrecision ) );
474  if ( !otherGeosGeom )
475  {
476  return distance;
477  }
478 
479  try
480  {
481  GEOSHausdorffDistanceDensify_r( geosinit.ctxt, mGeos.get(), otherGeosGeom.get(), densifyFraction, &distance );
482  }
483  CATCH_GEOS_WITH_ERRMSG( -1.0 )
484 
485  return distance;
486 }
487 
488 bool QgsGeos::intersects( const QgsAbstractGeometry *geom, QString *errorMsg ) const
489 {
490  return relation( geom, RelationIntersects, errorMsg );
491 }
492 
493 bool QgsGeos::touches( const QgsAbstractGeometry *geom, QString *errorMsg ) const
494 {
495  return relation( geom, RelationTouches, errorMsg );
496 }
497 
498 bool QgsGeos::crosses( const QgsAbstractGeometry *geom, QString *errorMsg ) const
499 {
500  return relation( geom, RelationCrosses, errorMsg );
501 }
502 
503 bool QgsGeos::within( const QgsAbstractGeometry *geom, QString *errorMsg ) const
504 {
505  return relation( geom, RelationWithin, errorMsg );
506 }
507 
508 bool QgsGeos::overlaps( const QgsAbstractGeometry *geom, QString *errorMsg ) const
509 {
510  return relation( geom, RelationOverlaps, errorMsg );
511 }
512 
513 bool QgsGeos::contains( const QgsAbstractGeometry *geom, QString *errorMsg ) const
514 {
515  return relation( geom, RelationContains, errorMsg );
516 }
517 
518 bool QgsGeos::disjoint( const QgsAbstractGeometry *geom, QString *errorMsg ) const
519 {
520  return relation( geom, RelationDisjoint, errorMsg );
521 }
522 
523 QString QgsGeos::relate( const QgsAbstractGeometry *geom, QString *errorMsg ) const
524 {
525  if ( !mGeos )
526  {
527  return QString();
528  }
529 
530  geos::unique_ptr geosGeom( asGeos( geom, mPrecision ) );
531  if ( !geosGeom )
532  {
533  return QString();
534  }
535 
536  QString result;
537  try
538  {
539  char *r = GEOSRelate_r( geosinit.ctxt, mGeos.get(), geosGeom.get() );
540  if ( r )
541  {
542  result = QString( r );
543  GEOSFree_r( geosinit.ctxt, r );
544  }
545  }
546  catch ( GEOSException &e )
547  {
548  if ( errorMsg )
549  {
550  *errorMsg = e.what();
551  }
552  }
553 
554  return result;
555 }
556 
557 bool QgsGeos::relatePattern( const QgsAbstractGeometry *geom, const QString &pattern, QString *errorMsg ) const
558 {
559  if ( !mGeos || !geom )
560  {
561  return false;
562  }
563 
564  geos::unique_ptr geosGeom( asGeos( geom, mPrecision ) );
565  if ( !geosGeom )
566  {
567  return false;
568  }
569 
570  bool result = false;
571  try
572  {
573  result = ( GEOSRelatePattern_r( geosinit.ctxt, mGeos.get(), geosGeom.get(), pattern.toLocal8Bit().constData() ) == 1 );
574  }
575  catch ( GEOSException &e )
576  {
577  if ( errorMsg )
578  {
579  *errorMsg = e.what();
580  }
581  }
582 
583  return result;
584 }
585 
586 double QgsGeos::area( QString *errorMsg ) const
587 {
588  double area = -1.0;
589  if ( !mGeos )
590  {
591  return area;
592  }
593 
594  try
595  {
596  if ( GEOSArea_r( geosinit.ctxt, mGeos.get(), &area ) != 1 )
597  return -1.0;
598  }
599  CATCH_GEOS_WITH_ERRMSG( -1.0 );
600  return area;
601 }
602 
603 double QgsGeos::length( QString *errorMsg ) const
604 {
605  double length = -1.0;
606  if ( !mGeos )
607  {
608  return length;
609  }
610  try
611  {
612  if ( GEOSLength_r( geosinit.ctxt, mGeos.get(), &length ) != 1 )
613  return -1.0;
614  }
615  CATCH_GEOS_WITH_ERRMSG( -1.0 )
616  return length;
617 }
618 
620  QVector<QgsGeometry> &newGeometries,
621  bool topological,
622  QgsPointSequence &topologyTestPoints,
623  QString *errorMsg ) const
624 {
625 
626  EngineOperationResult returnCode = Success;
627  if ( !mGeos || !mGeometry )
628  {
629  return InvalidBaseGeometry;
630  }
631 
632  //return if this type is point/multipoint
633  if ( mGeometry->dimension() == 0 )
634  {
635  return SplitCannotSplitPoint; //cannot split points
636  }
637 
638  if ( !GEOSisValid_r( geosinit.ctxt, mGeos.get() ) )
639  return InvalidBaseGeometry;
640 
641  //make sure splitLine is valid
642  if ( ( mGeometry->dimension() == 1 && splitLine.numPoints() < 1 ) ||
643  ( mGeometry->dimension() == 2 && splitLine.numPoints() < 2 ) )
644  return InvalidInput;
645 
646  newGeometries.clear();
647  geos::unique_ptr splitLineGeos;
648 
649  try
650  {
651  if ( splitLine.numPoints() > 1 )
652  {
653  splitLineGeos = createGeosLinestring( &splitLine, mPrecision );
654  }
655  else if ( splitLine.numPoints() == 1 )
656  {
657  splitLineGeos = createGeosPointXY( splitLine.xAt( 0 ), splitLine.yAt( 0 ), false, 0, false, 0, 2, mPrecision );
658  }
659  else
660  {
661  return InvalidInput;
662  }
663 
664  if ( !GEOSisValid_r( geosinit.ctxt, splitLineGeos.get() ) || !GEOSisSimple_r( geosinit.ctxt, splitLineGeos.get() ) )
665  {
666  return InvalidInput;
667  }
668 
669  if ( topological )
670  {
671  //find out candidate points for topological corrections
672  if ( !topologicalTestPointsSplit( splitLineGeos.get(), topologyTestPoints ) )
673  {
674  return InvalidInput; // TODO: is it really an invalid input?
675  }
676  }
677 
678  //call split function depending on geometry type
679  if ( mGeometry->dimension() == 1 )
680  {
681  returnCode = splitLinearGeometry( splitLineGeos.get(), newGeometries );
682  }
683  else if ( mGeometry->dimension() == 2 )
684  {
685  returnCode = splitPolygonGeometry( splitLineGeos.get(), newGeometries );
686  }
687  else
688  {
689  return InvalidInput;
690  }
691  }
693 
694  return returnCode;
695 }
696 
697 
698 
699 bool QgsGeos::topologicalTestPointsSplit( const GEOSGeometry *splitLine, QgsPointSequence &testPoints, QString *errorMsg ) const
700 {
701  //Find out the intersection points between splitLineGeos and this geometry.
702  //These points need to be tested for topological correctness by the calling function
703  //if topological editing is enabled
704 
705  if ( !mGeos )
706  {
707  return false;
708  }
709 
710  try
711  {
712  testPoints.clear();
713  geos::unique_ptr intersectionGeom( GEOSIntersection_r( geosinit.ctxt, mGeos.get(), splitLine ) );
714  if ( !intersectionGeom )
715  return false;
716 
717  bool simple = false;
718  int nIntersectGeoms = 1;
719  if ( GEOSGeomTypeId_r( geosinit.ctxt, intersectionGeom.get() ) == GEOS_LINESTRING
720  || GEOSGeomTypeId_r( geosinit.ctxt, intersectionGeom.get() ) == GEOS_POINT )
721  simple = true;
722 
723  if ( !simple )
724  nIntersectGeoms = GEOSGetNumGeometries_r( geosinit.ctxt, intersectionGeom.get() );
725 
726  for ( int i = 0; i < nIntersectGeoms; ++i )
727  {
728  const GEOSGeometry *currentIntersectGeom = nullptr;
729  if ( simple )
730  currentIntersectGeom = intersectionGeom.get();
731  else
732  currentIntersectGeom = GEOSGetGeometryN_r( geosinit.ctxt, intersectionGeom.get(), i );
733 
734  const GEOSCoordSequence *lineSequence = GEOSGeom_getCoordSeq_r( geosinit.ctxt, currentIntersectGeom );
735  unsigned int sequenceSize = 0;
736  double x, y;
737  if ( GEOSCoordSeq_getSize_r( geosinit.ctxt, lineSequence, &sequenceSize ) != 0 )
738  {
739  for ( unsigned int i = 0; i < sequenceSize; ++i )
740  {
741  if ( GEOSCoordSeq_getX_r( geosinit.ctxt, lineSequence, i, &x ) != 0 )
742  {
743  if ( GEOSCoordSeq_getY_r( geosinit.ctxt, lineSequence, i, &y ) != 0 )
744  {
745  testPoints.push_back( QgsPoint( x, y ) );
746  }
747  }
748  }
749  }
750  }
751  }
752  CATCH_GEOS_WITH_ERRMSG( true )
753 
754  return true;
755 }
756 
757 geos::unique_ptr QgsGeos::linePointDifference( GEOSGeometry *GEOSsplitPoint ) const
758 {
759  int type = GEOSGeomTypeId_r( geosinit.ctxt, mGeos.get() );
760 
761  std::unique_ptr< QgsMultiCurve > multiCurve;
762  if ( type == GEOS_MULTILINESTRING )
763  {
764  multiCurve.reset( qgsgeometry_cast<QgsMultiCurve *>( mGeometry->clone() ) );
765  }
766  else if ( type == GEOS_LINESTRING )
767  {
768  multiCurve.reset( new QgsMultiCurve() );
769  multiCurve->addGeometry( mGeometry->clone() );
770  }
771  else
772  {
773  return nullptr;
774  }
775 
776  if ( !multiCurve )
777  {
778  return nullptr;
779  }
780 
781 
782  std::unique_ptr< QgsAbstractGeometry > splitGeom( fromGeos( GEOSsplitPoint ) );
783  QgsPoint *splitPoint = qgsgeometry_cast<QgsPoint *>( splitGeom.get() );
784  if ( !splitPoint )
785  {
786  return nullptr;
787  }
788 
789  QgsMultiCurve lines;
790 
791  //For each part
792  for ( int i = 0; i < multiCurve->numGeometries(); ++i )
793  {
794  const QgsLineString *line = qgsgeometry_cast<const QgsLineString *>( multiCurve->geometryN( i ) );
795  if ( line )
796  {
797  //For each segment
798  QgsLineString newLine;
799  newLine.addVertex( line->pointN( 0 ) );
800  int nVertices = line->numPoints();
801  for ( int j = 1; j < ( nVertices - 1 ); ++j )
802  {
803  QgsPoint currentPoint = line->pointN( j );
804  newLine.addVertex( currentPoint );
805  if ( currentPoint == *splitPoint )
806  {
807  lines.addGeometry( newLine.clone() );
808  newLine = QgsLineString();
809  newLine.addVertex( currentPoint );
810  }
811  }
812  newLine.addVertex( line->pointN( nVertices - 1 ) );
813  lines.addGeometry( newLine.clone() );
814  }
815  }
816 
817  return asGeos( &lines, mPrecision );
818 }
819 
820 QgsGeometryEngine::EngineOperationResult QgsGeos::splitLinearGeometry( GEOSGeometry *splitLine, QVector<QgsGeometry> &newGeometries ) const
821 {
822  if ( !splitLine )
823  return InvalidInput;
824 
825  if ( !mGeos )
826  return InvalidBaseGeometry;
827 
828  //first test if linestring intersects geometry. If not, return straight away
829  if ( !GEOSIntersects_r( geosinit.ctxt, splitLine, mGeos.get() ) )
830  return NothingHappened;
831 
832  //check that split line has no linear intersection
833  int linearIntersect = GEOSRelatePattern_r( geosinit.ctxt, mGeos.get(), splitLine, "1********" );
834  if ( linearIntersect > 0 )
835  return InvalidInput;
836 
837  int splitGeomType = GEOSGeomTypeId_r( geosinit.ctxt, splitLine );
838 
839  geos::unique_ptr splitGeom;
840  if ( splitGeomType == GEOS_POINT )
841  {
842  splitGeom = linePointDifference( splitLine );
843  }
844  else
845  {
846  splitGeom.reset( GEOSDifference_r( geosinit.ctxt, mGeos.get(), splitLine ) );
847  }
848  QVector<GEOSGeometry *> lineGeoms;
849 
850  int splitType = GEOSGeomTypeId_r( geosinit.ctxt, splitGeom.get() );
851  if ( splitType == GEOS_MULTILINESTRING )
852  {
853  int nGeoms = GEOSGetNumGeometries_r( geosinit.ctxt, splitGeom.get() );
854  lineGeoms.reserve( nGeoms );
855  for ( int i = 0; i < nGeoms; ++i )
856  lineGeoms << GEOSGeom_clone_r( geosinit.ctxt, GEOSGetGeometryN_r( geosinit.ctxt, splitGeom.get(), i ) );
857 
858  }
859  else
860  {
861  lineGeoms << GEOSGeom_clone_r( geosinit.ctxt, splitGeom.get() );
862  }
863 
864  mergeGeometriesMultiTypeSplit( lineGeoms );
865 
866  for ( int i = 0; i < lineGeoms.size(); ++i )
867  {
868  newGeometries << QgsGeometry( fromGeos( lineGeoms[i] ) );
869  GEOSGeom_destroy_r( geosinit.ctxt, lineGeoms[i] );
870  }
871 
872  return Success;
873 }
874 
875 QgsGeometryEngine::EngineOperationResult QgsGeos::splitPolygonGeometry( GEOSGeometry *splitLine, QVector<QgsGeometry> &newGeometries ) const
876 {
877  if ( !splitLine )
878  return InvalidInput;
879 
880  if ( !mGeos )
881  return InvalidBaseGeometry;
882 
883  //first test if linestring intersects geometry. If not, return straight away
884  if ( !GEOSIntersects_r( geosinit.ctxt, splitLine, mGeos.get() ) )
885  return NothingHappened;
886 
887  //first union all the polygon rings together (to get them noded, see JTS developer guide)
888  geos::unique_ptr nodedGeometry = nodeGeometries( splitLine, mGeos.get() );
889  if ( !nodedGeometry )
890  return NodedGeometryError; //an error occurred during noding
891 
892  const GEOSGeometry *noded = nodedGeometry.get();
893  geos::unique_ptr polygons( GEOSPolygonize_r( geosinit.ctxt, &noded, 1 ) );
894  if ( !polygons || numberOfGeometries( polygons.get() ) == 0 )
895  {
896  return InvalidBaseGeometry;
897  }
898 
899  //test every polygon if contained in original geometry
900  //include in result if yes
901  QVector<GEOSGeometry *> testedGeometries;
902  geos::unique_ptr intersectGeometry;
903 
904  //ratio intersect geometry / geometry. This should be close to 1
905  //if the polygon belongs to the input geometry
906 
907  for ( int i = 0; i < numberOfGeometries( polygons.get() ); i++ )
908  {
909  const GEOSGeometry *polygon = GEOSGetGeometryN_r( geosinit.ctxt, polygons.get(), i );
910  intersectGeometry.reset( GEOSIntersection_r( geosinit.ctxt, mGeos.get(), polygon ) );
911  if ( !intersectGeometry )
912  {
913  QgsDebugMsg( QStringLiteral( "intersectGeometry is nullptr" ) );
914  continue;
915  }
916 
917  double intersectionArea;
918  GEOSArea_r( geosinit.ctxt, intersectGeometry.get(), &intersectionArea );
919 
920  double polygonArea;
921  GEOSArea_r( geosinit.ctxt, polygon, &polygonArea );
922 
923  const double areaRatio = intersectionArea / polygonArea;
924  if ( areaRatio > 0.99 && areaRatio < 1.01 )
925  testedGeometries << GEOSGeom_clone_r( geosinit.ctxt, polygon );
926  }
927 
928  int nGeometriesThis = numberOfGeometries( mGeos.get() ); //original number of geometries
929  if ( testedGeometries.empty() || testedGeometries.size() == nGeometriesThis )
930  {
931  //no split done, preserve original geometry
932  for ( int i = 0; i < testedGeometries.size(); ++i )
933  {
934  GEOSGeom_destroy_r( geosinit.ctxt, testedGeometries[i] );
935  }
936  return NothingHappened;
937  }
938 
939  mergeGeometriesMultiTypeSplit( testedGeometries );
940 
941  int i;
942  for ( i = 0; i < testedGeometries.size() && GEOSisValid_r( geosinit.ctxt, testedGeometries[i] ); ++i )
943  ;
944 
945  if ( i < testedGeometries.size() )
946  {
947  for ( i = 0; i < testedGeometries.size(); ++i )
948  GEOSGeom_destroy_r( geosinit.ctxt, testedGeometries[i] );
949 
950  return InvalidBaseGeometry;
951  }
952 
953  for ( i = 0; i < testedGeometries.size(); ++i )
954  {
955  newGeometries << QgsGeometry( fromGeos( testedGeometries[i] ) );
956  GEOSGeom_destroy_r( geosinit.ctxt, testedGeometries[i] );
957  }
958 
959  return Success;
960 }
961 
962 geos::unique_ptr QgsGeos::nodeGeometries( const GEOSGeometry *splitLine, const GEOSGeometry *geom )
963 {
964  if ( !splitLine || !geom )
965  return nullptr;
966 
967  geos::unique_ptr geometryBoundary;
968  if ( GEOSGeomTypeId_r( geosinit.ctxt, geom ) == GEOS_POLYGON || GEOSGeomTypeId_r( geosinit.ctxt, geom ) == GEOS_MULTIPOLYGON )
969  geometryBoundary.reset( GEOSBoundary_r( geosinit.ctxt, geom ) );
970  else
971  geometryBoundary.reset( GEOSGeom_clone_r( geosinit.ctxt, geom ) );
972 
973  geos::unique_ptr splitLineClone( GEOSGeom_clone_r( geosinit.ctxt, splitLine ) );
974  geos::unique_ptr unionGeometry( GEOSUnion_r( geosinit.ctxt, splitLineClone.get(), geometryBoundary.get() ) );
975 
976  return unionGeometry;
977 }
978 
979 int QgsGeos::mergeGeometriesMultiTypeSplit( QVector<GEOSGeometry *> &splitResult ) const
980 {
981  if ( !mGeos )
982  return 1;
983 
984  //convert mGeos to geometry collection
985  int type = GEOSGeomTypeId_r( geosinit.ctxt, mGeos.get() );
986  if ( type != GEOS_GEOMETRYCOLLECTION &&
987  type != GEOS_MULTILINESTRING &&
988  type != GEOS_MULTIPOLYGON &&
989  type != GEOS_MULTIPOINT )
990  return 0;
991 
992  QVector<GEOSGeometry *> copyList = splitResult;
993  splitResult.clear();
994 
995  //collect all the geometries that belong to the initial multifeature
996  QVector<GEOSGeometry *> unionGeom;
997 
998  for ( int i = 0; i < copyList.size(); ++i )
999  {
1000  //is this geometry a part of the original multitype?
1001  bool isPart = false;
1002  for ( int j = 0; j < GEOSGetNumGeometries_r( geosinit.ctxt, mGeos.get() ); j++ )
1003  {
1004  if ( GEOSEquals_r( geosinit.ctxt, copyList[i], GEOSGetGeometryN_r( geosinit.ctxt, mGeos.get(), j ) ) )
1005  {
1006  isPart = true;
1007  break;
1008  }
1009  }
1010 
1011  if ( isPart )
1012  {
1013  unionGeom << copyList[i];
1014  }
1015  else
1016  {
1017  QVector<GEOSGeometry *> geomVector;
1018  geomVector << copyList[i];
1019 
1020  if ( type == GEOS_MULTILINESTRING )
1021  splitResult << createGeosCollection( GEOS_MULTILINESTRING, geomVector ).release();
1022  else if ( type == GEOS_MULTIPOLYGON )
1023  splitResult << createGeosCollection( GEOS_MULTIPOLYGON, geomVector ).release();
1024  else
1025  GEOSGeom_destroy_r( geosinit.ctxt, copyList[i] );
1026  }
1027  }
1028 
1029  //make multifeature out of unionGeom
1030  if ( !unionGeom.isEmpty() )
1031  {
1032  if ( type == GEOS_MULTILINESTRING )
1033  splitResult << createGeosCollection( GEOS_MULTILINESTRING, unionGeom ).release();
1034  else if ( type == GEOS_MULTIPOLYGON )
1035  splitResult << createGeosCollection( GEOS_MULTIPOLYGON, unionGeom ).release();
1036  }
1037  else
1038  {
1039  unionGeom.clear();
1040  }
1041 
1042  return 0;
1043 }
1044 
1045 geos::unique_ptr QgsGeos::createGeosCollection( int typeId, const QVector<GEOSGeometry *> &geoms )
1046 {
1047  int nNullGeoms = geoms.count( nullptr );
1048  int nNotNullGeoms = geoms.size() - nNullGeoms;
1049 
1050  GEOSGeometry **geomarr = new GEOSGeometry*[ nNotNullGeoms ];
1051  if ( !geomarr )
1052  {
1053  return nullptr;
1054  }
1055 
1056  int i = 0;
1057  QVector<GEOSGeometry *>::const_iterator geomIt = geoms.constBegin();
1058  for ( ; geomIt != geoms.constEnd(); ++geomIt )
1059  {
1060  if ( *geomIt )
1061  {
1062  geomarr[i] = *geomIt;
1063  ++i;
1064  }
1065  }
1066  geos::unique_ptr geom;
1067 
1068  try
1069  {
1070  geom.reset( GEOSGeom_createCollection_r( geosinit.ctxt, typeId, geomarr, nNotNullGeoms ) );
1071  }
1072  catch ( GEOSException & )
1073  {
1074  }
1075 
1076  delete [] geomarr;
1077 
1078  return geom;
1079 }
1080 
1081 std::unique_ptr<QgsAbstractGeometry> QgsGeos::fromGeos( const GEOSGeometry *geos )
1082 {
1083  if ( !geos )
1084  {
1085  return nullptr;
1086  }
1087 
1088  int nCoordDims = GEOSGeom_getCoordinateDimension_r( geosinit.ctxt, geos );
1089  int nDims = GEOSGeom_getDimensions_r( geosinit.ctxt, geos );
1090  bool hasZ = ( nCoordDims == 3 );
1091  bool hasM = ( ( nDims - nCoordDims ) == 1 );
1092 
1093  switch ( GEOSGeomTypeId_r( geosinit.ctxt, geos ) )
1094  {
1095  case GEOS_POINT: // a point
1096  {
1097  const GEOSCoordSequence *cs = GEOSGeom_getCoordSeq_r( geosinit.ctxt, geos );
1098  return std::unique_ptr<QgsAbstractGeometry>( coordSeqPoint( cs, 0, hasZ, hasM ).clone() );
1099  }
1100  case GEOS_LINESTRING:
1101  {
1102  return sequenceToLinestring( geos, hasZ, hasM );
1103  }
1104  case GEOS_POLYGON:
1105  {
1106  return fromGeosPolygon( geos );
1107  }
1108  case GEOS_MULTIPOINT:
1109  {
1110  std::unique_ptr< QgsMultiPoint > multiPoint( new QgsMultiPoint() );
1111  int nParts = GEOSGetNumGeometries_r( geosinit.ctxt, geos );
1112  for ( int i = 0; i < nParts; ++i )
1113  {
1114  const GEOSCoordSequence *cs = GEOSGeom_getCoordSeq_r( geosinit.ctxt, GEOSGetGeometryN_r( geosinit.ctxt, geos, i ) );
1115  if ( cs )
1116  {
1117  multiPoint->addGeometry( coordSeqPoint( cs, 0, hasZ, hasM ).clone() );
1118  }
1119  }
1120  return std::move( multiPoint );
1121  }
1122  case GEOS_MULTILINESTRING:
1123  {
1124  std::unique_ptr< QgsMultiLineString > multiLineString( new QgsMultiLineString() );
1125  int nParts = GEOSGetNumGeometries_r( geosinit.ctxt, geos );
1126  for ( int i = 0; i < nParts; ++i )
1127  {
1128  std::unique_ptr< QgsLineString >line( sequenceToLinestring( GEOSGetGeometryN_r( geosinit.ctxt, geos, i ), hasZ, hasM ) );
1129  if ( line )
1130  {
1131  multiLineString->addGeometry( line.release() );
1132  }
1133  }
1134  return std::move( multiLineString );
1135  }
1136  case GEOS_MULTIPOLYGON:
1137  {
1138  std::unique_ptr< QgsMultiPolygon > multiPolygon( new QgsMultiPolygon() );
1139 
1140  int nParts = GEOSGetNumGeometries_r( geosinit.ctxt, geos );
1141  for ( int i = 0; i < nParts; ++i )
1142  {
1143  std::unique_ptr< QgsPolygon > poly = fromGeosPolygon( GEOSGetGeometryN_r( geosinit.ctxt, geos, i ) );
1144  if ( poly )
1145  {
1146  multiPolygon->addGeometry( poly.release() );
1147  }
1148  }
1149  return std::move( multiPolygon );
1150  }
1151  case GEOS_GEOMETRYCOLLECTION:
1152  {
1153  std::unique_ptr< QgsGeometryCollection > geomCollection( new QgsGeometryCollection() );
1154  int nParts = GEOSGetNumGeometries_r( geosinit.ctxt, geos );
1155  for ( int i = 0; i < nParts; ++i )
1156  {
1157  std::unique_ptr< QgsAbstractGeometry > geom( fromGeos( GEOSGetGeometryN_r( geosinit.ctxt, geos, i ) ) );
1158  if ( geom )
1159  {
1160  geomCollection->addGeometry( geom.release() );
1161  }
1162  }
1163  return std::move( geomCollection );
1164  }
1165  }
1166  return nullptr;
1167 }
1168 
1169 std::unique_ptr<QgsPolygon> QgsGeos::fromGeosPolygon( const GEOSGeometry *geos )
1170 {
1171  if ( GEOSGeomTypeId_r( geosinit.ctxt, geos ) != GEOS_POLYGON )
1172  {
1173  return nullptr;
1174  }
1175 
1176  int nCoordDims = GEOSGeom_getCoordinateDimension_r( geosinit.ctxt, geos );
1177  int nDims = GEOSGeom_getDimensions_r( geosinit.ctxt, geos );
1178  bool hasZ = ( nCoordDims == 3 );
1179  bool hasM = ( ( nDims - nCoordDims ) == 1 );
1180 
1181  std::unique_ptr< QgsPolygon > polygon( new QgsPolygon() );
1182 
1183  const GEOSGeometry *ring = GEOSGetExteriorRing_r( geosinit.ctxt, geos );
1184  if ( ring )
1185  {
1186  polygon->setExteriorRing( sequenceToLinestring( ring, hasZ, hasM ).release() );
1187  }
1188 
1189  QVector<QgsCurve *> interiorRings;
1190  const int ringCount = GEOSGetNumInteriorRings_r( geosinit.ctxt, geos );
1191  interiorRings.reserve( ringCount );
1192  for ( int i = 0; i < ringCount; ++i )
1193  {
1194  ring = GEOSGetInteriorRingN_r( geosinit.ctxt, geos, i );
1195  if ( ring )
1196  {
1197  interiorRings.push_back( sequenceToLinestring( ring, hasZ, hasM ).release() );
1198  }
1199  }
1200  polygon->setInteriorRings( interiorRings );
1201 
1202  return polygon;
1203 }
1204 
1205 std::unique_ptr<QgsLineString> QgsGeos::sequenceToLinestring( const GEOSGeometry *geos, bool hasZ, bool hasM )
1206 {
1207  const GEOSCoordSequence *cs = GEOSGeom_getCoordSeq_r( geosinit.ctxt, geos );
1208  unsigned int nPoints;
1209  GEOSCoordSeq_getSize_r( geosinit.ctxt, cs, &nPoints );
1210  QVector< double > xOut( nPoints );
1211  QVector< double > yOut( nPoints );
1212  QVector< double > zOut;
1213  if ( hasZ )
1214  zOut.resize( nPoints );
1215  QVector< double > mOut;
1216  if ( hasM )
1217  mOut.resize( nPoints );
1218  double *x = xOut.data();
1219  double *y = yOut.data();
1220  double *z = zOut.data();
1221  double *m = mOut.data();
1222  for ( unsigned int i = 0; i < nPoints; ++i )
1223  {
1224  GEOSCoordSeq_getX_r( geosinit.ctxt, cs, i, x++ );
1225  GEOSCoordSeq_getY_r( geosinit.ctxt, cs, i, y++ );
1226  if ( hasZ )
1227  {
1228  GEOSCoordSeq_getZ_r( geosinit.ctxt, cs, i, z++ );
1229  }
1230  if ( hasM )
1231  {
1232  GEOSCoordSeq_getOrdinate_r( geosinit.ctxt, cs, i, 3, m++ );
1233  }
1234  }
1235  std::unique_ptr< QgsLineString > line( new QgsLineString( xOut, yOut, zOut, mOut ) );
1236  return line;
1237 }
1238 
1239 int QgsGeos::numberOfGeometries( GEOSGeometry *g )
1240 {
1241  if ( !g )
1242  return 0;
1243 
1244  int geometryType = GEOSGeomTypeId_r( geosinit.ctxt, g );
1245  if ( geometryType == GEOS_POINT || geometryType == GEOS_LINESTRING || geometryType == GEOS_LINEARRING
1246  || geometryType == GEOS_POLYGON )
1247  return 1;
1248 
1249  //calling GEOSGetNumGeometries is save for multi types and collections also in geos2
1250  return GEOSGetNumGeometries_r( geosinit.ctxt, g );
1251 }
1252 
1253 QgsPoint QgsGeos::coordSeqPoint( const GEOSCoordSequence *cs, int i, bool hasZ, bool hasM )
1254 {
1255  if ( !cs )
1256  {
1257  return QgsPoint();
1258  }
1259 
1260  double x, y;
1261  double z = 0;
1262  double m = 0;
1263  GEOSCoordSeq_getX_r( geosinit.ctxt, cs, i, &x );
1264  GEOSCoordSeq_getY_r( geosinit.ctxt, cs, i, &y );
1265  if ( hasZ )
1266  {
1267  GEOSCoordSeq_getZ_r( geosinit.ctxt, cs, i, &z );
1268  }
1269  if ( hasM )
1270  {
1271  GEOSCoordSeq_getOrdinate_r( geosinit.ctxt, cs, i, 3, &m );
1272  }
1273 
1275  if ( hasZ && hasM )
1276  {
1278  }
1279  else if ( hasZ )
1280  {
1281  t = QgsWkbTypes::PointZ;
1282  }
1283  else if ( hasM )
1284  {
1285  t = QgsWkbTypes::PointM;
1286  }
1287  return QgsPoint( t, x, y, z, m );
1288 }
1289 
1291 {
1292  if ( !geom )
1293  return nullptr;
1294 
1295  int coordDims = 2;
1296  if ( geom->is3D() )
1297  {
1298  ++coordDims;
1299  }
1300  if ( geom->isMeasure() )
1301  {
1302  ++coordDims;
1303  }
1304 
1306  {
1307  int geosType = GEOS_GEOMETRYCOLLECTION;
1308 
1310  {
1311  switch ( QgsWkbTypes::geometryType( geom->wkbType() ) )
1312  {
1314  geosType = GEOS_MULTIPOINT;
1315  break;
1316 
1318  geosType = GEOS_MULTILINESTRING;
1319  break;
1320 
1322  geosType = GEOS_MULTIPOLYGON;
1323  break;
1324 
1327  return nullptr;
1328  break;
1329  }
1330  }
1331 
1332 
1334 
1335  if ( !c )
1336  return nullptr;
1337 
1338  QVector< GEOSGeometry * > geomVector( c->numGeometries() );
1339  for ( int i = 0; i < c->numGeometries(); ++i )
1340  {
1341  geomVector[i] = asGeos( c->geometryN( i ), precision ).release();
1342  }
1343  return createGeosCollection( geosType, geomVector );
1344  }
1345  else
1346  {
1347  switch ( QgsWkbTypes::geometryType( geom->wkbType() ) )
1348  {
1350  return createGeosPoint( static_cast<const QgsPoint *>( geom ), coordDims, precision );
1351  break;
1352 
1354  return createGeosLinestring( static_cast<const QgsLineString *>( geom ), precision );
1355  break;
1356 
1358  return createGeosPolygon( static_cast<const QgsPolygon *>( geom ), precision );
1359  break;
1360 
1363  return nullptr;
1364  break;
1365  }
1366  }
1367  return nullptr;
1368 }
1369 
1370 std::unique_ptr<QgsAbstractGeometry> QgsGeos::overlay( const QgsAbstractGeometry *geom, Overlay op, QString *errorMsg ) const
1371 {
1372  if ( !mGeos || !geom )
1373  {
1374  return nullptr;
1375  }
1376 
1377  geos::unique_ptr geosGeom( asGeos( geom, mPrecision ) );
1378  if ( !geosGeom )
1379  {
1380  return nullptr;
1381  }
1382 
1383  try
1384  {
1385  geos::unique_ptr opGeom;
1386  switch ( op )
1387  {
1388  case OverlayIntersection:
1389  opGeom.reset( GEOSIntersection_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) );
1390  break;
1391  case OverlayDifference:
1392  opGeom.reset( GEOSDifference_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) );
1393  break;
1394  case OverlayUnion:
1395  {
1396  geos::unique_ptr unionGeometry( GEOSUnion_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) );
1397 
1398  if ( unionGeometry && GEOSGeomTypeId_r( geosinit.ctxt, unionGeometry.get() ) == GEOS_MULTILINESTRING )
1399  {
1400  geos::unique_ptr mergedLines( GEOSLineMerge_r( geosinit.ctxt, unionGeometry.get() ) );
1401  if ( mergedLines )
1402  {
1403  unionGeometry = std::move( mergedLines );
1404  }
1405  }
1406 
1407  opGeom = std::move( unionGeometry );
1408  }
1409  break;
1410  case OverlaySymDifference:
1411  opGeom.reset( GEOSSymDifference_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) );
1412  break;
1413  default: //unknown op
1414  return nullptr;
1415  }
1416  return fromGeos( opGeom.get() );
1417  }
1418  catch ( GEOSException &e )
1419  {
1420  if ( errorMsg )
1421  {
1422  *errorMsg = e.what();
1423  }
1424  return nullptr;
1425  }
1426 }
1427 
1428 bool QgsGeos::relation( const QgsAbstractGeometry *geom, Relation r, QString *errorMsg ) const
1429 {
1430  if ( !mGeos || !geom )
1431  {
1432  return false;
1433  }
1434 
1435  geos::unique_ptr geosGeom( asGeos( geom, mPrecision ) );
1436  if ( !geosGeom )
1437  {
1438  return false;
1439  }
1440 
1441  bool result = false;
1442  try
1443  {
1444  if ( mGeosPrepared ) //use faster version with prepared geometry
1445  {
1446  switch ( r )
1447  {
1448  case RelationIntersects:
1449  result = ( GEOSPreparedIntersects_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1450  break;
1451  case RelationTouches:
1452  result = ( GEOSPreparedTouches_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1453  break;
1454  case RelationCrosses:
1455  result = ( GEOSPreparedCrosses_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1456  break;
1457  case RelationWithin:
1458  result = ( GEOSPreparedWithin_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1459  break;
1460  case RelationContains:
1461  result = ( GEOSPreparedContains_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1462  break;
1463  case RelationDisjoint:
1464  result = ( GEOSPreparedDisjoint_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1465  break;
1466  case RelationOverlaps:
1467  result = ( GEOSPreparedOverlaps_r( geosinit.ctxt, mGeosPrepared.get(), geosGeom.get() ) == 1 );
1468  break;
1469  default:
1470  return false;
1471  }
1472  return result;
1473  }
1474 
1475  switch ( r )
1476  {
1477  case RelationIntersects:
1478  result = ( GEOSIntersects_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1479  break;
1480  case RelationTouches:
1481  result = ( GEOSTouches_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1482  break;
1483  case RelationCrosses:
1484  result = ( GEOSCrosses_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1485  break;
1486  case RelationWithin:
1487  result = ( GEOSWithin_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1488  break;
1489  case RelationContains:
1490  result = ( GEOSContains_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1491  break;
1492  case RelationDisjoint:
1493  result = ( GEOSDisjoint_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1494  break;
1495  case RelationOverlaps:
1496  result = ( GEOSOverlaps_r( geosinit.ctxt, mGeos.get(), geosGeom.get() ) == 1 );
1497  break;
1498  default:
1499  return false;
1500  }
1501  }
1502  catch ( GEOSException &e )
1503  {
1504  if ( errorMsg )
1505  {
1506  *errorMsg = e.what();
1507  }
1508  return false;
1509  }
1510 
1511  return result;
1512 }
1513 
1514 QgsAbstractGeometry *QgsGeos::buffer( double distance, int segments, QString *errorMsg ) const
1515 {
1516  if ( !mGeos )
1517  {
1518  return nullptr;
1519  }
1520 
1522  try
1523  {
1524  geos.reset( GEOSBuffer_r( geosinit.ctxt, mGeos.get(), distance, segments ) );
1525  }
1526  CATCH_GEOS_WITH_ERRMSG( nullptr );
1527  return fromGeos( geos.get() ).release();
1528 }
1529 
1530 QgsAbstractGeometry *QgsGeos::buffer( double distance, int segments, int endCapStyle, int joinStyle, double miterLimit, QString *errorMsg ) const
1531 {
1532  if ( !mGeos )
1533  {
1534  return nullptr;
1535  }
1536 
1538  try
1539  {
1540  geos.reset( GEOSBufferWithStyle_r( geosinit.ctxt, mGeos.get(), distance, segments, endCapStyle, joinStyle, miterLimit ) );
1541  }
1542  CATCH_GEOS_WITH_ERRMSG( nullptr );
1543  return fromGeos( geos.get() ).release();
1544 }
1545 
1546 QgsAbstractGeometry *QgsGeos::simplify( double tolerance, QString *errorMsg ) const
1547 {
1548  if ( !mGeos )
1549  {
1550  return nullptr;
1551  }
1553  try
1554  {
1555  geos.reset( GEOSTopologyPreserveSimplify_r( geosinit.ctxt, mGeos.get(), tolerance ) );
1556  }
1557  CATCH_GEOS_WITH_ERRMSG( nullptr );
1558  return fromGeos( geos.get() ).release();
1559 }
1560 
1561 QgsAbstractGeometry *QgsGeos::interpolate( double distance, QString *errorMsg ) const
1562 {
1563  if ( !mGeos )
1564  {
1565  return nullptr;
1566  }
1568  try
1569  {
1570  geos.reset( GEOSInterpolate_r( geosinit.ctxt, mGeos.get(), distance ) );
1571  }
1572  CATCH_GEOS_WITH_ERRMSG( nullptr );
1573  return fromGeos( geos.get() ).release();
1574 }
1575 
1576 QgsPoint *QgsGeos::centroid( QString *errorMsg ) const
1577 {
1578  if ( !mGeos )
1579  {
1580  return nullptr;
1581  }
1582 
1584  double x;
1585  double y;
1586 
1587  try
1588  {
1589  geos.reset( GEOSGetCentroid_r( geosinit.ctxt, mGeos.get() ) );
1590 
1591  if ( !geos )
1592  return nullptr;
1593 
1594  GEOSGeomGetX_r( geosinit.ctxt, geos.get(), &x );
1595  GEOSGeomGetY_r( geosinit.ctxt, geos.get(), &y );
1596  }
1597  CATCH_GEOS_WITH_ERRMSG( nullptr );
1598 
1599  return new QgsPoint( x, y );
1600 }
1601 
1602 QgsAbstractGeometry *QgsGeos::envelope( QString *errorMsg ) const
1603 {
1604  if ( !mGeos )
1605  {
1606  return nullptr;
1607  }
1609  try
1610  {
1611  geos.reset( GEOSEnvelope_r( geosinit.ctxt, mGeos.get() ) );
1612  }
1613  CATCH_GEOS_WITH_ERRMSG( nullptr );
1614  return fromGeos( geos.get() ).release();
1615 }
1616 
1617 QgsPoint *QgsGeos::pointOnSurface( QString *errorMsg ) const
1618 {
1619  if ( !mGeos )
1620  {
1621  return nullptr;
1622  }
1623 
1624  double x;
1625  double y;
1626 
1628  try
1629  {
1630  geos.reset( GEOSPointOnSurface_r( geosinit.ctxt, mGeos.get() ) );
1631 
1632  if ( !geos || GEOSisEmpty_r( geosinit.ctxt, geos.get() ) != 0 )
1633  {
1634  return nullptr;
1635  }
1636 
1637  GEOSGeomGetX_r( geosinit.ctxt, geos.get(), &x );
1638  GEOSGeomGetY_r( geosinit.ctxt, geos.get(), &y );
1639  }
1640  CATCH_GEOS_WITH_ERRMSG( nullptr );
1641 
1642  return new QgsPoint( x, y );
1643 }
1644 
1645 QgsAbstractGeometry *QgsGeos::convexHull( QString *errorMsg ) const
1646 {
1647  if ( !mGeos )
1648  {
1649  return nullptr;
1650  }
1651 
1652  try
1653  {
1654  geos::unique_ptr cHull( GEOSConvexHull_r( geosinit.ctxt, mGeos.get() ) );
1655  std::unique_ptr< QgsAbstractGeometry > cHullGeom = fromGeos( cHull.get() );
1656  return cHullGeom.release();
1657  }
1658  CATCH_GEOS_WITH_ERRMSG( nullptr );
1659 }
1660 
1661 bool QgsGeos::isValid( QString *errorMsg, const bool allowSelfTouchingHoles, QgsGeometry *errorLoc ) const
1662 {
1663  if ( !mGeos )
1664  {
1665  return false;
1666  }
1667 
1668  try
1669  {
1670  GEOSGeometry *g1 = nullptr;
1671  char *r = nullptr;
1672  char res = GEOSisValidDetail_r( geosinit.ctxt, mGeos.get(), allowSelfTouchingHoles ? GEOSVALID_ALLOW_SELFTOUCHING_RING_FORMING_HOLE : 0, &r, &g1 );
1673  const bool invalid = res != 1;
1674 
1675  QString error;
1676  if ( r )
1677  {
1678  error = QString( r );
1679  GEOSFree_r( geosinit.ctxt, r );
1680  }
1681 
1682  if ( invalid && errorMsg )
1683  {
1684  static QgsStringMap translatedErrors;
1685 
1686  if ( translatedErrors.empty() )
1687  {
1688  // Copied from https://git.osgeo.org/gitea/geos/geos/src/branch/master/src/operation/valid/TopologyValidationError.cpp
1689  translatedErrors.insert( QStringLiteral( "topology validation error" ), QObject::tr( "Topology validation error", "GEOS Error" ) );
1690  translatedErrors.insert( QStringLiteral( "repeated point" ), QObject::tr( "Repeated point", "GEOS Error" ) );
1691  translatedErrors.insert( QStringLiteral( "hole lies outside shell" ), QObject::tr( "Hole lies outside shell", "GEOS Error" ) );
1692  translatedErrors.insert( QStringLiteral( "holes are nested" ), QObject::tr( "Holes are nested", "GEOS Error" ) );
1693  translatedErrors.insert( QStringLiteral( "interior is disconnected" ), QObject::tr( "Interior is disconnected", "GEOS Error" ) );
1694  translatedErrors.insert( QStringLiteral( "self-intersection" ), QObject::tr( "Self-intersection", "GEOS Error" ) );
1695  translatedErrors.insert( QStringLiteral( "ring self-intersection" ), QObject::tr( "Ring self-intersection", "GEOS Error" ) );
1696  translatedErrors.insert( QStringLiteral( "nested shells" ), QObject::tr( "Nested shells", "GEOS Error" ) );
1697  translatedErrors.insert( QStringLiteral( "duplicate rings" ), QObject::tr( "Duplicate rings", "GEOS Error" ) );
1698  translatedErrors.insert( QStringLiteral( "too few points in geometry component" ), QObject::tr( "Too few points in geometry component", "GEOS Error" ) );
1699  translatedErrors.insert( QStringLiteral( "invalid coordinate" ), QObject::tr( "Invalid coordinate", "GEOS Error" ) );
1700  translatedErrors.insert( QStringLiteral( "ring is not closed" ), QObject::tr( "Ring is not closed", "GEOS Error" ) );
1701  }
1702 
1703  *errorMsg = translatedErrors.value( error.toLower(), error );
1704 
1705  if ( g1 && errorLoc )
1706  {
1707  *errorLoc = geometryFromGeos( g1 );
1708  }
1709  else if ( g1 )
1710  {
1711  GEOSGeom_destroy_r( geosinit.ctxt, g1 );
1712  }
1713  }
1714  return !invalid;
1715  }
1716  CATCH_GEOS_WITH_ERRMSG( false );
1717 }
1718 
1719 bool QgsGeos::isEqual( const QgsAbstractGeometry *geom, QString *errorMsg ) const
1720 {
1721  if ( !mGeos || !geom )
1722  {
1723  return false;
1724  }
1725 
1726  try
1727  {
1728  geos::unique_ptr geosGeom( asGeos( geom, mPrecision ) );
1729  if ( !geosGeom )
1730  {
1731  return false;
1732  }
1733  bool equal = GEOSEquals_r( geosinit.ctxt, mGeos.get(), geosGeom.get() );
1734  return equal;
1735  }
1736  CATCH_GEOS_WITH_ERRMSG( false );
1737 }
1738 
1739 bool QgsGeos::isEmpty( QString *errorMsg ) const
1740 {
1741  if ( !mGeos )
1742  {
1743  return false;
1744  }
1745 
1746  try
1747  {
1748  return GEOSisEmpty_r( geosinit.ctxt, mGeos.get() );
1749  }
1750  CATCH_GEOS_WITH_ERRMSG( false );
1751 }
1752 
1753 bool QgsGeos::isSimple( QString *errorMsg ) const
1754 {
1755  if ( !mGeos )
1756  {
1757  return false;
1758  }
1759 
1760  try
1761  {
1762  return GEOSisSimple_r( geosinit.ctxt, mGeos.get() );
1763  }
1764  CATCH_GEOS_WITH_ERRMSG( false );
1765 }
1766 
1767 GEOSCoordSequence *QgsGeos::createCoordinateSequence( const QgsCurve *curve, double precision, bool forceClose )
1768 {
1769  std::unique_ptr< QgsLineString > segmentized;
1770  const QgsLineString *line = qgsgeometry_cast<const QgsLineString *>( curve );
1771 
1772  if ( !line )
1773  {
1774  segmentized.reset( curve->curveToLine() );
1775  line = segmentized.get();
1776  }
1777 
1778  if ( !line )
1779  {
1780  return nullptr;
1781  }
1782 
1783  bool hasZ = line->is3D();
1784  bool hasM = false; //line->isMeasure(); //disabled until geos supports m-coordinates
1785  int coordDims = 2;
1786  if ( hasZ )
1787  {
1788  ++coordDims;
1789  }
1790  if ( hasM )
1791  {
1792  ++coordDims;
1793  }
1794 
1795  int numPoints = line->numPoints();
1796 
1797  int numOutPoints = numPoints;
1798  if ( forceClose && ( line->pointN( 0 ) != line->pointN( numPoints - 1 ) ) )
1799  {
1800  ++numOutPoints;
1801  }
1802 
1803  GEOSCoordSequence *coordSeq = nullptr;
1804  try
1805  {
1806  coordSeq = GEOSCoordSeq_create_r( geosinit.ctxt, numOutPoints, coordDims );
1807  if ( !coordSeq )
1808  {
1809  QgsDebugMsg( QStringLiteral( "GEOS Exception: Could not create coordinate sequence for %1 points in %2 dimensions" ).arg( numPoints ).arg( coordDims ) );
1810  return nullptr;
1811  }
1812 
1813  const double *xData = line->xData();
1814  const double *yData = line->yData();
1815  const double *zData = hasZ ? line->zData() : nullptr;
1816  const double *mData = hasM ? line->mData() : nullptr;
1817 
1818  if ( precision > 0. )
1819  {
1820  for ( int i = 0; i < numOutPoints; ++i )
1821  {
1822  if ( i >= numPoints )
1823  {
1824  // start reading back from start of line
1825  xData = line->xData();
1826  yData = line->yData();
1827  zData = hasZ ? line->zData() : nullptr;
1828  mData = hasM ? line->mData() : nullptr;
1829  }
1830  GEOSCoordSeq_setX_r( geosinit.ctxt, coordSeq, i, std::round( *xData++ / precision ) * precision );
1831  GEOSCoordSeq_setY_r( geosinit.ctxt, coordSeq, i, std::round( *yData++ / precision ) * precision );
1832  if ( hasZ )
1833  {
1834  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, i, 2, std::round( *zData++ / precision ) * precision );
1835  }
1836  if ( hasM )
1837  {
1838  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, i, 3, line->mAt( *mData++ ) );
1839  }
1840  }
1841  }
1842  else
1843  {
1844  for ( int i = 0; i < numOutPoints; ++i )
1845  {
1846  if ( i >= numPoints )
1847  {
1848  // start reading back from start of line
1849  xData = line->xData();
1850  yData = line->yData();
1851  zData = hasZ ? line->zData() : nullptr;
1852  mData = hasM ? line->mData() : nullptr;
1853  }
1854  GEOSCoordSeq_setX_r( geosinit.ctxt, coordSeq, i, *xData++ );
1855  GEOSCoordSeq_setY_r( geosinit.ctxt, coordSeq, i, *yData++ );
1856  if ( hasZ )
1857  {
1858  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, i, 2, *zData++ );
1859  }
1860  if ( hasM )
1861  {
1862  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, i, 3, *mData++ );
1863  }
1864  }
1865  }
1866  }
1867  CATCH_GEOS( nullptr )
1868 
1869  return coordSeq;
1870 }
1871 
1872 geos::unique_ptr QgsGeos::createGeosPoint( const QgsAbstractGeometry *point, int coordDims, double precision )
1873 {
1874  const QgsPoint *pt = qgsgeometry_cast<const QgsPoint *>( point );
1875  if ( !pt )
1876  return nullptr;
1877 
1878  return createGeosPointXY( pt->x(), pt->y(), pt->is3D(), pt->z(), pt->isMeasure(), pt->m(), coordDims, precision );
1879 }
1880 
1881 geos::unique_ptr QgsGeos::createGeosPointXY( double x, double y, bool hasZ, double z, bool hasM, double m, int coordDims, double precision )
1882 {
1883  Q_UNUSED( hasM );
1884  Q_UNUSED( m );
1885 
1886  geos::unique_ptr geosPoint;
1887 
1888  try
1889  {
1890  GEOSCoordSequence *coordSeq = GEOSCoordSeq_create_r( geosinit.ctxt, 1, coordDims );
1891  if ( !coordSeq )
1892  {
1893  QgsDebugMsg( QStringLiteral( "GEOS Exception: Could not create coordinate sequence for point with %1 dimensions" ).arg( coordDims ) );
1894  return nullptr;
1895  }
1896  if ( precision > 0. )
1897  {
1898  GEOSCoordSeq_setX_r( geosinit.ctxt, coordSeq, 0, std::round( x / precision ) * precision );
1899  GEOSCoordSeq_setY_r( geosinit.ctxt, coordSeq, 0, std::round( y / precision ) * precision );
1900  if ( hasZ )
1901  {
1902  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, 0, 2, std::round( z / precision ) * precision );
1903  }
1904  }
1905  else
1906  {
1907  GEOSCoordSeq_setX_r( geosinit.ctxt, coordSeq, 0, x );
1908  GEOSCoordSeq_setY_r( geosinit.ctxt, coordSeq, 0, y );
1909  if ( hasZ )
1910  {
1911  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, 0, 2, z );
1912  }
1913  }
1914 #if 0 //disabled until geos supports m-coordinates
1915  if ( hasM )
1916  {
1917  GEOSCoordSeq_setOrdinate_r( geosinit.ctxt, coordSeq, 0, 3, m );
1918  }
1919 #endif
1920  geosPoint.reset( GEOSGeom_createPoint_r( geosinit.ctxt, coordSeq ) );
1921  }
1922  CATCH_GEOS( nullptr )
1923  return geosPoint;
1924 }
1925 
1926 geos::unique_ptr QgsGeos::createGeosLinestring( const QgsAbstractGeometry *curve, double precision )
1927 {
1928  const QgsCurve *c = qgsgeometry_cast<const QgsCurve *>( curve );
1929  if ( !c )
1930  return nullptr;
1931 
1932  GEOSCoordSequence *coordSeq = createCoordinateSequence( c, precision );
1933  if ( !coordSeq )
1934  return nullptr;
1935 
1936  geos::unique_ptr geosGeom;
1937  try
1938  {
1939  geosGeom.reset( GEOSGeom_createLineString_r( geosinit.ctxt, coordSeq ) );
1940  }
1941  CATCH_GEOS( nullptr )
1942  return geosGeom;
1943 }
1944 
1945 geos::unique_ptr QgsGeos::createGeosPolygon( const QgsAbstractGeometry *poly, double precision )
1946 {
1947  const QgsCurvePolygon *polygon = qgsgeometry_cast<const QgsCurvePolygon *>( poly );
1948  if ( !polygon )
1949  return nullptr;
1950 
1951  const QgsCurve *exteriorRing = polygon->exteriorRing();
1952  if ( !exteriorRing )
1953  {
1954  return nullptr;
1955  }
1956 
1957  geos::unique_ptr geosPolygon;
1958  try
1959  {
1960  geos::unique_ptr exteriorRingGeos( GEOSGeom_createLinearRing_r( geosinit.ctxt, createCoordinateSequence( exteriorRing, precision, true ) ) );
1961 
1962  int nHoles = polygon->numInteriorRings();
1963  GEOSGeometry **holes = nullptr;
1964  if ( nHoles > 0 )
1965  {
1966  holes = new GEOSGeometry*[ nHoles ];
1967  }
1968 
1969  for ( int i = 0; i < nHoles; ++i )
1970  {
1971  const QgsCurve *interiorRing = polygon->interiorRing( i );
1972  holes[i] = GEOSGeom_createLinearRing_r( geosinit.ctxt, createCoordinateSequence( interiorRing, precision, true ) );
1973  }
1974  geosPolygon.reset( GEOSGeom_createPolygon_r( geosinit.ctxt, exteriorRingGeos.release(), holes, nHoles ) );
1975  delete[] holes;
1976  }
1977  CATCH_GEOS( nullptr )
1978 
1979  return geosPolygon;
1980 }
1981 
1982 QgsAbstractGeometry *QgsGeos::offsetCurve( double distance, int segments, int joinStyle, double miterLimit, QString *errorMsg ) const
1983 {
1984  if ( !mGeos )
1985  return nullptr;
1986 
1987  geos::unique_ptr offset;
1988  try
1989  {
1990  offset.reset( GEOSOffsetCurve_r( geosinit.ctxt, mGeos.get(), distance, segments, joinStyle, miterLimit ) );
1991  }
1992  CATCH_GEOS_WITH_ERRMSG( nullptr )
1993  std::unique_ptr< QgsAbstractGeometry > offsetGeom = fromGeos( offset.get() );
1994  return offsetGeom.release();
1995 }
1996 
1997 std::unique_ptr<QgsAbstractGeometry> QgsGeos::singleSidedBuffer( double distance, int segments, int side, int joinStyle, double miterLimit, QString *errorMsg ) const
1998 {
1999  if ( !mGeos )
2000  {
2001  return nullptr;
2002  }
2003 
2005  try
2006  {
2007  geos::buffer_params_unique_ptr bp( GEOSBufferParams_create_r( geosinit.ctxt ) );
2008  GEOSBufferParams_setSingleSided_r( geosinit.ctxt, bp.get(), 1 );
2009  GEOSBufferParams_setQuadrantSegments_r( geosinit.ctxt, bp.get(), segments );
2010  GEOSBufferParams_setJoinStyle_r( geosinit.ctxt, bp.get(), joinStyle );
2011  GEOSBufferParams_setMitreLimit_r( geosinit.ctxt, bp.get(), miterLimit ); //#spellok
2012 
2013  if ( side == 1 )
2014  {
2015  distance = -distance;
2016  }
2017  geos.reset( GEOSBufferWithParams_r( geosinit.ctxt, mGeos.get(), bp.get(), distance ) );
2018  }
2019  CATCH_GEOS_WITH_ERRMSG( nullptr );
2020  return fromGeos( geos.get() );
2021 }
2022 
2023 std::unique_ptr<QgsAbstractGeometry> QgsGeos::reshapeGeometry( const QgsLineString &reshapeWithLine, EngineOperationResult *errorCode, QString *errorMsg ) const
2024 {
2025  if ( !mGeos || mGeometry->dimension() == 0 )
2026  {
2027  if ( errorCode ) { *errorCode = InvalidBaseGeometry; }
2028  return nullptr;
2029  }
2030 
2031  if ( reshapeWithLine.numPoints() < 2 )
2032  {
2033  if ( errorCode ) { *errorCode = InvalidInput; }
2034  return nullptr;
2035  }
2036 
2037  geos::unique_ptr reshapeLineGeos = createGeosLinestring( &reshapeWithLine, mPrecision );
2038 
2039  //single or multi?
2040  int numGeoms = GEOSGetNumGeometries_r( geosinit.ctxt, mGeos.get() );
2041  if ( numGeoms == -1 )
2042  {
2043  if ( errorCode )
2044  {
2045  *errorCode = InvalidBaseGeometry;
2046  }
2047  return nullptr;
2048  }
2049 
2050  bool isMultiGeom = false;
2051  int geosTypeId = GEOSGeomTypeId_r( geosinit.ctxt, mGeos.get() );
2052  if ( geosTypeId == GEOS_MULTILINESTRING || geosTypeId == GEOS_MULTIPOLYGON )
2053  isMultiGeom = true;
2054 
2055  bool isLine = ( mGeometry->dimension() == 1 );
2056 
2057  if ( !isMultiGeom )
2058  {
2059  geos::unique_ptr reshapedGeometry;
2060  if ( isLine )
2061  {
2062  reshapedGeometry = reshapeLine( mGeos.get(), reshapeLineGeos.get(), mPrecision );
2063  }
2064  else
2065  {
2066  reshapedGeometry = reshapePolygon( mGeos.get(), reshapeLineGeos.get(), mPrecision );
2067  }
2068 
2069  if ( errorCode )
2070  *errorCode = Success;
2071  std::unique_ptr< QgsAbstractGeometry > reshapeResult = fromGeos( reshapedGeometry.get() );
2072  return reshapeResult;
2073  }
2074  else
2075  {
2076  try
2077  {
2078  //call reshape for each geometry part and replace mGeos with new geometry if reshape took place
2079  bool reshapeTookPlace = false;
2080 
2081  geos::unique_ptr currentReshapeGeometry;
2082  GEOSGeometry **newGeoms = new GEOSGeometry*[numGeoms];
2083 
2084  for ( int i = 0; i < numGeoms; ++i )
2085  {
2086  if ( isLine )
2087  currentReshapeGeometry = reshapeLine( GEOSGetGeometryN_r( geosinit.ctxt, mGeos.get(), i ), reshapeLineGeos.get(), mPrecision );
2088  else
2089  currentReshapeGeometry = reshapePolygon( GEOSGetGeometryN_r( geosinit.ctxt, mGeos.get(), i ), reshapeLineGeos.get(), mPrecision );
2090 
2091  if ( currentReshapeGeometry )
2092  {
2093  newGeoms[i] = currentReshapeGeometry.release();
2094  reshapeTookPlace = true;
2095  }
2096  else
2097  {
2098  newGeoms[i] = GEOSGeom_clone_r( geosinit.ctxt, GEOSGetGeometryN_r( geosinit.ctxt, mGeos.get(), i ) );
2099  }
2100  }
2101 
2102  geos::unique_ptr newMultiGeom;
2103  if ( isLine )
2104  {
2105  newMultiGeom.reset( GEOSGeom_createCollection_r( geosinit.ctxt, GEOS_MULTILINESTRING, newGeoms, numGeoms ) );
2106  }
2107  else //multipolygon
2108  {
2109  newMultiGeom.reset( GEOSGeom_createCollection_r( geosinit.ctxt, GEOS_MULTIPOLYGON, newGeoms, numGeoms ) );
2110  }
2111 
2112  delete[] newGeoms;
2113  if ( !newMultiGeom )
2114  {
2115  if ( errorCode ) { *errorCode = EngineError; }
2116  return nullptr;
2117  }
2118 
2119  if ( reshapeTookPlace )
2120  {
2121  if ( errorCode )
2122  *errorCode = Success;
2123  std::unique_ptr< QgsAbstractGeometry > reshapedMultiGeom = fromGeos( newMultiGeom.get() );
2124  return reshapedMultiGeom;
2125  }
2126  else
2127  {
2128  if ( errorCode )
2129  {
2130  *errorCode = NothingHappened;
2131  }
2132  return nullptr;
2133  }
2134  }
2135  CATCH_GEOS_WITH_ERRMSG( nullptr )
2136  }
2137 }
2138 
2139 QgsGeometry QgsGeos::mergeLines( QString *errorMsg ) const
2140 {
2141  if ( !mGeos )
2142  {
2143  return QgsGeometry();
2144  }
2145 
2146  if ( GEOSGeomTypeId_r( geosinit.ctxt, mGeos.get() ) != GEOS_MULTILINESTRING )
2147  return QgsGeometry();
2148 
2150  try
2151  {
2152  geos.reset( GEOSLineMerge_r( geosinit.ctxt, mGeos.get() ) );
2153  }
2155  return QgsGeometry( fromGeos( geos.get() ) );
2156 }
2157 
2158 QgsGeometry QgsGeos::closestPoint( const QgsGeometry &other, QString *errorMsg ) const
2159 {
2160  if ( !mGeos || other.isNull() )
2161  {
2162  return QgsGeometry();
2163  }
2164 
2165  geos::unique_ptr otherGeom( asGeos( other.constGet(), mPrecision ) );
2166  if ( !otherGeom )
2167  {
2168  return QgsGeometry();
2169  }
2170 
2171  double nx = 0.0;
2172  double ny = 0.0;
2173  try
2174  {
2175  geos::coord_sequence_unique_ptr nearestCoord( GEOSNearestPoints_r( geosinit.ctxt, mGeos.get(), otherGeom.get() ) );
2176 
2177  ( void )GEOSCoordSeq_getX_r( geosinit.ctxt, nearestCoord.get(), 0, &nx );
2178  ( void )GEOSCoordSeq_getY_r( geosinit.ctxt, nearestCoord.get(), 0, &ny );
2179  }
2180  catch ( GEOSException &e )
2181  {
2182  if ( errorMsg )
2183  {
2184  *errorMsg = e.what();
2185  }
2186  return QgsGeometry();
2187  }
2188 
2189  return QgsGeometry( new QgsPoint( nx, ny ) );
2190 }
2191 
2192 QgsGeometry QgsGeos::shortestLine( const QgsGeometry &other, QString *errorMsg ) const
2193 {
2194  if ( !mGeos || other.isNull() )
2195  {
2196  return QgsGeometry();
2197  }
2198 
2199  geos::unique_ptr otherGeom( asGeos( other.constGet(), mPrecision ) );
2200  if ( !otherGeom )
2201  {
2202  return QgsGeometry();
2203  }
2204 
2205  double nx1 = 0.0;
2206  double ny1 = 0.0;
2207  double nx2 = 0.0;
2208  double ny2 = 0.0;
2209  try
2210  {
2211  geos::coord_sequence_unique_ptr nearestCoord( GEOSNearestPoints_r( geosinit.ctxt, mGeos.get(), otherGeom.get() ) );
2212 
2213  ( void )GEOSCoordSeq_getX_r( geosinit.ctxt, nearestCoord.get(), 0, &nx1 );
2214  ( void )GEOSCoordSeq_getY_r( geosinit.ctxt, nearestCoord.get(), 0, &ny1 );
2215  ( void )GEOSCoordSeq_getX_r( geosinit.ctxt, nearestCoord.get(), 1, &nx2 );
2216  ( void )GEOSCoordSeq_getY_r( geosinit.ctxt, nearestCoord.get(), 1, &ny2 );
2217  }
2218  catch ( GEOSException &e )
2219  {
2220  if ( errorMsg )
2221  {
2222  *errorMsg = e.what();
2223  }
2224  return QgsGeometry();
2225  }
2226 
2227  QgsLineString *line = new QgsLineString();
2228  line->addVertex( QgsPoint( nx1, ny1 ) );
2229  line->addVertex( QgsPoint( nx2, ny2 ) );
2230  return QgsGeometry( line );
2231 }
2232 
2233 double QgsGeos::lineLocatePoint( const QgsPoint &point, QString *errorMsg ) const
2234 {
2235  if ( !mGeos )
2236  {
2237  return -1;
2238  }
2239 
2240  geos::unique_ptr otherGeom( asGeos( &point, mPrecision ) );
2241  if ( !otherGeom )
2242  {
2243  return -1;
2244  }
2245 
2246  double distance = -1;
2247  try
2248  {
2249  distance = GEOSProject_r( geosinit.ctxt, mGeos.get(), otherGeom.get() );
2250  }
2251  catch ( GEOSException &e )
2252  {
2253  if ( errorMsg )
2254  {
2255  *errorMsg = e.what();
2256  }
2257  return -1;
2258  }
2259 
2260  return distance;
2261 }
2262 
2263 QgsGeometry QgsGeos::polygonize( const QVector<const QgsAbstractGeometry *> &geometries, QString *errorMsg )
2264 {
2265  GEOSGeometry **const lineGeosGeometries = new GEOSGeometry*[ geometries.size()];
2266  int validLines = 0;
2267  for ( const QgsAbstractGeometry *g : geometries )
2268  {
2269  geos::unique_ptr l = asGeos( g );
2270  if ( l )
2271  {
2272  lineGeosGeometries[validLines] = l.release();
2273  validLines++;
2274  }
2275  }
2276 
2277  try
2278  {
2279  geos::unique_ptr result( GEOSPolygonize_r( geosinit.ctxt, lineGeosGeometries, validLines ) );
2280  for ( int i = 0; i < validLines; ++i )
2281  {
2282  GEOSGeom_destroy_r( geosinit.ctxt, lineGeosGeometries[i] );
2283  }
2284  delete[] lineGeosGeometries;
2285  return QgsGeometry( fromGeos( result.get() ) );
2286  }
2287  catch ( GEOSException &e )
2288  {
2289  if ( errorMsg )
2290  {
2291  *errorMsg = e.what();
2292  }
2293  for ( int i = 0; i < validLines; ++i )
2294  {
2295  GEOSGeom_destroy_r( geosinit.ctxt, lineGeosGeometries[i] );
2296  }
2297  delete[] lineGeosGeometries;
2298  return QgsGeometry();
2299  }
2300 }
2301 
2302 QgsGeometry QgsGeos::voronoiDiagram( const QgsAbstractGeometry *extent, double tolerance, bool edgesOnly, QString *errorMsg ) const
2303 {
2304  if ( !mGeos )
2305  {
2306  return QgsGeometry();
2307  }
2308 
2309  geos::unique_ptr extentGeosGeom;
2310  if ( extent )
2311  {
2312  extentGeosGeom = asGeos( extent, mPrecision );
2313  if ( !extentGeosGeom )
2314  {
2315  return QgsGeometry();
2316  }
2317  }
2318 
2320  try
2321  {
2322  geos.reset( GEOSVoronoiDiagram_r( geosinit.ctxt, mGeos.get(), extentGeosGeom.get(), tolerance, edgesOnly ) );
2323 
2324  if ( !geos || GEOSisEmpty_r( geosinit.ctxt, geos.get() ) != 0 )
2325  {
2326  return QgsGeometry();
2327  }
2328 
2329  return QgsGeometry( fromGeos( geos.get() ) );
2330  }
2332 }
2333 
2334 QgsGeometry QgsGeos::delaunayTriangulation( double tolerance, bool edgesOnly, QString *errorMsg ) const
2335 {
2336  if ( !mGeos )
2337  {
2338  return QgsGeometry();
2339  }
2340 
2342  try
2343  {
2344  geos.reset( GEOSDelaunayTriangulation_r( geosinit.ctxt, mGeos.get(), tolerance, edgesOnly ) );
2345 
2346  if ( !geos || GEOSisEmpty_r( geosinit.ctxt, geos.get() ) != 0 )
2347  {
2348  return QgsGeometry();
2349  }
2350 
2351  return QgsGeometry( fromGeos( geos.get() ) );
2352  }
2354 }
2355 
2356 
2358 static bool _linestringEndpoints( const GEOSGeometry *linestring, double &x1, double &y1, double &x2, double &y2 )
2359 {
2360  const GEOSCoordSequence *coordSeq = GEOSGeom_getCoordSeq_r( geosinit.ctxt, linestring );
2361  if ( !coordSeq )
2362  return false;
2363 
2364  unsigned int coordSeqSize;
2365  if ( GEOSCoordSeq_getSize_r( geosinit.ctxt, coordSeq, &coordSeqSize ) == 0 )
2366  return false;
2367 
2368  if ( coordSeqSize < 2 )
2369  return false;
2370 
2371  GEOSCoordSeq_getX_r( geosinit.ctxt, coordSeq, 0, &x1 );
2372  GEOSCoordSeq_getY_r( geosinit.ctxt, coordSeq, 0, &y1 );
2373  GEOSCoordSeq_getX_r( geosinit.ctxt, coordSeq, coordSeqSize - 1, &x2 );
2374  GEOSCoordSeq_getY_r( geosinit.ctxt, coordSeq, coordSeqSize - 1, &y2 );
2375  return true;
2376 }
2377 
2378 
2380 static geos::unique_ptr _mergeLinestrings( const GEOSGeometry *line1, const GEOSGeometry *line2, const QgsPointXY &intersectionPoint )
2381 {
2382  double x1, y1, x2, y2;
2383  if ( !_linestringEndpoints( line1, x1, y1, x2, y2 ) )
2384  return nullptr;
2385 
2386  double rx1, ry1, rx2, ry2;
2387  if ( !_linestringEndpoints( line2, rx1, ry1, rx2, ry2 ) )
2388  return nullptr;
2389 
2390  bool intersectionAtOrigLineEndpoint =
2391  ( intersectionPoint.x() == x1 && intersectionPoint.y() == y1 ) !=
2392  ( intersectionPoint.x() == x2 && intersectionPoint.y() == y2 );
2393  bool intersectionAtReshapeLineEndpoint =
2394  ( intersectionPoint.x() == rx1 && intersectionPoint.y() == ry1 ) ||
2395  ( intersectionPoint.x() == rx2 && intersectionPoint.y() == ry2 );
2396 
2397  // the intersection must be at the begin/end of both lines
2398  if ( intersectionAtOrigLineEndpoint && intersectionAtReshapeLineEndpoint )
2399  {
2400  geos::unique_ptr g1( GEOSGeom_clone_r( geosinit.ctxt, line1 ) );
2401  geos::unique_ptr g2( GEOSGeom_clone_r( geosinit.ctxt, line2 ) );
2402  GEOSGeometry *geoms[2] = { g1.release(), g2.release() };
2403  geos::unique_ptr multiGeom( GEOSGeom_createCollection_r( geosinit.ctxt, GEOS_MULTILINESTRING, geoms, 2 ) );
2404  geos::unique_ptr res( GEOSLineMerge_r( geosinit.ctxt, multiGeom.get() ) );
2405  return res;
2406  }
2407  else
2408  return nullptr;
2409 }
2410 
2411 
2412 geos::unique_ptr QgsGeos::reshapeLine( const GEOSGeometry *line, const GEOSGeometry *reshapeLineGeos, double precision )
2413 {
2414  if ( !line || !reshapeLineGeos )
2415  return nullptr;
2416 
2417  bool atLeastTwoIntersections = false;
2418  bool oneIntersection = false;
2419  QgsPointXY oneIntersectionPoint;
2420 
2421  try
2422  {
2423  //make sure there are at least two intersection between line and reshape geometry
2424  geos::unique_ptr intersectGeom( GEOSIntersection_r( geosinit.ctxt, line, reshapeLineGeos ) );
2425  if ( intersectGeom )
2426  {
2427  atLeastTwoIntersections = ( GEOSGeomTypeId_r( geosinit.ctxt, intersectGeom.get() ) == GEOS_MULTIPOINT
2428  && GEOSGetNumGeometries_r( geosinit.ctxt, intersectGeom.get() ) > 1 );
2429  // one point is enough when extending line at its endpoint
2430  if ( GEOSGeomTypeId_r( geosinit.ctxt, intersectGeom.get() ) == GEOS_POINT )
2431  {
2432  const GEOSCoordSequence *intersectionCoordSeq = GEOSGeom_getCoordSeq_r( geosinit.ctxt, intersectGeom.get() );
2433  double xi, yi;
2434  GEOSCoordSeq_getX_r( geosinit.ctxt, intersectionCoordSeq, 0, &xi );
2435  GEOSCoordSeq_getY_r( geosinit.ctxt, intersectionCoordSeq, 0, &yi );
2436  oneIntersection = true;
2437  oneIntersectionPoint = QgsPointXY( xi, yi );
2438  }
2439  }
2440  }
2441  catch ( GEOSException & )
2442  {
2443  atLeastTwoIntersections = false;
2444  }
2445 
2446  // special case when extending line at its endpoint
2447  if ( oneIntersection )
2448  return _mergeLinestrings( line, reshapeLineGeos, oneIntersectionPoint );
2449 
2450  if ( !atLeastTwoIntersections )
2451  return nullptr;
2452 
2453  //begin and end point of original line
2454  double x1, y1, x2, y2;
2455  if ( !_linestringEndpoints( line, x1, y1, x2, y2 ) )
2456  return nullptr;
2457 
2458  geos::unique_ptr beginLineVertex = createGeosPointXY( x1, y1, false, 0, false, 0, 2, precision );
2459  geos::unique_ptr endLineVertex = createGeosPointXY( x2, y2, false, 0, false, 0, 2, precision );
2460 
2461  bool isRing = false;
2462  if ( GEOSGeomTypeId_r( geosinit.ctxt, line ) == GEOS_LINEARRING
2463  || GEOSEquals_r( geosinit.ctxt, beginLineVertex.get(), endLineVertex.get() ) == 1 )
2464  isRing = true;
2465 
2466  //node line and reshape line
2467  geos::unique_ptr nodedGeometry = nodeGeometries( reshapeLineGeos, line );
2468  if ( !nodedGeometry )
2469  {
2470  return nullptr;
2471  }
2472 
2473  //and merge them together
2474  geos::unique_ptr mergedLines( GEOSLineMerge_r( geosinit.ctxt, nodedGeometry.get() ) );
2475  if ( !mergedLines )
2476  {
2477  return nullptr;
2478  }
2479 
2480  int numMergedLines = GEOSGetNumGeometries_r( geosinit.ctxt, mergedLines.get() );
2481  if ( numMergedLines < 2 ) //some special cases. Normally it is >2
2482  {
2483  if ( numMergedLines == 1 ) //reshape line is from begin to endpoint. So we keep the reshapeline
2484  {
2485  geos::unique_ptr result( GEOSGeom_clone_r( geosinit.ctxt, reshapeLineGeos ) );
2486  return result;
2487  }
2488  else
2489  return nullptr;
2490  }
2491 
2492  QVector<GEOSGeometry *> resultLineParts; //collection with the line segments that will be contained in result
2493  QVector<GEOSGeometry *> probableParts; //parts where we can decide on inclusion only after going through all the candidates
2494 
2495  for ( int i = 0; i < numMergedLines; ++i )
2496  {
2497  const GEOSGeometry *currentGeom = nullptr;
2498 
2499  currentGeom = GEOSGetGeometryN_r( geosinit.ctxt, mergedLines.get(), i );
2500  const GEOSCoordSequence *currentCoordSeq = GEOSGeom_getCoordSeq_r( geosinit.ctxt, currentGeom );
2501  unsigned int currentCoordSeqSize;
2502  GEOSCoordSeq_getSize_r( geosinit.ctxt, currentCoordSeq, &currentCoordSeqSize );
2503  if ( currentCoordSeqSize < 2 )
2504  continue;
2505 
2506  //get the two endpoints of the current line merge result
2507  double xBegin, xEnd, yBegin, yEnd;
2508  GEOSCoordSeq_getX_r( geosinit.ctxt, currentCoordSeq, 0, &xBegin );
2509  GEOSCoordSeq_getY_r( geosinit.ctxt, currentCoordSeq, 0, &yBegin );
2510  GEOSCoordSeq_getX_r( geosinit.ctxt, currentCoordSeq, currentCoordSeqSize - 1, &xEnd );
2511  GEOSCoordSeq_getY_r( geosinit.ctxt, currentCoordSeq, currentCoordSeqSize - 1, &yEnd );
2512  geos::unique_ptr beginCurrentGeomVertex = createGeosPointXY( xBegin, yBegin, false, 0, false, 0, 2, precision );
2513  geos::unique_ptr endCurrentGeomVertex = createGeosPointXY( xEnd, yEnd, false, 0, false, 0, 2, precision );
2514 
2515  //check how many endpoints of the line merge result are on the (original) line
2516  int nEndpointsOnOriginalLine = 0;
2517  if ( pointContainedInLine( beginCurrentGeomVertex.get(), line ) == 1 )
2518  nEndpointsOnOriginalLine += 1;
2519 
2520  if ( pointContainedInLine( endCurrentGeomVertex.get(), line ) == 1 )
2521  nEndpointsOnOriginalLine += 1;
2522 
2523  //check how many endpoints equal the endpoints of the original line
2524  int nEndpointsSameAsOriginalLine = 0;
2525  if ( GEOSEquals_r( geosinit.ctxt, beginCurrentGeomVertex.get(), beginLineVertex.get() ) == 1
2526  || GEOSEquals_r( geosinit.ctxt, beginCurrentGeomVertex.get(), endLineVertex.get() ) == 1 )
2527  nEndpointsSameAsOriginalLine += 1;
2528 
2529  if ( GEOSEquals_r( geosinit.ctxt, endCurrentGeomVertex.get(), beginLineVertex.get() ) == 1
2530  || GEOSEquals_r( geosinit.ctxt, endCurrentGeomVertex.get(), endLineVertex.get() ) == 1 )
2531  nEndpointsSameAsOriginalLine += 1;
2532 
2533  //check if the current geometry overlaps the original geometry (GEOSOverlap does not seem to work with linestrings)
2534  bool currentGeomOverlapsOriginalGeom = false;
2535  bool currentGeomOverlapsReshapeLine = false;
2536  if ( lineContainedInLine( currentGeom, line ) == 1 )
2537  currentGeomOverlapsOriginalGeom = true;
2538 
2539  if ( lineContainedInLine( currentGeom, reshapeLineGeos ) == 1 )
2540  currentGeomOverlapsReshapeLine = true;
2541 
2542  //logic to decide if this part belongs to the result
2543  if ( !isRing && nEndpointsSameAsOriginalLine == 1 && nEndpointsOnOriginalLine == 2 && currentGeomOverlapsOriginalGeom )
2544  {
2545  resultLineParts.push_back( GEOSGeom_clone_r( geosinit.ctxt, currentGeom ) );
2546  }
2547  //for closed rings, we take one segment from the candidate list
2548  else if ( isRing && nEndpointsOnOriginalLine == 2 && currentGeomOverlapsOriginalGeom )
2549  {
2550  probableParts.push_back( GEOSGeom_clone_r( geosinit.ctxt, currentGeom ) );
2551  }
2552  else if ( nEndpointsOnOriginalLine == 2 && !currentGeomOverlapsOriginalGeom )
2553  {
2554  resultLineParts.push_back( GEOSGeom_clone_r( geosinit.ctxt, currentGeom ) );
2555  }
2556  else if ( nEndpointsSameAsOriginalLine == 2 && !currentGeomOverlapsOriginalGeom )
2557  {
2558  resultLineParts.push_back( GEOSGeom_clone_r( geosinit.ctxt, currentGeom ) );
2559  }
2560  else if ( currentGeomOverlapsOriginalGeom && currentGeomOverlapsReshapeLine )
2561  {
2562  resultLineParts.push_back( GEOSGeom_clone_r( geosinit.ctxt, currentGeom ) );
2563  }
2564  }
2565 
2566  //add the longest segment from the probable list for rings (only used for polygon rings)
2567  if ( isRing && !probableParts.isEmpty() )
2568  {
2569  geos::unique_ptr maxGeom; //the longest geometry in the probabla list
2570  GEOSGeometry *currentGeom = nullptr;
2571  double maxLength = -std::numeric_limits<double>::max();
2572  double currentLength = 0;
2573  for ( int i = 0; i < probableParts.size(); ++i )
2574  {
2575  currentGeom = probableParts.at( i );
2576  GEOSLength_r( geosinit.ctxt, currentGeom, &currentLength );
2577  if ( currentLength > maxLength )
2578  {
2579  maxLength = currentLength;
2580  maxGeom.reset( currentGeom );
2581  }
2582  else
2583  {
2584  GEOSGeom_destroy_r( geosinit.ctxt, currentGeom );
2585  }
2586  }
2587  resultLineParts.push_back( maxGeom.release() );
2588  }
2589 
2590  geos::unique_ptr result;
2591  if ( resultLineParts.empty() )
2592  return nullptr;
2593 
2594  if ( resultLineParts.size() == 1 ) //the whole result was reshaped
2595  {
2596  result.reset( resultLineParts[0] );
2597  }
2598  else //>1
2599  {
2600  GEOSGeometry **lineArray = new GEOSGeometry*[resultLineParts.size()];
2601  for ( int i = 0; i < resultLineParts.size(); ++i )
2602  {
2603  lineArray[i] = resultLineParts[i];
2604  }
2605 
2606  //create multiline from resultLineParts
2607  geos::unique_ptr multiLineGeom( GEOSGeom_createCollection_r( geosinit.ctxt, GEOS_MULTILINESTRING, lineArray, resultLineParts.size() ) );
2608  delete [] lineArray;
2609 
2610  //then do a linemerge with the newly combined partstrings
2611  result.reset( GEOSLineMerge_r( geosinit.ctxt, multiLineGeom.get() ) );
2612  }
2613 
2614  //now test if the result is a linestring. Otherwise something went wrong
2615  if ( GEOSGeomTypeId_r( geosinit.ctxt, result.get() ) != GEOS_LINESTRING )
2616  {
2617  return nullptr;
2618  }
2619 
2620  return result;
2621 }
2622 
2623 geos::unique_ptr QgsGeos::reshapePolygon( const GEOSGeometry *polygon, const GEOSGeometry *reshapeLineGeos, double precision )
2624 {
2625  //go through outer shell and all inner rings and check if there is exactly one intersection of a ring and the reshape line
2626  int nIntersections = 0;
2627  int lastIntersectingRing = -2;
2628  const GEOSGeometry *lastIntersectingGeom = nullptr;
2629 
2630  int nRings = GEOSGetNumInteriorRings_r( geosinit.ctxt, polygon );
2631  if ( nRings < 0 )
2632  return nullptr;
2633 
2634  //does outer ring intersect?
2635  const GEOSGeometry *outerRing = GEOSGetExteriorRing_r( geosinit.ctxt, polygon );
2636  if ( GEOSIntersects_r( geosinit.ctxt, outerRing, reshapeLineGeos ) == 1 )
2637  {
2638  ++nIntersections;
2639  lastIntersectingRing = -1;
2640  lastIntersectingGeom = outerRing;
2641  }
2642 
2643  //do inner rings intersect?
2644  const GEOSGeometry **innerRings = new const GEOSGeometry*[nRings];
2645 
2646  try
2647  {
2648  for ( int i = 0; i < nRings; ++i )
2649  {
2650  innerRings[i] = GEOSGetInteriorRingN_r( geosinit.ctxt, polygon, i );
2651  if ( GEOSIntersects_r( geosinit.ctxt, innerRings[i], reshapeLineGeos ) == 1 )
2652  {
2653  ++nIntersections;
2654  lastIntersectingRing = i;
2655  lastIntersectingGeom = innerRings[i];
2656  }
2657  }
2658  }
2659  catch ( GEOSException & )
2660  {
2661  nIntersections = 0;
2662  }
2663 
2664  if ( nIntersections != 1 ) //reshape line is only allowed to intersect one ring
2665  {
2666  delete [] innerRings;
2667  return nullptr;
2668  }
2669 
2670  //we have one intersecting ring, let's try to reshape it
2671  geos::unique_ptr reshapeResult = reshapeLine( lastIntersectingGeom, reshapeLineGeos, precision );
2672  if ( !reshapeResult )
2673  {
2674  delete [] innerRings;
2675  return nullptr;
2676  }
2677 
2678  //if reshaping took place, we need to reassemble the polygon and its rings
2679  GEOSGeometry *newRing = nullptr;
2680  const GEOSCoordSequence *reshapeSequence = GEOSGeom_getCoordSeq_r( geosinit.ctxt, reshapeResult.get() );
2681  GEOSCoordSequence *newCoordSequence = GEOSCoordSeq_clone_r( geosinit.ctxt, reshapeSequence );
2682 
2683  reshapeResult.reset();
2684 
2685  newRing = GEOSGeom_createLinearRing_r( geosinit.ctxt, newCoordSequence );
2686  if ( !newRing )
2687  {
2688  delete [] innerRings;
2689  return nullptr;
2690  }
2691 
2692  GEOSGeometry *newOuterRing = nullptr;
2693  if ( lastIntersectingRing == -1 )
2694  newOuterRing = newRing;
2695  else
2696  newOuterRing = GEOSGeom_clone_r( geosinit.ctxt, outerRing );
2697 
2698  //check if all the rings are still inside the outer boundary
2699  QVector<GEOSGeometry *> ringList;
2700  if ( nRings > 0 )
2701  {
2702  GEOSGeometry *outerRingPoly = GEOSGeom_createPolygon_r( geosinit.ctxt, GEOSGeom_clone_r( geosinit.ctxt, newOuterRing ), nullptr, 0 );
2703  if ( outerRingPoly )
2704  {
2705  GEOSGeometry *currentRing = nullptr;
2706  for ( int i = 0; i < nRings; ++i )
2707  {
2708  if ( lastIntersectingRing == i )
2709  currentRing = newRing;
2710  else
2711  currentRing = GEOSGeom_clone_r( geosinit.ctxt, innerRings[i] );
2712 
2713  //possibly a ring is no longer contained in the result polygon after reshape
2714  if ( GEOSContains_r( geosinit.ctxt, outerRingPoly, currentRing ) == 1 )
2715  ringList.push_back( currentRing );
2716  else
2717  GEOSGeom_destroy_r( geosinit.ctxt, currentRing );
2718  }
2719  }
2720  GEOSGeom_destroy_r( geosinit.ctxt, outerRingPoly );
2721  }
2722 
2723  GEOSGeometry **newInnerRings = new GEOSGeometry*[ringList.size()];
2724  for ( int i = 0; i < ringList.size(); ++i )
2725  newInnerRings[i] = ringList.at( i );
2726 
2727  delete [] innerRings;
2728 
2729  geos::unique_ptr reshapedPolygon( GEOSGeom_createPolygon_r( geosinit.ctxt, newOuterRing, newInnerRings, ringList.size() ) );
2730  delete[] newInnerRings;
2731 
2732  return reshapedPolygon;
2733 }
2734 
2735 int QgsGeos::lineContainedInLine( const GEOSGeometry *line1, const GEOSGeometry *line2 )
2736 {
2737  if ( !line1 || !line2 )
2738  {
2739  return -1;
2740  }
2741 
2742  double bufferDistance = std::pow( 10.0L, geomDigits( line2 ) - 11 );
2743 
2744  geos::unique_ptr bufferGeom( GEOSBuffer_r( geosinit.ctxt, line2, bufferDistance, DEFAULT_QUADRANT_SEGMENTS ) );
2745  if ( !bufferGeom )
2746  return -2;
2747 
2748  geos::unique_ptr intersectionGeom( GEOSIntersection_r( geosinit.ctxt, bufferGeom.get(), line1 ) );
2749 
2750  //compare ratio between line1Length and intersectGeomLength (usually close to 1 if line1 is contained in line2)
2751  double intersectGeomLength;
2752  double line1Length;
2753 
2754  GEOSLength_r( geosinit.ctxt, intersectionGeom.get(), &intersectGeomLength );
2755  GEOSLength_r( geosinit.ctxt, line1, &line1Length );
2756 
2757  double intersectRatio = line1Length / intersectGeomLength;
2758  if ( intersectRatio > 0.9 && intersectRatio < 1.1 )
2759  return 1;
2760 
2761  return 0;
2762 }
2763 
2764 int QgsGeos::pointContainedInLine( const GEOSGeometry *point, const GEOSGeometry *line )
2765 {
2766  if ( !point || !line )
2767  return -1;
2768 
2769  double bufferDistance = std::pow( 10.0L, geomDigits( line ) - 11 );
2770 
2771  geos::unique_ptr lineBuffer( GEOSBuffer_r( geosinit.ctxt, line, bufferDistance, 8 ) );
2772  if ( !lineBuffer )
2773  return -2;
2774 
2775  bool contained = false;
2776  if ( GEOSContains_r( geosinit.ctxt, lineBuffer.get(), point ) == 1 )
2777  contained = true;
2778 
2779  return contained;
2780 }
2781 
2782 int QgsGeos::geomDigits( const GEOSGeometry *geom )
2783 {
2784  geos::unique_ptr bbox( GEOSEnvelope_r( geosinit.ctxt, geom ) );
2785  if ( !bbox.get() )
2786  return -1;
2787 
2788  const GEOSGeometry *bBoxRing = GEOSGetExteriorRing_r( geosinit.ctxt, bbox.get() );
2789  if ( !bBoxRing )
2790  return -1;
2791 
2792  const GEOSCoordSequence *bBoxCoordSeq = GEOSGeom_getCoordSeq_r( geosinit.ctxt, bBoxRing );
2793 
2794  if ( !bBoxCoordSeq )
2795  return -1;
2796 
2797  unsigned int nCoords = 0;
2798  if ( !GEOSCoordSeq_getSize_r( geosinit.ctxt, bBoxCoordSeq, &nCoords ) )
2799  return -1;
2800 
2801  int maxDigits = -1;
2802  for ( unsigned int i = 0; i < nCoords - 1; ++i )
2803  {
2804  double t;
2805  GEOSCoordSeq_getX_r( geosinit.ctxt, bBoxCoordSeq, i, &t );
2806 
2807  int digits;
2808  digits = std::ceil( std::log10( std::fabs( t ) ) );
2809  if ( digits > maxDigits )
2810  maxDigits = digits;
2811 
2812  GEOSCoordSeq_getY_r( geosinit.ctxt, bBoxCoordSeq, i, &t );
2813  digits = std::ceil( std::log10( std::fabs( t ) ) );
2814  if ( digits > maxDigits )
2815  maxDigits = digits;
2816  }
2817 
2818  return maxDigits;
2819 }
2820 
2821 GEOSContextHandle_t QgsGeos::getGEOSHandler()
2822 {
2823  return geosinit.ctxt;
2824 }
const QgsCurve * exteriorRing() const
Returns the curve polygon&#39;s exterior ring.
int precision
A rectangle specified with double values.
Definition: qgsrectangle.h:40
double y
Definition: qgspoint.h:42
bool disjoint(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom is disjoint from this.
Definition: qgsgeos.cpp:518
QgsAbstractGeometry * intersection(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Calculate the intersection of this and geom.
Definition: qgsgeos.cpp:217
bool isEmpty() const
Returns true if the rectangle is empty.
Definition: qgsrectangle.h:425
#define CATCH_GEOS(r)
Definition: qgsgeos.cpp:33
bool isNull() const
Returns true if the geometry is null (ie, contains no underlying geometry accessible via geometry() )...
QgsGeos(const QgsAbstractGeometry *geometry, double precision=0)
GEOS geometry engine constructor.
Definition: qgsgeos.cpp:145
void setXMaximum(double x)
Set the maximum x value.
Definition: qgsrectangle.h:134
Multi point geometry collection.
Definition: qgsmultipoint.h:29
double hausdorffDistanceDensify(const QgsAbstractGeometry *geom, double densifyFraction, QString *errorMsg=nullptr) const
Returns the Hausdorff distance between this geometry and geom.
Definition: qgsgeos.cpp:465
static bool isMultiType(Type type)
Returns true if the WKB type is a multi type.
Definition: qgswkbtypes.h:695
The source geometry is not multi.
Definition: qgsgeometry.h:127
bool isEmpty(QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:1739
const double * zData() const
Returns a const pointer to the z vertex data, or a nullptr if the linestring does not have z values...
double yMaximum() const
Returns the y maximum value (top side of rectangle).
Definition: qgsrectangle.h:171
#define QgsDebugMsg(str)
Definition: qgslogger.h:38
QgsPoint * pointOnSurface(QString *errorMsg=nullptr) const override
Calculate a point that is guaranteed to be on the surface of this.
Definition: qgsgeos.cpp:1617
double y
Definition: qgspointxy.h:48
double area(QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:586
A class to represent a 2D point.
Definition: qgspointxy.h:43
bool qgsDoubleNear(double a, double b, double epsilon=4 *std::numeric_limits< double >::epsilon())
Compare two doubles (but allow some difference)
Definition: qgis.h:278
const QgsAbstractGeometry * mGeometry
QgsWkbTypes::Type wkbType() const
Returns the WKB type of the geometry.
QgsAbstractGeometry * buffer(double distance, int segments, QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:1514
bool isNull() const
Test if the rectangle is null (all coordinates zero or after call to setMinimal()).
Definition: qgsrectangle.h:435
bool isValid(QString *errorMsg=nullptr, bool allowSelfTouchingHoles=false, QgsGeometry *errorLoc=nullptr) const override
Returns true if the geometry is valid.
Definition: qgsgeos.cpp:1661
QgsGeometry closestPoint(const QgsGeometry &other, QString *errorMsg=nullptr) const
Returns the closest point on the geometry to the other geometry.
Definition: qgsgeos.cpp:2158
Multi line string geometry collection.
Curve polygon geometry type.
static std::unique_ptr< QgsGeometryCollection > createCollectionOfType(QgsWkbTypes::Type type)
Returns a new geometry collection matching a specified WKB type.
double length(QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:603
A geometry is the spatial representation of a feature.
Definition: qgsgeometry.h:106
bool isEqual(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if this is equal to geom.
Definition: qgsgeos.cpp:1719
const QgsAbstractGeometry * geometryN(int n) const
Returns a const reference to a geometry from within the collection.
virtual QgsRectangle boundingBox() const =0
Returns the minimal bounding box for the geometry.
static QgsGeometry::OperationResult addPart(QgsGeometry &geometry, GEOSGeometry *newPart)
Adds a new island polygon to a multipolygon feature.
Definition: qgsgeos.cpp:176
void CORE_EXPORT operator()(GEOSGeometry *geom)
Destroys the GEOS geometry geom, using the static QGIS geos context.
virtual QgsAbstractGeometry * clone() const =0
Clones the geometry by performing a deep copy.
QMap< QString, QString > QgsStringMap
Definition: qgis.h:577
OperationResult
Success or failure of a geometry operation.
Definition: qgsgeometry.h:115
double mAt(int index) const
Returns the m value of the specified node in the line string.
static GEOSContextHandle_t getGEOSHandler()
Definition: qgsgeos.cpp:2821
int numInteriorRings() const
Returns the number of interior rings contained with the curve polygon.
int numPoints() const override
Returns the number of points in the curve.
QgsAbstractGeometry * interpolate(double distance, QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:1561
As part of the API refactoring and improvements which landed in the Processing API was substantially reworked from the x version This was done in order to allow much of the underlying Processing framework to be ported into c
bool within(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom is within this.
Definition: qgsgeos.cpp:503
#define CATCH_GEOS_WITH_ERRMSG(r)
Definition: qgsgeos.cpp:39
Operation succeeded.
const QgsAbstractGeometry * constGet() const
Returns a non-modifiable (const) reference to the underlying abstract geometry primitive.
Nothing happened, without any error.
Type
The WKB type describes the number of dimensions a geometry has.
Definition: qgswkbtypes.h:68
QgsAbstractGeometry * envelope(QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:1602
bool isMeasure() const
Returns true if the geometry contains m values.
static std::unique_ptr< QgsAbstractGeometry > fromGeos(const GEOSGeometry *geos)
Create a geometry from a GEOSGeometry.
Definition: qgsgeos.cpp:1081
double yMinimum() const
Returns the y minimum value (bottom side of rectangle).
Definition: qgsrectangle.h:176
void addVertex(const QgsPoint &pt)
Adds a new vertex to the end of the line string.
double hausdorffDistance(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const
Returns the Hausdorff distance between this geometry and geom.
Definition: qgsgeos.cpp:442
bool touches(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom touches this.
Definition: qgsgeos.cpp:493
double xMaximum() const
Returns the x maximum value (right side of rectangle).
Definition: qgsrectangle.h:161
Geometry collection.
void prepareGeometry() override
Prepares the geometry, so that subsequent calls to spatial relation methods are much faster...
Definition: qgsgeos.cpp:198
void setYMinimum(double y)
Set the minimum y value.
Definition: qgsrectangle.h:139
QgsPoint pointN(int i) const
Returns the specified point from inside the line string.
std::unique_ptr< GEOSGeometry, GeosDeleter > unique_ptr
Scoped GEOS pointer.
Definition: qgsgeos.h:79
double yAt(int index) const override
Returns the y-coordinate of the specified node in the line string.
static GeometryType geometryType(Type type)
Returns the geometry type for a WKB type, e.g., both MultiPolygon and CurvePolygon would have a Polyg...
Definition: qgswkbtypes.h:801
bool relatePattern(const QgsAbstractGeometry *geom, const QString &pattern, QString *errorMsg=nullptr) const override
Tests whether two geometries are related by a specified Dimensional Extended 9 Intersection Model (DE...
Definition: qgsgeos.cpp:557
QgsPoint * centroid(QString *errorMsg=nullptr) const override
Calculates the centroid of this.
Definition: qgsgeos.cpp:1576
T qgsgeometry_cast(const QgsAbstractGeometry *geom)
Multi curve geometry collection.
Definition: qgsmulticurve.h:29
double distance(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Calculates the distance between this and geom.
Definition: qgsgeos.cpp:419
QgsPoint * clone() const override
Clones the geometry by performing a deep copy.
Definition: qgspoint.cpp:94
QgsGeometry voronoiDiagram(const QgsAbstractGeometry *extent=nullptr, double tolerance=0.0, bool edgesOnly=false, QString *errorMsg=nullptr) const
Creates a Voronoi diagram for the nodes contained within the geometry.
Definition: qgsgeos.cpp:2302
Abstract base class for curved geometry type.
Definition: qgscurve.h:35
int numGeometries() const
Returns the number of geometries within the collection.
QgsGeometry delaunayTriangulation(double tolerance=0.0, bool edgesOnly=false, QString *errorMsg=nullptr) const
Returns the Delaunay triangulation for the vertices of the geometry.
Definition: qgsgeos.cpp:2334
Abstract base class for all geometries.
virtual int dimension() const =0
Returns the inherent dimension of the geometry.
const double * xData() const
Returns a const pointer to the x vertex data.
std::unique_ptr< GEOSBufferParams, GeosDeleter > buffer_params_unique_ptr
Scoped GEOS buffer params pointer.
Definition: qgsgeos.h:89
Point geometry type, with support for z-dimension and m-values.
Definition: qgspoint.h:37
Error occurred while creating a noded geometry.
double x
Definition: qgspointxy.h:47
QgsLineString * clone() const override
Clones the geometry by performing a deep copy.
Error occurred in the geometry engine.
QgsAbstractGeometry * symDifference(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Calculate the symmetric difference of this and geom.
Definition: qgsgeos.cpp:414
Contains geos related utilities and functions.
Definition: qgsgeos.h:41
QgsAbstractGeometry * get()
Returns a modifiable (non-const) reference to the underlying abstract geometry primitive.
std::unique_ptr< QgsAbstractGeometry > clip(const QgsRectangle &rectangle, QString *errorMsg=nullptr) const
Performs a fast, non-robust intersection between the geometry and a rectangle.
Definition: qgsgeos.cpp:227
QgsAbstractGeometry * combine(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Calculate the combination of this and geom.
Definition: qgsgeos.cpp:361
void geometryChanged() override
Should be called whenever the geometry associated with the engine has been modified and the engine mu...
Definition: qgsgeos.cpp:191
QVector< QgsPoint > QgsPointSequence
static QgsPoint coordSeqPoint(const GEOSCoordSequence *cs, int i, bool hasZ, bool hasM)
Definition: qgsgeos.cpp:1253
double lineLocatePoint(const QgsPoint &point, QString *errorMsg=nullptr) const
Returns a distance representing the location along this linestring of the closest point on this lines...
Definition: qgsgeos.cpp:2233
static QgsGeometry::OperationResult addPart(QgsAbstractGeometry *geometry, std::unique_ptr< QgsAbstractGeometry > part)
Add a part to multi type geometry.
QgsAbstractGeometry * offsetCurve(double distance, int segments, int joinStyle, double miterLimit, QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:1982
QgsAbstractGeometry * convexHull(QString *errorMsg=nullptr) const override
Calculate the convex hull of this.
Definition: qgsgeos.cpp:1645
static geos::unique_ptr asGeos(const QgsGeometry &geometry, double precision=0)
Returns a geos geometry - caller takes ownership of the object (should be deleted with GEOSGeom_destr...
Definition: qgsgeos.cpp:166
The base geometry on which the operation is done is invalid or empty.
Definition: qgsgeometry.h:119
Multi polygon geometry collection.
bool addGeometry(QgsAbstractGeometry *g) override
Adds a geometry and takes ownership. Returns true in case of success.
bool contains(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom contains this.
Definition: qgsgeos.cpp:513
void setYMaximum(double y)
Set the maximum y value.
Definition: qgsrectangle.h:144
Line string geometry type, with support for z-dimension and m-values.
Definition: qgslinestring.h:43
const QgsCurve * interiorRing(int i) const
Retrieves an interior ring from the curve polygon.
virtual QgsLineString * curveToLine(double tolerance=M_PI_2/90, SegmentationToleranceType toleranceType=MaximumAngle) const =0
Returns a new line string geometry corresponding to a segmentized approximation of the curve...
QgsGeometry shortestLine(const QgsGeometry &other, QString *errorMsg=nullptr) const
Returns the shortest line joining this geometry to the other geometry.
Definition: qgsgeos.cpp:2192
std::unique_ptr< QgsAbstractGeometry > singleSidedBuffer(double distance, int segments, int side, int joinStyle, double miterLimit, QString *errorMsg=nullptr) const
Returns a single sided buffer for a geometry.
Definition: qgsgeos.cpp:1997
QString relate(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Returns the Dimensional Extended 9 Intersection Model (DE-9IM) representation of the relationship bet...
Definition: qgsgeos.cpp:523
bool is3D() const
Returns true if the geometry is 3D and contains a z-value.
EngineOperationResult splitGeometry(const QgsLineString &splitLine, QVector< QgsGeometry > &newGeometries, bool topological, QgsPointSequence &topologyTestPoints, QString *errorMsg=nullptr) const override
Splits this geometry according to a given line.
Definition: qgsgeos.cpp:619
bool intersects(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom intersects this.
Definition: qgsgeos.cpp:488
The input is not valid.
double xAt(int index) const override
Returns the x-coordinate of the specified node in the line string.
QgsGeometry mergeLines(QString *errorMsg=nullptr) const
Merges any connected lines in a LineString/MultiLineString geometry and converts them to single line ...
Definition: qgsgeos.cpp:2139
QgsAbstractGeometry * difference(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Calculate the difference of this and geom.
Definition: qgsgeos.cpp:222
const double * mData() const
Returns a const pointer to the m vertex data, or a nullptr if the linestring does not have m values...
bool overlaps(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom overlaps this.
Definition: qgsgeos.cpp:508
static QgsGeometry polygonize(const QVector< const QgsAbstractGeometry * > &geometries, QString *errorMsg=nullptr)
Creates a GeometryCollection geometry containing possible polygons formed from the constituent linewo...
Definition: qgsgeos.cpp:2263
double z
Definition: qgspoint.h:43
Contains geometry relation and modification algorithms.
static std::unique_ptr< QgsPolygon > fromGeosPolygon(const GEOSGeometry *geos)
Definition: qgsgeos.cpp:1169
std::unique_ptr< QgsAbstractGeometry > subdivide(int maxNodes, QString *errorMsg=nullptr) const
Subdivides the geometry.
Definition: qgsgeos.cpp:341
std::unique_ptr< GEOSCoordSequence, GeosDeleter > coord_sequence_unique_ptr
Scoped GEOS coordinate sequence pointer.
Definition: qgsgeos.h:94
EngineOperationResult
Success or failure of a geometry operation.
std::unique_ptr< QgsAbstractGeometry > reshapeGeometry(const QgsLineString &reshapeWithLine, EngineOperationResult *errorCode, QString *errorMsg=nullptr) const
Reshapes the geometry using a line.
Definition: qgsgeos.cpp:2023
static QgsGeometry geometryFromGeos(GEOSGeometry *geos)
Creates a new QgsGeometry object, feeding in a geometry in GEOS format.
Definition: qgsgeos.cpp:153
Polygon geometry type.
Definition: qgspolygon.h:31
double width() const
Returns the width of the rectangle.
Definition: qgsrectangle.h:201
static Type flatType(Type type)
Returns the flat type for a WKB type.
Definition: qgswkbtypes.h:565
double xMinimum() const
Returns the x minimum value (left side of rectangle).
Definition: qgsrectangle.h:166
The geometry on which the operation occurs is not valid.
#define DEFAULT_QUADRANT_SEGMENTS
Definition: qgsgeos.cpp:31
bool isSimple(QString *errorMsg=nullptr) const override
Determines whether the geometry is simple (according to OGC definition).
Definition: qgsgeos.cpp:1753
bool crosses(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Checks if geom crosses this.
Definition: qgsgeos.cpp:498
void setXMinimum(double x)
Set the minimum x value.
Definition: qgsrectangle.h:129
QgsAbstractGeometry * simplify(double tolerance, QString *errorMsg=nullptr) const override
Definition: qgsgeos.cpp:1546
virtual bool addGeometry(QgsAbstractGeometry *g)
Adds a geometry and takes ownership. Returns true in case of success.
double height() const
Returns the height of the rectangle.
Definition: qgsrectangle.h:208
double m
Definition: qgspoint.h:44
const double * yData() const
Returns a const pointer to the y vertex data.
double x
Definition: qgspoint.h:41