QGIS API Documentation 3.34.0-Prizren (ffbdd678812)
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qgsgeometry.cpp
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1/***************************************************************************
2 qgsgeometry.cpp - Geometry (stored as Open Geospatial Consortium WKB)
3 -------------------------------------------------------------------
4Date : 02 May 2005
5Copyright : (C) 2005 by Brendan Morley
6email : morb at ozemail dot com dot au
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 <limits>
17#include <cstdarg>
18#include <cstdio>
19#include <cmath>
20#include <nlohmann/json.hpp>
21#include <QCache>
22
23#include "qgis.h"
24#include "qgsgeometry.h"
26#include "qgsgeometryfactory.h"
27
28#include <geos_c.h>
29
30#include "qgsgeometryutils.h"
32#include "qgsgeos.h"
33#include "qgsmaptopixel.h"
34#include "qgspointxy.h"
35#include "qgsrectangle.h"
36
37#include "qgsvectorlayer.h"
39
40#include "qgsmultilinestring.h"
41#include "qgsmultipoint.h"
42#include "qgsmultipolygon.h"
43#include "qgspoint.h"
44#include "qgspolygon.h"
45#include "qgslinestring.h"
46#include "qgscircle.h"
47#include "qgscurve.h"
48
50{
52 QgsGeometryPrivate( std::unique_ptr< QgsAbstractGeometry > geometry ): ref( 1 ), geometry( std::move( geometry ) ) {}
53 QAtomicInt ref;
54 std::unique_ptr< QgsAbstractGeometry > geometry;
55};
56
61
63{
64 if ( !d->ref.deref() )
65 delete d;
66}
67
69 : d( new QgsGeometryPrivate() )
70{
71 d->geometry.reset( geom );
72}
73
74QgsGeometry::QgsGeometry( std::unique_ptr<QgsAbstractGeometry> geom )
75 : d( new QgsGeometryPrivate( std::move( geom ) ) )
76{
77}
78
80 : d( other.d )
81{
82 mLastError = other.mLastError;
83 d->ref.ref();
84}
85
87{
88 if ( this != &other )
89 {
90 if ( !d->ref.deref() )
91 {
92 delete d;
93 }
94
95 mLastError = other.mLastError;
96 d = other.d;
97 d->ref.ref();
98 }
99 return *this;
100}
101
102void QgsGeometry::detach()
103{
104 if ( d->ref <= 1 )
105 return;
106
107 std::unique_ptr< QgsAbstractGeometry > cGeom;
108 if ( d->geometry )
109 cGeom.reset( d->geometry->clone() );
110
111 reset( std::move( cGeom ) );
112}
113
114void QgsGeometry::reset( std::unique_ptr<QgsAbstractGeometry> newGeometry )
115{
116 if ( d->ref > 1 )
117 {
118 ( void )d->ref.deref();
119 d = new QgsGeometryPrivate();
120 }
121 d->geometry = std::move( newGeometry );
122}
123
125{
126 return d->geometry.get();
127}
128
130{
131 detach();
132 return d->geometry.get();
133}
134
136{
137 if ( d->geometry.get() == geometry )
138 {
139 return;
140 }
141
142 reset( std::unique_ptr< QgsAbstractGeometry >( geometry ) );
143}
144
146{
147 return !d->geometry;
148}
149
150typedef QCache< QString, QgsGeometry > WktCache;
151Q_GLOBAL_STATIC_WITH_ARGS( WktCache, sWktCache, ( 2000 ) ) // store up to 2000 geometries
152Q_GLOBAL_STATIC( QMutex, sWktMutex )
153
154QgsGeometry QgsGeometry::fromWkt( const QString &wkt )
155{
156 QMutexLocker lock( sWktMutex() );
157 if ( const QgsGeometry *cached = sWktCache()->object( wkt ) )
158 return *cached;
159 const QgsGeometry result( QgsGeometryFactory::geomFromWkt( wkt ) );
160 sWktCache()->insert( wkt, new QgsGeometry( result ), 1 );
161 return result;
162}
163
165{
166 std::unique_ptr< QgsAbstractGeometry > geom( QgsGeometryFactory::fromPointXY( point ) );
167 if ( geom )
168 {
169 return QgsGeometry( geom.release() );
170 }
171 return QgsGeometry();
172}
173
175{
176 return QgsGeometry( point.clone() );
177}
178
180{
181 std::unique_ptr< QgsAbstractGeometry > geom = QgsGeometryFactory::fromPolylineXY( polyline );
182 if ( geom )
183 {
184 return QgsGeometry( std::move( geom ) );
185 }
186 return QgsGeometry();
187}
188
190{
191 return QgsGeometry( std::make_unique< QgsLineString >( polyline ) );
192}
193
195{
196 std::unique_ptr< QgsPolygon > geom = QgsGeometryFactory::fromPolygonXY( polygon );
197 if ( geom )
198 {
199 return QgsGeometry( std::move( geom ) );
200 }
201 return QgsGeometry();
202}
203
205{
206 std::unique_ptr< QgsMultiPoint > geom = QgsGeometryFactory::fromMultiPointXY( multipoint );
207 if ( geom )
208 {
209 return QgsGeometry( std::move( geom ) );
210 }
211 return QgsGeometry();
212}
213
215{
216 std::unique_ptr< QgsMultiLineString > geom = QgsGeometryFactory::fromMultiPolylineXY( multiline );
217 if ( geom )
218 {
219 return QgsGeometry( std::move( geom ) );
220 }
221 return QgsGeometry();
222}
223
225{
226 std::unique_ptr< QgsMultiPolygon > geom = QgsGeometryFactory::fromMultiPolygonXY( multipoly );
227 if ( geom )
228 {
229 return QgsGeometry( std::move( geom ) );
230 }
231 return QgsGeometry();
232}
233
235{
236 if ( rect.isNull() )
237 return QgsGeometry();
238
239 std::unique_ptr< QgsLineString > ext = std::make_unique< QgsLineString >(
240 QVector< double >() << rect.xMinimum()
241 << rect.xMaximum()
242 << rect.xMaximum()
243 << rect.xMinimum()
244 << rect.xMinimum(),
245 QVector< double >() << rect.yMinimum()
246 << rect.yMinimum()
247 << rect.yMaximum()
248 << rect.yMaximum()
249 << rect.yMinimum() );
250 std::unique_ptr< QgsPolygon > polygon = std::make_unique< QgsPolygon >();
251 polygon->setExteriorRing( ext.release() );
252 return QgsGeometry( std::move( polygon ) );
253}
254
256{
257 if ( box.is2d() )
258 {
259 return fromRect( box.toRectangle() );
260 }
261
262 std::unique_ptr< QgsMultiPolygon > multiPolygon = std::make_unique< QgsMultiPolygon >();
263
264 std::unique_ptr< QgsLineString > ext1 = std::make_unique< QgsLineString >(
265 QVector< double >() << box.xMinimum()
266 << box.xMinimum()
267 << box.xMaximum()
268 << box.xMaximum()
269 << box.xMinimum(),
270 QVector< double >() << box.yMinimum()
271 << box.yMaximum()
272 << box.yMaximum()
273 << box.yMinimum()
274 << box.yMinimum(),
275 QVector< double >() << box.zMinimum()
276 << box.zMinimum()
277 << box.zMinimum()
278 << box.zMinimum()
279 << box.zMinimum() );
280 std::unique_ptr< QgsPolygon > polygon1 = std::make_unique< QgsPolygon >( ext1.release() );
281 multiPolygon->addGeometry( polygon1.release() );
282
283 std::unique_ptr< QgsLineString > ext2 = std::make_unique< QgsLineString >(
284 QVector< double >() << box.xMinimum()
285 << box.xMinimum()
286 << box.xMinimum()
287 << box.xMinimum()
288 << box.xMinimum(),
289 QVector< double >() << box.yMinimum()
290 << box.yMaximum()
291 << box.yMaximum()
292 << box.yMinimum()
293 << box.yMinimum(),
294 QVector< double >() << box.zMinimum()
295 << box.zMinimum()
296 << box.zMaximum()
297 << box.zMaximum()
298 << box.zMinimum() );
299 std::unique_ptr< QgsPolygon > polygon2 = std::make_unique< QgsPolygon >( ext2.release() );
300 multiPolygon->addGeometry( polygon2.release() );
301
302 std::unique_ptr< QgsLineString > ext3 = std::make_unique< QgsLineString >(
303 QVector< double >() << box.xMinimum()
304 << box.xMaximum()
305 << box.xMaximum()
306 << box.xMinimum()
307 << box.xMinimum(),
308 QVector< double >() << box.yMinimum()
309 << box.yMinimum()
310 << box.yMinimum()
311 << box.yMinimum()
312 << box.yMinimum(),
313 QVector< double >() << box.zMinimum()
314 << box.zMinimum()
315 << box.zMaximum()
316 << box.zMaximum()
317 << box.zMinimum() );
318 std::unique_ptr< QgsPolygon > polygon3 = std::make_unique< QgsPolygon >( ext3.release() );
319 multiPolygon->addGeometry( polygon3.release() );
320
321 std::unique_ptr< QgsLineString > ext4 = std::make_unique< QgsLineString >(
322 QVector< double >() << box.xMaximum()
323 << box.xMaximum()
324 << box.xMinimum()
325 << box.xMinimum()
326 << box.xMaximum(),
327 QVector< double >() << box.yMaximum()
328 << box.yMinimum()
329 << box.yMinimum()
330 << box.yMaximum()
331 << box.yMaximum(),
332 QVector< double >() << box.zMaximum()
333 << box.zMaximum()
334 << box.zMaximum()
335 << box.zMaximum()
336 << box.zMaximum() );
337 std::unique_ptr< QgsPolygon > polygon4 = std::make_unique< QgsPolygon >( ext4.release() );
338 multiPolygon->addGeometry( polygon4.release() );
339
340 std::unique_ptr< QgsLineString > ext5 = std::make_unique< QgsLineString >(
341 QVector< double >() << box.xMaximum()
342 << box.xMaximum()
343 << box.xMaximum()
344 << box.xMaximum()
345 << box.xMaximum(),
346 QVector< double >() << box.yMaximum()
347 << box.yMinimum()
348 << box.yMinimum()
349 << box.yMaximum()
350 << box.yMaximum(),
351 QVector< double >() << box.zMaximum()
352 << box.zMaximum()
353 << box.zMinimum()
354 << box.zMinimum()
355 << box.zMaximum() );
356 std::unique_ptr< QgsPolygon > polygon5 = std::make_unique< QgsPolygon >( ext5.release() );
357 multiPolygon->addGeometry( polygon5.release() );
358
359 std::unique_ptr< QgsLineString > ext6 = std::make_unique< QgsLineString >(
360 QVector< double >() << box.xMaximum()
361 << box.xMaximum()
362 << box.xMinimum()
363 << box.xMinimum()
364 << box.xMaximum(),
365 QVector< double >() << box.yMaximum()
366 << box.yMaximum()
367 << box.yMaximum()
368 << box.yMaximum()
369 << box.yMaximum(),
370 QVector< double >() << box.zMaximum()
371 << box.zMinimum()
372 << box.zMinimum()
373 << box.zMaximum()
374 << box.zMaximum() );
375 std::unique_ptr< QgsPolygon > polygon6 = std::make_unique< QgsPolygon >( ext6.release() );
376 multiPolygon->addGeometry( polygon6.release() );
377
378 return QgsGeometry( std::move( multiPolygon ) );
379}
380
381QgsGeometry QgsGeometry::collectGeometry( const QVector< QgsGeometry > &geometries )
382{
383 QgsGeometry collected;
384
385 for ( const QgsGeometry &g : geometries )
386 {
387 if ( collected.isNull() )
388 {
389 collected = g;
390 collected.convertToMultiType();
391 }
392 else
393 {
394 if ( g.isMultipart() )
395 {
396 for ( auto p = g.const_parts_begin(); p != g.const_parts_end(); ++p )
397 {
398 collected.addPart( ( *p )->clone() );
399 }
400 }
401 else
402 {
403 collected.addPart( g );
404 }
405 }
406 }
407 return collected;
408}
409
410QgsGeometry QgsGeometry::createWedgeBuffer( const QgsPoint &center, const double azimuth, const double angularWidth, const double outerRadius, const double innerRadius )
411{
412 if ( std::abs( angularWidth ) >= 360.0 )
413 {
414 std::unique_ptr< QgsCompoundCurve > outerCc = std::make_unique< QgsCompoundCurve >();
415
416 QgsCircle outerCircle = QgsCircle( center, outerRadius );
417 outerCc->addCurve( outerCircle.toCircularString() );
418
419 std::unique_ptr< QgsCurvePolygon > cp = std::make_unique< QgsCurvePolygon >();
420 cp->setExteriorRing( outerCc.release() );
421
422 if ( !qgsDoubleNear( innerRadius, 0.0 ) && innerRadius > 0 )
423 {
424 std::unique_ptr< QgsCompoundCurve > innerCc = std::make_unique< QgsCompoundCurve >();
425
426 QgsCircle innerCircle = QgsCircle( center, innerRadius );
427 innerCc->addCurve( innerCircle.toCircularString() );
428
429 cp->setInteriorRings( { innerCc.release() } );
430 }
431
432 return QgsGeometry( std::move( cp ) );
433 }
434
435 std::unique_ptr< QgsCompoundCurve > wedge = std::make_unique< QgsCompoundCurve >();
436
437 const double startAngle = azimuth - angularWidth * 0.5;
438 const double endAngle = azimuth + angularWidth * 0.5;
439
440 const QgsPoint outerP1 = center.project( outerRadius, startAngle );
441 const QgsPoint outerP2 = center.project( outerRadius, endAngle );
442
443 const bool useShortestArc = angularWidth <= 180.0;
444
445 wedge->addCurve( new QgsCircularString( QgsCircularString::fromTwoPointsAndCenter( outerP1, outerP2, center, useShortestArc ) ) );
446
447 if ( !qgsDoubleNear( innerRadius, 0.0 ) && innerRadius > 0 )
448 {
449 const QgsPoint innerP1 = center.project( innerRadius, startAngle );
450 const QgsPoint innerP2 = center.project( innerRadius, endAngle );
451 wedge->addCurve( new QgsLineString( outerP2, innerP2 ) );
452 wedge->addCurve( new QgsCircularString( QgsCircularString::fromTwoPointsAndCenter( innerP2, innerP1, center, useShortestArc ) ) );
453 wedge->addCurve( new QgsLineString( innerP1, outerP1 ) );
454 }
455 else
456 {
457 wedge->addCurve( new QgsLineString( outerP2, center ) );
458 wedge->addCurve( new QgsLineString( center, outerP1 ) );
459 }
460
461 std::unique_ptr< QgsCurvePolygon > cp = std::make_unique< QgsCurvePolygon >();
462 cp->setExteriorRing( wedge.release() );
463 return QgsGeometry( std::move( cp ) );
464}
465
466void QgsGeometry::fromWkb( unsigned char *wkb, int length )
467{
468 QgsConstWkbPtr ptr( wkb, length );
469 reset( QgsGeometryFactory::geomFromWkb( ptr ) );
470 delete [] wkb;
471}
472
473void QgsGeometry::fromWkb( const QByteArray &wkb )
474{
475 QgsConstWkbPtr ptr( wkb );
476 reset( QgsGeometryFactory::geomFromWkb( ptr ) );
477}
478
480{
481 if ( !d->geometry )
482 {
484 }
485 else
486 {
487 return d->geometry->wkbType();
488 }
489}
490
491
493{
494 if ( !d->geometry )
495 {
497 }
498 return QgsWkbTypes::geometryType( d->geometry->wkbType() );
499}
500
502{
503 if ( !d->geometry )
504 {
505 return true;
506 }
507
508 return d->geometry->isEmpty();
509}
510
512{
513 if ( !d->geometry )
514 {
515 return false;
516 }
517 return QgsWkbTypes::isMultiType( d->geometry->wkbType() );
518}
519QgsPointXY QgsGeometry::closestVertex( const QgsPointXY &point, int &closestVertexIndex, int &previousVertexIndex, int &nextVertexIndex, double &sqrDist ) const
520{
521 if ( !d->geometry )
522 {
523 sqrDist = -1;
524 return QgsPointXY();
525 }
526
527 QgsPoint pt( point );
528 QgsVertexId id;
529
530 QgsPoint vp = QgsGeometryUtils::closestVertex( *( d->geometry ), pt, id );
531 if ( !id.isValid() )
532 {
533 sqrDist = -1;
534 return QgsPointXY();
535 }
536 sqrDist = QgsGeometryUtils::sqrDistance2D( pt, vp );
537
538 QgsVertexId prevVertex;
539 QgsVertexId nextVertex;
540 d->geometry->adjacentVertices( id, prevVertex, nextVertex );
541 closestVertexIndex = vertexNrFromVertexId( id );
542 previousVertexIndex = vertexNrFromVertexId( prevVertex );
543 nextVertexIndex = vertexNrFromVertexId( nextVertex );
544 return QgsPointXY( vp.x(), vp.y() );
545}
546
547double QgsGeometry::distanceToVertex( int vertex ) const
548{
549 if ( !d->geometry )
550 {
551 return -1;
552 }
553
554 QgsVertexId id;
555 if ( !vertexIdFromVertexNr( vertex, id ) )
556 {
557 return -1;
558 }
559
560 return QgsGeometryUtils::distanceToVertex( *( d->geometry ), id );
561}
562
563double QgsGeometry::angleAtVertex( int vertex ) const
564{
565 if ( !d->geometry )
566 {
567 return 0;
568 }
569
570 QgsVertexId v2;
571 if ( !vertexIdFromVertexNr( vertex, v2 ) )
572 {
573 return 0;
574 }
575
576 return d->geometry->vertexAngle( v2 );
577}
578
579void QgsGeometry::adjacentVertices( int atVertex, int &beforeVertex, int &afterVertex ) const
580{
581 if ( !d->geometry )
582 {
583 return;
584 }
585
586 QgsVertexId id;
587 if ( !vertexIdFromVertexNr( atVertex, id ) )
588 {
589 beforeVertex = -1;
590 afterVertex = -1;
591 return;
592 }
593
594 QgsVertexId beforeVertexId, afterVertexId;
595 d->geometry->adjacentVertices( id, beforeVertexId, afterVertexId );
596 beforeVertex = vertexNrFromVertexId( beforeVertexId );
597 afterVertex = vertexNrFromVertexId( afterVertexId );
598}
599
600bool QgsGeometry::moveVertex( double x, double y, int atVertex )
601{
602 if ( !d->geometry )
603 {
604 return false;
605 }
606
607 QgsVertexId id;
608 if ( !vertexIdFromVertexNr( atVertex, id ) )
609 {
610 return false;
611 }
612
613 detach();
614
615 return d->geometry->moveVertex( id, QgsPoint( x, y ) );
616}
617
618bool QgsGeometry::moveVertex( const QgsPoint &p, int atVertex )
619{
620 if ( !d->geometry )
621 {
622 return false;
623 }
624
625 QgsVertexId id;
626 if ( !vertexIdFromVertexNr( atVertex, id ) )
627 {
628 return false;
629 }
630
631 detach();
632
633 return d->geometry->moveVertex( id, p );
634}
635
636bool QgsGeometry::deleteVertex( int atVertex )
637{
638 if ( !d->geometry )
639 {
640 return false;
641 }
642
643 //maintain compatibility with < 2.10 API
645 {
646 detach();
647 //delete geometry instead of point
648 return static_cast< QgsGeometryCollection * >( d->geometry.get() )->removeGeometry( atVertex );
649 }
650
651 //if it is a point, set the geometry to nullptr
652 if ( QgsWkbTypes::flatType( d->geometry->wkbType() ) == Qgis::WkbType::Point )
653 {
654 reset( nullptr );
655 return true;
656 }
657
658 QgsVertexId id;
659 if ( !vertexIdFromVertexNr( atVertex, id ) )
660 {
661 return false;
662 }
663
664 detach();
665
666 return d->geometry->deleteVertex( id );
667}
668
670{
671
672 if ( !d->geometry )
673 return false;
674
675 QgsVertexId id;
676 if ( !vertexIdFromVertexNr( atVertex, id ) )
677 return false;
678
679 detach();
680
681 QgsAbstractGeometry *geom = d->geometry.get();
682
683 // If the geom is a collection, we get the concerned part, otherwise, the part is just the whole geom
684 QgsAbstractGeometry *part = nullptr;
685 QgsGeometryCollection *owningCollection = qgsgeometry_cast<QgsGeometryCollection *>( geom );
686 if ( owningCollection != nullptr )
687 part = owningCollection->geometryN( id.part );
688 else
689 part = geom;
690
691 // If the part is a polygon, we get the concerned ring, otherwise, the ring is just the whole part
692 QgsAbstractGeometry *ring = nullptr;
693 QgsCurvePolygon *owningPolygon = qgsgeometry_cast<QgsCurvePolygon *>( part );
694 if ( owningPolygon != nullptr )
695 ring = ( id.ring == 0 ) ? owningPolygon->exteriorRing() : owningPolygon->interiorRing( id.ring - 1 );
696 else
697 ring = part;
698
699 // If the ring is not a curve, we're probably on a point geometry
700 QgsCurve *curve = qgsgeometry_cast<QgsCurve *>( ring );
701 if ( curve == nullptr )
702 return false;
703
704 bool success = false;
705 QgsCompoundCurve *cpdCurve = qgsgeometry_cast<QgsCompoundCurve *>( curve );
706 if ( cpdCurve != nullptr )
707 {
708 // If the geom is a already compound curve, we convert inplace, and we're done
709 success = cpdCurve->toggleCircularAtVertex( id );
710 }
711 else
712 {
713 // TODO : move this block before the above, so we call toggleCircularAtVertex only in one place
714 // If the geom is a linestring or cirularstring, we create a compound curve
715 std::unique_ptr<QgsCompoundCurve> cpdCurve = std::make_unique<QgsCompoundCurve>();
716 cpdCurve->addCurve( curve->clone() );
717 success = cpdCurve->toggleCircularAtVertex( QgsVertexId( -1, -1, id.vertex ) );
718
719 // In that case, we must also reassign the instances
720 if ( success )
721 {
722 if ( owningPolygon == nullptr && owningCollection == nullptr )
723 {
724 // Standalone linestring
725 reset( std::make_unique<QgsCompoundCurve>( *cpdCurve ) ); // <- REVIEW PLZ
726 }
727 else if ( owningPolygon != nullptr )
728 {
729 // Replace the ring in the owning polygon
730 if ( id.ring == 0 )
731 {
732 owningPolygon->setExteriorRing( cpdCurve.release() );
733 }
734 else
735 {
736 owningPolygon->removeInteriorRing( id.ring - 1 );
737 owningPolygon->addInteriorRing( cpdCurve.release() );
738 }
739 }
740 else if ( owningCollection != nullptr )
741 {
742 // Replace the curve in the owning collection
743 owningCollection->removeGeometry( id.part );
744 owningCollection->insertGeometry( cpdCurve.release(), id.part );
745 }
746 }
747 }
748
749 return success;
750}
751
752bool QgsGeometry::insertVertex( double x, double y, int beforeVertex )
753{
754 if ( !d->geometry )
755 {
756 return false;
757 }
758
759 //maintain compatibility with < 2.10 API
761 {
762 detach();
763 //insert geometry instead of point
764 return static_cast< QgsGeometryCollection * >( d->geometry.get() )->insertGeometry( new QgsPoint( x, y ), beforeVertex );
765 }
766
767 QgsVertexId id;
768 if ( !vertexIdFromVertexNr( beforeVertex, id ) )
769 {
770 return false;
771 }
772
773 detach();
774
775 return d->geometry->insertVertex( id, QgsPoint( x, y ) );
776}
777
778bool QgsGeometry::insertVertex( const QgsPoint &point, int beforeVertex )
779{
780 if ( !d->geometry )
781 {
782 return false;
783 }
784
785 //maintain compatibility with < 2.10 API
787 {
788 detach();
789 //insert geometry instead of point
790 return static_cast< QgsGeometryCollection * >( d->geometry.get() )->insertGeometry( new QgsPoint( point ), beforeVertex );
791 }
792
793 QgsVertexId id;
794 if ( !vertexIdFromVertexNr( beforeVertex, id ) )
795 {
796 return false;
797 }
798
799 detach();
800
801 return d->geometry->insertVertex( id, point );
802}
803
804QgsPoint QgsGeometry::vertexAt( int atVertex ) const
805{
806 if ( !d->geometry )
807 {
808 return QgsPoint();
809 }
810
811 QgsVertexId vId;
812 ( void )vertexIdFromVertexNr( atVertex, vId );
813 if ( vId.vertex < 0 )
814 {
815 return QgsPoint();
816 }
817 return d->geometry->vertexAt( vId );
818}
819
820double QgsGeometry::sqrDistToVertexAt( QgsPointXY &point, int atVertex ) const
821{
822 QgsPointXY vertexPoint = vertexAt( atVertex );
823 return QgsGeometryUtils::sqrDistance2D( QgsPoint( vertexPoint ), QgsPoint( point ) );
824}
825
827{
828 // avoid calling geos for trivial point calculations
829 if ( d->geometry && QgsWkbTypes::flatType( d->geometry->wkbType() ) == Qgis::WkbType::Point )
830 {
831 return QgsGeometry( qgsgeometry_cast< const QgsPoint * >( d->geometry.get() )->clone() );
832 }
833
834 QgsGeos geos( d->geometry.get() );
835 mLastError.clear();
836 QgsGeometry result = geos.closestPoint( other );
837 result.mLastError = mLastError;
838 return result;
839}
840
842{
843 // avoid calling geos for trivial point-to-point line calculations
845 {
846 return QgsGeometry( std::make_unique< QgsLineString >( *qgsgeometry_cast< const QgsPoint * >( d->geometry.get() ), *qgsgeometry_cast< const QgsPoint * >( other.constGet() ) ) );
847 }
848
849 QgsGeos geos( d->geometry.get() );
850 mLastError.clear();
851 QgsGeometry result = geos.shortestLine( other, &mLastError );
852 result.mLastError = mLastError;
853 return result;
854}
855
856double QgsGeometry::closestVertexWithContext( const QgsPointXY &point, int &atVertex ) const
857{
858 if ( !d->geometry )
859 {
860 return -1;
861 }
862
863 QgsVertexId vId;
864 QgsPoint pt( point );
865 QgsPoint closestPoint = QgsGeometryUtils::closestVertex( *( d->geometry ), pt, vId );
866 if ( !vId.isValid() )
867 return -1;
868 atVertex = vertexNrFromVertexId( vId );
869 return QgsGeometryUtils::sqrDistance2D( closestPoint, pt );
870}
871
873 QgsPointXY &minDistPoint,
874 int &nextVertexIndex,
875 int *leftOrRightOfSegment,
876 double epsilon ) const
877{
878 if ( !d->geometry )
879 {
880 return -1;
881 }
882
883 QgsPoint segmentPt;
884 QgsVertexId vertexAfter;
885
886 double sqrDist = d->geometry->closestSegment( QgsPoint( point ), segmentPt, vertexAfter, leftOrRightOfSegment, epsilon );
887 if ( sqrDist < 0 )
888 return -1;
889
890 minDistPoint.setX( segmentPt.x() );
891 minDistPoint.setY( segmentPt.y() );
892 nextVertexIndex = vertexNrFromVertexId( vertexAfter );
893 return sqrDist;
894}
895
896Qgis::GeometryOperationResult QgsGeometry::addRing( const QVector<QgsPointXY> &ring )
897{
898 std::unique_ptr< QgsLineString > ringLine = std::make_unique< QgsLineString >( ring );
899 return addRing( ringLine.release() );
900}
901
903{
904 std::unique_ptr< QgsCurve > r( ring );
905 if ( !d->geometry )
906 {
908 }
909
910 detach();
911
912 return QgsGeometryEditUtils::addRing( d->geometry.get(), std::move( r ) );
913}
914
915Qgis::GeometryOperationResult QgsGeometry::addPart( const QVector<QgsPointXY> &points, Qgis::GeometryType geomType )
916{
918 convertPointList( points, l );
919 return addPart( l, geomType );
920}
921
923{
924 std::unique_ptr< QgsAbstractGeometry > partGeom;
925 if ( points.size() == 1 )
926 {
927 partGeom = std::make_unique< QgsPoint >( points[0] );
928 }
929 else if ( points.size() > 1 )
930 {
931 std::unique_ptr< QgsLineString > ringLine = std::make_unique< QgsLineString >();
932 ringLine->setPoints( points );
933 partGeom = std::move( ringLine );
934 }
935 return addPart( partGeom.release(), geomType );
936}
937
939{
940 std::unique_ptr< QgsAbstractGeometry > p( part );
941 if ( !d->geometry )
942 {
943 switch ( geomType )
944 {
946 reset( std::make_unique< QgsMultiPoint >() );
947 break;
949 reset( std::make_unique< QgsMultiLineString >() );
950 break;
952 reset( std::make_unique< QgsMultiPolygon >() );
953 break;
954 default:
955 reset( nullptr );
957 }
958 }
959 else
960 {
961 detach();
962 }
963
965 return QgsGeometryEditUtils::addPart( d->geometry.get(), std::move( p ) );
966}
967
969{
970 if ( !d->geometry )
971 {
973 }
974 if ( newPart.isNull() || !newPart.d->geometry )
975 {
977 }
978
979 return addPart( newPart.d->geometry->clone() );
980}
981
982QgsGeometry QgsGeometry::removeInteriorRings( double minimumRingArea ) const
983{
984 if ( !d->geometry || type() != Qgis::GeometryType::Polygon )
985 {
986 return QgsGeometry();
987 }
988
989 if ( QgsWkbTypes::isMultiType( d->geometry->wkbType() ) )
990 {
991 const QVector<QgsGeometry> parts = asGeometryCollection();
992 QVector<QgsGeometry> results;
993 results.reserve( parts.count() );
994 for ( const QgsGeometry &part : parts )
995 {
996 QgsGeometry result = part.removeInteriorRings( minimumRingArea );
997 if ( !result.isNull() )
998 results << result;
999 }
1000 if ( results.isEmpty() )
1001 return QgsGeometry();
1002
1003 QgsGeometry first = results.takeAt( 0 );
1004 for ( const QgsGeometry &result : std::as_const( results ) )
1005 {
1006 first.addPart( result );
1007 }
1008 return first;
1009 }
1010 else
1011 {
1012 std::unique_ptr< QgsCurvePolygon > newPoly( static_cast< QgsCurvePolygon * >( d->geometry->clone() ) );
1013 newPoly->removeInteriorRings( minimumRingArea );
1014 return QgsGeometry( std::move( newPoly ) );
1015 }
1016}
1017
1018Qgis::GeometryOperationResult QgsGeometry::translate( double dx, double dy, double dz, double dm )
1019{
1020 if ( !d->geometry )
1021 {
1023 }
1024
1025 detach();
1026
1027 d->geometry->transform( QTransform::fromTranslate( dx, dy ), dz, 1.0, dm );
1029}
1030
1032{
1033 if ( !d->geometry )
1034 {
1036 }
1037
1038 detach();
1039
1040 QTransform t = QTransform::fromTranslate( center.x(), center.y() );
1041 t.rotate( -rotation );
1042 t.translate( -center.x(), -center.y() );
1043 d->geometry->transform( t );
1045}
1046
1047Qgis::GeometryOperationResult QgsGeometry::splitGeometry( const QVector<QgsPointXY> &splitLine, QVector<QgsGeometry> &newGeometries, bool topological, QVector<QgsPointXY> &topologyTestPoints, bool splitFeature )
1048{
1049 QgsPointSequence split, topology;
1050 convertPointList( splitLine, split );
1051 convertPointList( topologyTestPoints, topology );
1052 Qgis::GeometryOperationResult result = splitGeometry( split, newGeometries, topological, topology, splitFeature );
1053 convertPointList( topology, topologyTestPoints );
1054 return result;
1055}
1056Qgis::GeometryOperationResult QgsGeometry::splitGeometry( const QgsPointSequence &splitLine, QVector<QgsGeometry> &newGeometries, bool topological, QgsPointSequence &topologyTestPoints, bool splitFeature, bool skipIntersectionTest )
1057{
1058 if ( !d->geometry )
1059 {
1061 }
1062
1063 QVector<QgsGeometry > newGeoms;
1064 QgsLineString splitLineString( splitLine );
1065
1066 QgsGeos geos( d->geometry.get() );
1067 mLastError.clear();
1068 QgsGeometryEngine::EngineOperationResult result = geos.splitGeometry( splitLineString, newGeoms, topological, topologyTestPoints, &mLastError, skipIntersectionTest );
1069
1070 if ( result == QgsGeometryEngine::Success )
1071 {
1072 if ( splitFeature )
1073 *this = newGeoms.takeAt( 0 );
1074 newGeometries = newGeoms;
1075 }
1076
1077 switch ( result )
1078 {
1093 //default: do not implement default to handle properly all cases
1094 }
1095
1096 // this should never be reached
1097 Q_ASSERT( false );
1099}
1100
1101Qgis::GeometryOperationResult QgsGeometry::splitGeometry( const QgsCurve *curve, QVector<QgsGeometry> &newGeometries, bool preserveCircular, bool topological, QgsPointSequence &topologyTestPoints, bool splitFeature )
1102{
1103 std::unique_ptr<QgsLineString> segmentizedLine( curve->curveToLine() );
1104 QgsPointSequence points;
1105 segmentizedLine->points( points );
1106 Qgis::GeometryOperationResult result = splitGeometry( points, newGeometries, topological, topologyTestPoints, splitFeature );
1107
1109 {
1110 if ( preserveCircular )
1111 {
1112 for ( int i = 0; i < newGeometries.count(); ++i )
1113 newGeometries[i] = newGeometries[i].convertToCurves();
1114 *this = convertToCurves();
1115 }
1116 }
1117
1118 return result;
1119}
1120
1122{
1123 if ( !d->geometry )
1124 {
1126 }
1127
1128 QgsGeos geos( d->geometry.get() );
1130 mLastError.clear();
1131 std::unique_ptr< QgsAbstractGeometry > geom( geos.reshapeGeometry( reshapeLineString, &errorCode, &mLastError ) );
1132 if ( errorCode == QgsGeometryEngine::Success && geom )
1133 {
1134 reset( std::move( geom ) );
1136 }
1137
1138 switch ( errorCode )
1139 {
1150 case QgsGeometryEngine::SplitCannotSplitPoint: // should not happen
1154 }
1155
1156 // should not be reached
1158}
1159
1161{
1162 if ( !d->geometry || !other.d->geometry )
1163 {
1164 return 0;
1165 }
1166
1167 QgsGeos geos( d->geometry.get() );
1168
1169 mLastError.clear();
1170 std::unique_ptr< QgsAbstractGeometry > diffGeom( geos.intersection( other.constGet(), &mLastError ) );
1171 if ( !diffGeom )
1172 {
1173 return 1;
1174 }
1175
1176 reset( std::move( diffGeom ) );
1177 return 0;
1178}
1179
1181{
1182 if ( !d->geometry || other.isNull() )
1183 {
1184 return QgsGeometry();
1185 }
1186
1187 QgsGeos geos( d->geometry.get() );
1188
1189 mLastError.clear();
1190 std::unique_ptr< QgsAbstractGeometry > diffGeom( geos.intersection( other.constGet(), &mLastError ) );
1191 if ( !diffGeom )
1192 {
1193 QgsGeometry result;
1194 result.mLastError = mLastError;
1195 return result;
1196 }
1197
1198 return QgsGeometry( diffGeom.release() );
1199}
1200
1202{
1203 if ( d->geometry )
1204 {
1205 return d->geometry->boundingBox();
1206 }
1207 return QgsRectangle();
1208}
1209
1211{
1212 if ( d->geometry )
1213 {
1214 return d->geometry->boundingBox3D();
1215 }
1216 return QgsBox3D();
1217}
1218
1219
1220QgsGeometry QgsGeometry::orientedMinimumBoundingBox( double &area, double &angle, double &width, double &height ) const
1221{
1222 mLastError.clear();
1223 QgsInternalGeometryEngine engine( *this );
1224 const QgsGeometry res = engine.orientedMinimumBoundingBox( area, angle, width, height );
1225 if ( res.isNull() )
1226 mLastError = engine.lastError();
1227 return res;
1228}
1229
1231{
1232 double area, angle, width, height;
1233 return orientedMinimumBoundingBox( area, angle, width, height );
1234}
1235
1236static QgsCircle __recMinimalEnclosingCircle( QgsMultiPointXY points, QgsMultiPointXY boundary )
1237{
1238 auto l_boundary = boundary.length();
1239 QgsCircle circ_mec;
1240 if ( ( points.length() == 0 ) || ( l_boundary == 3 ) )
1241 {
1242 switch ( l_boundary )
1243 {
1244 case 0:
1245 circ_mec = QgsCircle();
1246 break;
1247 case 1:
1248 circ_mec = QgsCircle( QgsPoint( boundary.last() ), 0 );
1249 boundary.pop_back();
1250 break;
1251 case 2:
1252 {
1253 QgsPointXY p1 = boundary.last();
1254 boundary.pop_back();
1255 QgsPointXY p2 = boundary.last();
1256 boundary.pop_back();
1257 circ_mec = QgsCircle::from2Points( QgsPoint( p1 ), QgsPoint( p2 ) );
1258 }
1259 break;
1260 default:
1261 QgsPoint p1( boundary.at( 0 ) );
1262 QgsPoint p2( boundary.at( 1 ) );
1263 QgsPoint p3( boundary.at( 2 ) );
1264 circ_mec = QgsCircle::minimalCircleFrom3Points( p1, p2, p3 );
1265 break;
1266 }
1267 return circ_mec;
1268 }
1269 else
1270 {
1271 QgsPointXY pxy = points.last();
1272 points.pop_back();
1273 circ_mec = __recMinimalEnclosingCircle( points, boundary );
1274 QgsPoint p( pxy );
1275 if ( !circ_mec.contains( p ) )
1276 {
1277 boundary.append( pxy );
1278 circ_mec = __recMinimalEnclosingCircle( points, boundary );
1279 }
1280 }
1281 return circ_mec;
1282}
1283
1284QgsGeometry QgsGeometry::minimalEnclosingCircle( QgsPointXY &center, double &radius, unsigned int segments ) const
1285{
1286 center = QgsPointXY();
1287 radius = 0;
1288
1289 if ( isEmpty() )
1290 {
1291 return QgsGeometry();
1292 }
1293
1294 /* optimization */
1295 QgsGeometry hull = convexHull();
1296 if ( hull.isNull() )
1297 return QgsGeometry();
1298
1299 QgsMultiPointXY P = hull.convertToPoint( true ).asMultiPoint();
1301
1302 QgsCircle circ = __recMinimalEnclosingCircle( P, R );
1303 center = QgsPointXY( circ.center() );
1304 radius = circ.radius();
1305 QgsGeometry geom;
1306 geom.set( circ.toPolygon( segments ) );
1307 return geom;
1308
1309}
1310
1312{
1313 QgsPointXY center;
1314 double radius;
1315 return minimalEnclosingCircle( center, radius, segments );
1316
1317}
1318
1319QgsGeometry QgsGeometry::orthogonalize( double tolerance, int maxIterations, double angleThreshold ) const
1320{
1321 QgsInternalGeometryEngine engine( *this );
1322
1323 return engine.orthogonalize( tolerance, maxIterations, angleThreshold );
1324}
1325
1326QgsGeometry QgsGeometry::triangularWaves( double wavelength, double amplitude, bool strictWavelength ) const
1327{
1328 QgsInternalGeometryEngine engine( *this );
1329 return engine.triangularWaves( wavelength, amplitude, strictWavelength );
1330}
1331
1332QgsGeometry QgsGeometry::triangularWavesRandomized( double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed ) const
1333{
1334 QgsInternalGeometryEngine engine( *this );
1335 return engine.triangularWavesRandomized( minimumWavelength, maximumWavelength, minimumAmplitude, maximumAmplitude, seed );
1336}
1337
1338QgsGeometry QgsGeometry::squareWaves( double wavelength, double amplitude, bool strictWavelength ) const
1339{
1340 QgsInternalGeometryEngine engine( *this );
1341 return engine.squareWaves( wavelength, amplitude, strictWavelength );
1342}
1343
1344QgsGeometry QgsGeometry::squareWavesRandomized( double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed ) const
1345{
1346 QgsInternalGeometryEngine engine( *this );
1347 return engine.squareWavesRandomized( minimumWavelength, maximumWavelength, minimumAmplitude, maximumAmplitude, seed );
1348}
1349
1350QgsGeometry QgsGeometry::roundWaves( double wavelength, double amplitude, bool strictWavelength ) const
1351{
1352 QgsInternalGeometryEngine engine( *this );
1353 return engine.roundWaves( wavelength, amplitude, strictWavelength );
1354}
1355
1356QgsGeometry QgsGeometry::roundWavesRandomized( double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed ) const
1357{
1358 QgsInternalGeometryEngine engine( *this );
1359 return engine.roundWavesRandomized( minimumWavelength, maximumWavelength, minimumAmplitude, maximumAmplitude, seed );
1360}
1361
1362QgsGeometry QgsGeometry::applyDashPattern( const QVector<double> &pattern, Qgis::DashPatternLineEndingRule startRule, Qgis::DashPatternLineEndingRule endRule, Qgis::DashPatternSizeAdjustment adjustment, double patternOffset ) const
1363{
1364 QgsInternalGeometryEngine engine( *this );
1365 return engine.applyDashPattern( pattern, startRule, endRule, adjustment, patternOffset );
1366}
1367
1368QgsGeometry QgsGeometry::snappedToGrid( double hSpacing, double vSpacing, double dSpacing, double mSpacing ) const
1369{
1370 if ( !d->geometry )
1371 {
1372 return QgsGeometry();
1373 }
1374 return QgsGeometry( d->geometry->snappedToGrid( hSpacing, vSpacing, dSpacing, mSpacing ) );
1375}
1376
1377bool QgsGeometry::removeDuplicateNodes( double epsilon, bool useZValues )
1378{
1379 if ( !d->geometry )
1380 return false;
1381
1382 detach();
1383 return d->geometry->removeDuplicateNodes( epsilon, useZValues );
1384}
1385
1387{
1388 // fast case, check bounding boxes
1389 if ( !boundingBoxIntersects( r ) )
1390 return false;
1391
1392 const Qgis::WkbType flatType { QgsWkbTypes::flatType( d->geometry->wkbType() ) };
1393 // optimise trivial case for point intersections -- the bounding box test has already given us the answer
1394 if ( flatType == Qgis::WkbType::Point )
1395 {
1396 return true;
1397 }
1398
1399 // Workaround for issue issue GH #51429
1400 // in case of multi polygon, intersection with an empty rect fails
1401 if ( flatType == Qgis::WkbType::MultiPolygon && r.isEmpty() )
1402 {
1403 const QgsPointXY center { r.xMinimum(), r.yMinimum() };
1404 return contains( QgsGeometry::fromPointXY( center ) );
1405 }
1406
1407 QgsGeometry g = fromRect( r );
1408 return intersects( g );
1409}
1410
1411bool QgsGeometry::intersects( const QgsGeometry &geometry ) const
1412{
1413 if ( !d->geometry || geometry.isNull() )
1414 {
1415 return false;
1416 }
1417
1418 QgsGeos geos( d->geometry.get() );
1419 mLastError.clear();
1420 return geos.intersects( geometry.d->geometry.get(), &mLastError );
1421}
1422
1424{
1425 if ( !d->geometry )
1426 {
1427 return false;
1428 }
1429
1430 return d->geometry->boundingBoxIntersects( rectangle );
1431}
1432
1434{
1435 if ( !d->geometry || geometry.isNull() )
1436 {
1437 return false;
1438 }
1439
1440 return d->geometry->boundingBoxIntersects( geometry.constGet()->boundingBox() );
1441}
1442
1443bool QgsGeometry::contains( const QgsPointXY *p ) const
1444{
1445 if ( !d->geometry || !p )
1446 {
1447 return false;
1448 }
1449
1450 QgsPoint pt( p->x(), p->y() );
1451 QgsGeos geos( d->geometry.get() );
1452 mLastError.clear();
1453 return geos.contains( &pt, &mLastError );
1454}
1455
1456bool QgsGeometry::contains( const QgsGeometry &geometry ) const
1457{
1458 if ( !d->geometry || geometry.isNull() )
1459 {
1460 return false;
1461 }
1462
1463 QgsGeos geos( d->geometry.get() );
1464 mLastError.clear();
1465 return geos.contains( geometry.d->geometry.get(), &mLastError );
1466}
1467
1468bool QgsGeometry::disjoint( const QgsGeometry &geometry ) const
1469{
1470 if ( !d->geometry || geometry.isNull() )
1471 {
1472 return false;
1473 }
1474
1475 QgsGeos geos( d->geometry.get() );
1476 mLastError.clear();
1477 return geos.disjoint( geometry.d->geometry.get(), &mLastError );
1478}
1479
1480bool QgsGeometry::equals( const QgsGeometry &geometry ) const
1481{
1482 if ( !d->geometry || geometry.isNull() )
1483 {
1484 return false;
1485 }
1486
1487 // fast check - are they shared copies of the same underlying geometry?
1488 if ( d == geometry.d )
1489 return true;
1490
1491 // fast check - distinct geometry types?
1492 if ( type() != geometry.type() )
1493 return false;
1494
1495 // slower check - actually test the geometries
1496 return *d->geometry == *geometry.d->geometry;
1497}
1498
1499bool QgsGeometry::touches( const QgsGeometry &geometry ) const
1500{
1501 if ( !d->geometry || geometry.isNull() )
1502 {
1503 return false;
1504 }
1505
1506 QgsGeos geos( d->geometry.get() );
1507 mLastError.clear();
1508 return geos.touches( geometry.d->geometry.get(), &mLastError );
1509}
1510
1511bool QgsGeometry::overlaps( const QgsGeometry &geometry ) const
1512{
1513 if ( !d->geometry || geometry.isNull() )
1514 {
1515 return false;
1516 }
1517
1518 QgsGeos geos( d->geometry.get() );
1519 mLastError.clear();
1520 return geos.overlaps( geometry.d->geometry.get(), &mLastError );
1521}
1522
1523bool QgsGeometry::within( const QgsGeometry &geometry ) const
1524{
1525 if ( !d->geometry || geometry.isNull() )
1526 {
1527 return false;
1528 }
1529
1530 QgsGeos geos( d->geometry.get() );
1531 mLastError.clear();
1532 return geos.within( geometry.d->geometry.get(), &mLastError );
1533}
1534
1535bool QgsGeometry::crosses( const QgsGeometry &geometry ) const
1536{
1537 if ( !d->geometry || geometry.isNull() )
1538 {
1539 return false;
1540 }
1541
1542 QgsGeos geos( d->geometry.get() );
1543 mLastError.clear();
1544 return geos.crosses( geometry.d->geometry.get(), &mLastError );
1545}
1546
1547QString QgsGeometry::asWkt( int precision ) const
1548{
1549 if ( !d->geometry )
1550 {
1551 return QString();
1552 }
1553 return d->geometry->asWkt( precision );
1554}
1555
1556QString QgsGeometry::asJson( int precision ) const
1557{
1558 return QString::fromStdString( asJsonObject( precision ).dump() );
1559}
1560
1562{
1563 if ( !d->geometry )
1564 {
1565 return nullptr;
1566 }
1567 return d->geometry->asJsonObject( precision );
1568
1569}
1570
1571QVector<QgsGeometry> QgsGeometry::coerceToType( const Qgis::WkbType type, double defaultZ, double defaultM ) const
1572{
1573 QVector< QgsGeometry > res;
1574 if ( isNull() )
1575 return res;
1576
1577 if ( wkbType() == type || type == Qgis::WkbType::Unknown )
1578 {
1579 res << *this;
1580 return res;
1581 }
1582
1584 {
1585 return res;
1586 }
1587
1588 QgsGeometry newGeom = *this;
1589
1590 // Curved -> straight
1592 {
1593 newGeom = QgsGeometry( d->geometry.get()->segmentize() );
1594 }
1595
1596 // polygon -> line
1598 newGeom.type() == Qgis::GeometryType::Polygon )
1599 {
1600 // boundary gives us a (multi)line string of exterior + interior rings
1601 newGeom = QgsGeometry( newGeom.constGet()->boundary() );
1602 }
1603 // line -> polygon
1605 newGeom.type() == Qgis::GeometryType::Line )
1606 {
1607 std::unique_ptr< QgsGeometryCollection > gc( QgsGeometryFactory::createCollectionOfType( type ) );
1608 const QgsGeometry source = newGeom;
1609 for ( auto part = source.const_parts_begin(); part != source.const_parts_end(); ++part )
1610 {
1611 std::unique_ptr< QgsAbstractGeometry > exterior( ( *part )->clone() );
1612 if ( QgsCurve *curve = qgsgeometry_cast< QgsCurve * >( exterior.get() ) )
1613 {
1615 {
1616 std::unique_ptr< QgsCurvePolygon > cp = std::make_unique< QgsCurvePolygon >();
1617 cp->setExteriorRing( curve );
1618 exterior.release();
1619 gc->addGeometry( cp.release() );
1620 }
1621 else
1622 {
1623 std::unique_ptr< QgsPolygon > p = std::make_unique< QgsPolygon >();
1624 p->setExteriorRing( qgsgeometry_cast< QgsLineString * >( curve ) );
1625 exterior.release();
1626 gc->addGeometry( p.release() );
1627 }
1628 }
1629 }
1630 newGeom = QgsGeometry( std::move( gc ) );
1631 }
1632
1633 // line/polygon -> points
1635 ( newGeom.type() == Qgis::GeometryType::Line ||
1636 newGeom.type() == Qgis::GeometryType::Polygon ) )
1637 {
1638 // lines/polygons to a point layer, extract all vertices
1639 std::unique_ptr< QgsMultiPoint > mp = std::make_unique< QgsMultiPoint >();
1640 const QgsGeometry source = newGeom;
1641 QSet< QgsPoint > added;
1642 for ( auto vertex = source.vertices_begin(); vertex != source.vertices_end(); ++vertex )
1643 {
1644 if ( added.contains( *vertex ) )
1645 continue; // avoid duplicate points, e.g. start/end of rings
1646 mp->addGeometry( ( *vertex ).clone() );
1647 added.insert( *vertex );
1648 }
1649 newGeom = QgsGeometry( std::move( mp ) );
1650 }
1651
1652 // Single -> multi
1653 if ( QgsWkbTypes::isMultiType( type ) && ! newGeom.isMultipart( ) )
1654 {
1655 newGeom.convertToMultiType();
1656 }
1657 // Drop Z/M
1658 if ( newGeom.constGet()->is3D() && ! QgsWkbTypes::hasZ( type ) )
1659 {
1660 newGeom.get()->dropZValue();
1661 }
1662 if ( newGeom.constGet()->isMeasure() && ! QgsWkbTypes::hasM( type ) )
1663 {
1664 newGeom.get()->dropMValue();
1665 }
1666 // Add Z/M back, set to 0
1667 if ( ! newGeom.constGet()->is3D() && QgsWkbTypes::hasZ( type ) )
1668 {
1669 newGeom.get()->addZValue( defaultZ );
1670 }
1671 if ( ! newGeom.constGet()->isMeasure() && QgsWkbTypes::hasM( type ) )
1672 {
1673 newGeom.get()->addMValue( defaultM );
1674 }
1675
1676 // Straight -> curve
1678 {
1679 newGeom.convertToCurvedMultiType();
1680 }
1681
1682 // Multi -> single
1683 if ( ! QgsWkbTypes::isMultiType( type ) && newGeom.isMultipart( ) )
1684 {
1685 const QgsGeometryCollection *parts( static_cast< const QgsGeometryCollection * >( newGeom.constGet() ) );
1686 res.reserve( parts->partCount() );
1687 for ( int i = 0; i < parts->partCount( ); i++ )
1688 {
1689 res << QgsGeometry( parts->geometryN( i )->clone() );
1690 }
1691 }
1692 else
1693 {
1694 res << newGeom;
1695 }
1696 return res;
1697}
1698
1699QgsGeometry QgsGeometry::convertToType( Qgis::GeometryType destType, bool destMultipart ) const
1700{
1701 switch ( destType )
1702 {
1704 return convertToPoint( destMultipart );
1705
1707 return convertToLine( destMultipart );
1708
1710 return convertToPolygon( destMultipart );
1711
1712 default:
1713 return QgsGeometry();
1714 }
1715}
1716
1718{
1719 if ( !d->geometry )
1720 {
1721 return false;
1722 }
1723
1724 if ( isMultipart() ) //already multitype, no need to convert
1725 {
1726 return true;
1727 }
1728
1729 std::unique_ptr< QgsAbstractGeometry >geom = QgsGeometryFactory::geomFromWkbType( QgsWkbTypes::multiType( d->geometry->wkbType() ) );
1730 QgsGeometryCollection *multiGeom = qgsgeometry_cast<QgsGeometryCollection *>( geom.get() );
1731 if ( !multiGeom )
1732 {
1733 return false;
1734 }
1735
1736 //try to avoid cloning existing geometry whenever we can
1737
1738 //want to see a magic trick?... gather round kiddies...
1739 detach(); // maybe a clone, hopefully not if we're the only ref to the private data
1740 // now we cheat a bit and steal the private geometry and add it direct to the multigeom
1741 // we can do this because we're the only ref to this geometry, guaranteed by the detach call above
1742 multiGeom->addGeometry( d->geometry.release() );
1743 // and replace it with the multi geometry.
1744 // TADA! a clone free conversion in some cases
1745 d->geometry = std::move( geom );
1746 return true;
1747}
1748
1750{
1751 if ( !d->geometry )
1752 {
1753 return false;
1754 }
1755
1756 switch ( QgsWkbTypes::flatType( d->geometry->wkbType() ) )
1757 {
1762 {
1763 return true;
1764 }
1765 default:
1766 break;
1767 }
1768
1769 std::unique_ptr< QgsAbstractGeometry >geom = QgsGeometryFactory::geomFromWkbType( QgsWkbTypes::curveType( QgsWkbTypes::multiType( d->geometry->wkbType() ) ) );
1770 QgsGeometryCollection *multiGeom = qgsgeometry_cast<QgsGeometryCollection *>( geom.get() );
1771 if ( !multiGeom )
1772 {
1773 return false;
1774 }
1775
1776 QgsGeometryCollection *sourceMultiGeom = qgsgeometry_cast<QgsGeometryCollection *>( d->geometry.get() );
1777 if ( sourceMultiGeom )
1778 {
1779 for ( int i = 0; i < sourceMultiGeom->numGeometries(); ++i )
1780 {
1781 if ( !multiGeom->addGeometry( sourceMultiGeom->geometryN( i )->clone() ) )
1782 return false;
1783 }
1784 }
1785 else
1786 {
1787 if ( !multiGeom->addGeometry( d->geometry->clone() ) )
1788 return false;
1789 }
1790
1791 reset( std::move( geom ) );
1792 return true;
1793}
1794
1796{
1797 if ( !d->geometry )
1798 {
1799 return false;
1800 }
1801
1802 if ( !isMultipart() ) //already single part, no need to convert
1803 {
1804 return true;
1805 }
1806
1807 QgsGeometryCollection *multiGeom = qgsgeometry_cast<QgsGeometryCollection *>( d->geometry.get() );
1808 if ( !multiGeom || multiGeom->partCount() < 1 )
1809 return false;
1810
1811 std::unique_ptr< QgsAbstractGeometry > firstPart( multiGeom->geometryN( 0 )->clone() );
1812 reset( std::move( firstPart ) );
1813 return true;
1814}
1815
1816
1818{
1819 const QgsGeometryCollection *origGeom = qgsgeometry_cast<const QgsGeometryCollection *>( constGet() );
1820 if ( !origGeom )
1821 return false;
1822
1823 std::unique_ptr<QgsGeometryCollection> resGeom;
1824 switch ( geomType )
1825 {
1827 resGeom = std::make_unique<QgsMultiPoint>();
1828 break;
1830 resGeom = std::make_unique<QgsMultiLineString>();
1831 break;
1833 resGeom = std::make_unique<QgsMultiPolygon>();
1834 break;
1835 default:
1836 break;
1837 }
1838 if ( !resGeom )
1839 return false;
1840
1841 resGeom->reserve( origGeom->numGeometries() );
1842 for ( int i = 0; i < origGeom->numGeometries(); ++i )
1843 {
1844 const QgsAbstractGeometry *g = origGeom->geometryN( i );
1845 if ( QgsWkbTypes::geometryType( g->wkbType() ) == geomType )
1846 resGeom->addGeometry( g->clone() );
1847 }
1848
1849 set( resGeom.release() );
1850 return true;
1851}
1852
1853
1855{
1856 if ( !d->geometry )
1857 {
1858 return QgsPointXY();
1859 }
1860 if ( QgsPoint *pt = qgsgeometry_cast<QgsPoint *>( d->geometry->simplifiedTypeRef() ) )
1861 {
1862 return QgsPointXY( pt->x(), pt->y() );
1863 }
1864 else
1865 {
1866 return QgsPointXY();
1867 }
1868}
1869
1871{
1872 QgsPolylineXY polyLine;
1873 if ( !d->geometry )
1874 {
1875 return polyLine;
1876 }
1877
1878 bool doSegmentation = ( QgsWkbTypes::flatType( d->geometry->wkbType() ) == Qgis::WkbType::CompoundCurve
1880 std::unique_ptr< QgsLineString > segmentizedLine;
1881 QgsLineString *line = nullptr;
1882 if ( doSegmentation )
1883 {
1884 QgsCurve *curve = qgsgeometry_cast<QgsCurve *>( d->geometry.get() );
1885 if ( !curve )
1886 {
1887 return polyLine;
1888 }
1889 segmentizedLine.reset( curve->curveToLine() );
1890 line = segmentizedLine.get();
1891 }
1892 else
1893 {
1894 line = qgsgeometry_cast<QgsLineString *>( d->geometry.get() );
1895 if ( !line )
1896 {
1897 return polyLine;
1898 }
1899 }
1900
1901 int nVertices = line->numPoints();
1902 polyLine.resize( nVertices );
1903 QgsPointXY *data = polyLine.data();
1904 const double *xData = line->xData();
1905 const double *yData = line->yData();
1906 for ( int i = 0; i < nVertices; ++i )
1907 {
1908 data->setX( *xData++ );
1909 data->setY( *yData++ );
1910 data++;
1911 }
1912
1913 return polyLine;
1914}
1915
1917{
1918 if ( !d->geometry )
1919 return QgsPolygonXY();
1920
1921 bool doSegmentation = ( QgsWkbTypes::flatType( d->geometry->wkbType() ) == Qgis::WkbType::CurvePolygon );
1922
1923 QgsPolygon *p = nullptr;
1924 std::unique_ptr< QgsPolygon > segmentized;
1925 if ( doSegmentation )
1926 {
1927 QgsCurvePolygon *curvePoly = qgsgeometry_cast<QgsCurvePolygon *>( d->geometry.get() );
1928 if ( !curvePoly )
1929 {
1930 return QgsPolygonXY();
1931 }
1932 segmentized.reset( curvePoly->toPolygon() );
1933 p = segmentized.get();
1934 }
1935 else
1936 {
1937 p = qgsgeometry_cast<QgsPolygon *>( d->geometry.get() );
1938 }
1939
1940 if ( !p )
1941 {
1942 return QgsPolygonXY();
1943 }
1944
1945 QgsPolygonXY polygon;
1946 convertPolygon( *p, polygon );
1947
1948 return polygon;
1949}
1950
1952{
1953 if ( !d->geometry || QgsWkbTypes::flatType( d->geometry->wkbType() ) != Qgis::WkbType::MultiPoint )
1954 {
1955 return QgsMultiPointXY();
1956 }
1957
1958 const QgsMultiPoint *mp = qgsgeometry_cast<QgsMultiPoint *>( d->geometry.get() );
1959 if ( !mp )
1960 {
1961 return QgsMultiPointXY();
1962 }
1963
1964 int nPoints = mp->numGeometries();
1965 QgsMultiPointXY multiPoint( nPoints );
1966 for ( int i = 0; i < nPoints; ++i )
1967 {
1968 const QgsPoint *pt = mp->pointN( i );
1969 multiPoint[i].setX( pt->x() );
1970 multiPoint[i].setY( pt->y() );
1971 }
1972 return multiPoint;
1973}
1974
1976{
1977 if ( !d->geometry )
1978 {
1979 return QgsMultiPolylineXY();
1980 }
1981
1982 QgsGeometryCollection *geomCollection = qgsgeometry_cast<QgsGeometryCollection *>( d->geometry.get() );
1983 if ( !geomCollection )
1984 {
1985 return QgsMultiPolylineXY();
1986 }
1987
1988 int nLines = geomCollection->numGeometries();
1989 if ( nLines < 1 )
1990 {
1991 return QgsMultiPolylineXY();
1992 }
1993
1995 mpl.reserve( nLines );
1996 for ( int i = 0; i < nLines; ++i )
1997 {
1998 const QgsLineString *line = qgsgeometry_cast<const QgsLineString *>( geomCollection->geometryN( i ) );
1999 std::unique_ptr< QgsLineString > segmentized;
2000 if ( !line )
2001 {
2002 const QgsCurve *curve = qgsgeometry_cast<const QgsCurve *>( geomCollection->geometryN( i ) );
2003 if ( !curve )
2004 {
2005 continue;
2006 }
2007 segmentized.reset( curve->curveToLine() );
2008 line = segmentized.get();
2009 }
2010
2011 QgsPolylineXY polyLine;
2012 int nVertices = line->numPoints();
2013 polyLine.resize( nVertices );
2014 QgsPointXY *data = polyLine.data();
2015 const double *xData = line->xData();
2016 const double *yData = line->yData();
2017 for ( int i = 0; i < nVertices; ++i )
2018 {
2019 data->setX( *xData++ );
2020 data->setY( *yData++ );
2021 data++;
2022 }
2023 mpl.append( polyLine );
2024 }
2025 return mpl;
2026}
2027
2029{
2030 if ( !d->geometry )
2031 {
2032 return QgsMultiPolygonXY();
2033 }
2034
2035 const QgsGeometryCollection *geomCollection = qgsgeometry_cast<const QgsGeometryCollection *>( d->geometry.get() );
2036 if ( !geomCollection )
2037 {
2038 return QgsMultiPolygonXY();
2039 }
2040
2041 const int nPolygons = geomCollection->numGeometries();
2042 if ( nPolygons < 1 )
2043 {
2044 return QgsMultiPolygonXY();
2045 }
2046
2048 mp.reserve( nPolygons );
2049 for ( int i = 0; i < nPolygons; ++i )
2050 {
2051 const QgsPolygon *polygon = qgsgeometry_cast<const QgsPolygon *>( geomCollection->geometryN( i ) );
2052 if ( !polygon )
2053 {
2054 const QgsCurvePolygon *cPolygon = qgsgeometry_cast<const QgsCurvePolygon *>( geomCollection->geometryN( i ) );
2055 if ( cPolygon )
2056 {
2057 polygon = cPolygon->toPolygon();
2058 }
2059 else
2060 {
2061 continue;
2062 }
2063 }
2064
2065 QgsPolygonXY poly;
2066 convertPolygon( *polygon, poly );
2067 mp.push_back( poly );
2068 }
2069 return mp;
2070}
2071
2072double QgsGeometry::area() const
2073{
2074 if ( !d->geometry )
2075 {
2076 return -1.0;
2077 }
2078
2079 return d->geometry->area();
2080}
2081
2083{
2084 if ( !d->geometry )
2085 {
2086 return -1.0;
2087 }
2088
2089 switch ( QgsWkbTypes::geometryType( d->geometry->wkbType() ) )
2090 {
2092 return 0.0;
2093
2095 return d->geometry->length();
2096
2098 return d->geometry->perimeter();
2099
2102 return d->geometry->length();
2103 }
2104 return -1;
2105}
2106
2107double QgsGeometry::distance( const QgsGeometry &geom ) const
2108{
2109 if ( !d->geometry || !geom.d->geometry )
2110 {
2111 return -1.0;
2112 }
2113
2114 // avoid calling geos for trivial point-to-point distance calculations
2116 {
2117 return qgsgeometry_cast< const QgsPoint * >( d->geometry.get() )->distance( *qgsgeometry_cast< const QgsPoint * >( geom.constGet() ) );
2118 }
2119
2120 QgsGeos g( d->geometry.get() );
2121 mLastError.clear();
2122 return g.distance( geom.d->geometry.get(), &mLastError );
2123}
2124
2126{
2127 if ( !d->geometry || !geom.d->geometry )
2128 {
2129 return -1.0;
2130 }
2131
2132 QgsGeos g( d->geometry.get() );
2133 mLastError.clear();
2134 return g.hausdorffDistance( geom.d->geometry.get(), &mLastError );
2135}
2136
2137double QgsGeometry::hausdorffDistanceDensify( const QgsGeometry &geom, double densifyFraction ) const
2138{
2139 if ( !d->geometry || !geom.d->geometry )
2140 {
2141 return -1.0;
2142 }
2143
2144 QgsGeos g( d->geometry.get() );
2145 mLastError.clear();
2146 return g.hausdorffDistanceDensify( geom.d->geometry.get(), densifyFraction, &mLastError );
2147}
2148
2149
2151{
2152 if ( !d->geometry || !geom.d->geometry )
2153 {
2154 return -1.0;
2155 }
2156
2157 QgsGeos g( d->geometry.get() );
2158 mLastError.clear();
2159 return g.frechetDistance( geom.d->geometry.get(), &mLastError );
2160}
2161
2162double QgsGeometry::frechetDistanceDensify( const QgsGeometry &geom, double densifyFraction ) const
2163{
2164 if ( !d->geometry || !geom.d->geometry )
2165 {
2166 return -1.0;
2167 }
2168
2169 QgsGeos g( d->geometry.get() );
2170 mLastError.clear();
2171 return g.frechetDistanceDensify( geom.d->geometry.get(), densifyFraction, &mLastError );
2172}
2173
2175{
2176 if ( !d->geometry || d->geometry.get()->isEmpty() )
2178 return d->geometry->vertices_begin();
2179}
2180
2182{
2183 if ( !d->geometry || d->geometry.get()->isEmpty() )
2185 return d->geometry->vertices_end();
2186}
2187
2189{
2190 if ( !d->geometry || d->geometry.get()->isEmpty() )
2191 return QgsVertexIterator();
2192 return QgsVertexIterator( d->geometry.get() );
2193}
2194
2196{
2197 if ( !d->geometry )
2199
2200 detach();
2201 return d->geometry->parts_begin();
2202}
2203
2205{
2206 if ( !d->geometry )
2208 return d->geometry->parts_end();
2209}
2210
2212{
2213 if ( !d->geometry )
2215 return d->geometry->const_parts_begin();
2216}
2217
2219{
2220 if ( !d->geometry )
2222 return d->geometry->const_parts_end();
2223}
2224
2226{
2227 if ( !d->geometry )
2228 return QgsGeometryPartIterator();
2229
2230 detach();
2231 return QgsGeometryPartIterator( d->geometry.get() );
2232}
2233
2235{
2236 if ( !d->geometry )
2238
2239 return QgsGeometryConstPartIterator( d->geometry.get() );
2240}
2241
2242QgsGeometry QgsGeometry::buffer( double distance, int segments ) const
2243{
2244 if ( !d->geometry )
2245 {
2246 return QgsGeometry();
2247 }
2248
2249 QgsGeos g( d->geometry.get() );
2250 mLastError.clear();
2251 std::unique_ptr<QgsAbstractGeometry> geom( g.buffer( distance, segments, &mLastError ) );
2252 if ( !geom )
2253 {
2254 QgsGeometry result;
2255 result.mLastError = mLastError;
2256 return result;
2257 }
2258 return QgsGeometry( std::move( geom ) );
2259}
2260
2261QgsGeometry QgsGeometry::buffer( double distance, int segments, Qgis::EndCapStyle endCapStyle, Qgis::JoinStyle joinStyle, double miterLimit ) const
2262{
2263 if ( !d->geometry )
2264 {
2265 return QgsGeometry();
2266 }
2267
2268 QgsGeos g( d->geometry.get() );
2269 mLastError.clear();
2270 QgsAbstractGeometry *geom = g.buffer( distance, segments, endCapStyle, joinStyle, miterLimit, &mLastError );
2271 if ( !geom )
2272 {
2273 QgsGeometry result;
2274 result.mLastError = mLastError;
2275 return result;
2276 }
2277 return QgsGeometry( geom );
2278}
2279
2280QgsGeometry QgsGeometry::offsetCurve( double distance, int segments, Qgis::JoinStyle joinStyle, double miterLimit ) const
2281{
2282 if ( !d->geometry || type() != Qgis::GeometryType::Line )
2283 {
2284 return QgsGeometry();
2285 }
2286
2287 if ( QgsWkbTypes::isMultiType( d->geometry->wkbType() ) )
2288 {
2289 const QVector<QgsGeometry> parts = asGeometryCollection();
2290 QVector<QgsGeometry> results;
2291 results.reserve( parts.count() );
2292 for ( const QgsGeometry &part : parts )
2293 {
2294 QgsGeometry result = part.offsetCurve( distance, segments, joinStyle, miterLimit );
2295 if ( !result.isNull() )
2296 results << result;
2297 }
2298 if ( results.isEmpty() )
2299 return QgsGeometry();
2300
2301 QgsGeometry first = results.takeAt( 0 );
2302 for ( const QgsGeometry &result : std::as_const( results ) )
2303 {
2304 first.addPart( result );
2305 }
2306 return first;
2307 }
2308 else
2309 {
2310 QgsGeos geos( d->geometry.get() );
2311 mLastError.clear();
2312
2313 // GEOS can flip the curve orientation in some circumstances. So record previous orientation and correct if required
2314 const Qgis::AngularDirection prevOrientation = qgsgeometry_cast< const QgsCurve * >( d->geometry.get() )->orientation();
2315
2316 std::unique_ptr< QgsAbstractGeometry > offsetGeom( geos.offsetCurve( distance, segments, joinStyle, miterLimit, &mLastError ) );
2317 if ( !offsetGeom )
2318 {
2319 QgsGeometry result;
2320 result.mLastError = mLastError;
2321 return result;
2322 }
2323
2324 if ( const QgsCurve *offsetCurve = qgsgeometry_cast< const QgsCurve * >( offsetGeom.get() ) )
2325 {
2326 const Qgis::AngularDirection newOrientation = offsetCurve->orientation();
2327 if ( newOrientation != prevOrientation )
2328 {
2329 // GEOS has flipped line orientation, flip it back
2330 std::unique_ptr< QgsAbstractGeometry > flipped( offsetCurve->reversed() );
2331 offsetGeom = std::move( flipped );
2332 }
2333 }
2334 return QgsGeometry( std::move( offsetGeom ) );
2335 }
2336}
2337
2338QgsGeometry QgsGeometry::singleSidedBuffer( double distance, int segments, Qgis::BufferSide side, Qgis::JoinStyle joinStyle, double miterLimit ) const
2339{
2340 if ( !d->geometry || type() != Qgis::GeometryType::Line )
2341 {
2342 return QgsGeometry();
2343 }
2344
2345 if ( QgsWkbTypes::isMultiType( d->geometry->wkbType() ) )
2346 {
2347 const QVector<QgsGeometry> parts = asGeometryCollection();
2348 QVector<QgsGeometry> results;
2349 results.reserve( parts.count() );
2350 for ( const QgsGeometry &part : parts )
2351 {
2352 QgsGeometry result = part.singleSidedBuffer( distance, segments, side, joinStyle, miterLimit );
2353 if ( !result.isNull() )
2354 results << result;
2355 }
2356 if ( results.isEmpty() )
2357 return QgsGeometry();
2358
2359 QgsGeometry first = results.takeAt( 0 );
2360 for ( const QgsGeometry &result : std::as_const( results ) )
2361 {
2362 first.addPart( result );
2363 }
2364 return first;
2365 }
2366 else
2367 {
2368 QgsGeos geos( d->geometry.get() );
2369 mLastError.clear();
2370 std::unique_ptr< QgsAbstractGeometry > bufferGeom = geos.singleSidedBuffer( distance, segments, side,
2371 joinStyle, miterLimit, &mLastError );
2372 if ( !bufferGeom )
2373 {
2374 QgsGeometry result;
2375 result.mLastError = mLastError;
2376 return result;
2377 }
2378 return QgsGeometry( std::move( bufferGeom ) );
2379 }
2380}
2381
2382QgsGeometry QgsGeometry::taperedBuffer( double startWidth, double endWidth, int segments ) const
2383{
2384 QgsInternalGeometryEngine engine( *this );
2385
2386 return engine.taperedBuffer( startWidth, endWidth, segments );
2387}
2388
2390{
2391 QgsInternalGeometryEngine engine( *this );
2392
2393 return engine.variableWidthBufferByM( segments );
2394}
2395
2396QgsGeometry QgsGeometry::extendLine( double startDistance, double endDistance ) const
2397{
2398 if ( !d->geometry || type() != Qgis::GeometryType::Line )
2399 {
2400 return QgsGeometry();
2401 }
2402
2403 if ( QgsWkbTypes::isMultiType( d->geometry->wkbType() ) )
2404 {
2405 const QVector<QgsGeometry> parts = asGeometryCollection();
2406 QVector<QgsGeometry> results;
2407 results.reserve( parts.count() );
2408 for ( const QgsGeometry &part : parts )
2409 {
2410 QgsGeometry result = part.extendLine( startDistance, endDistance );
2411 if ( !result.isNull() )
2412 results << result;
2413 }
2414 if ( results.isEmpty() )
2415 return QgsGeometry();
2416
2417 QgsGeometry first = results.takeAt( 0 );
2418 for ( const QgsGeometry &result : std::as_const( results ) )
2419 {
2420 first.addPart( result );
2421 }
2422 return first;
2423 }
2424 else
2425 {
2426 QgsLineString *line = qgsgeometry_cast< QgsLineString * >( d->geometry.get() );
2427 if ( !line )
2428 return QgsGeometry();
2429
2430 std::unique_ptr< QgsLineString > newLine( line->clone() );
2431 newLine->extend( startDistance, endDistance );
2432 return QgsGeometry( std::move( newLine ) );
2433 }
2434}
2435
2436QgsGeometry QgsGeometry::simplify( double tolerance ) const
2437{
2438 if ( !d->geometry )
2439 {
2440 return QgsGeometry();
2441 }
2442
2443 QgsGeos geos( d->geometry.get() );
2444 mLastError.clear();
2445 std::unique_ptr< QgsAbstractGeometry > simplifiedGeom( geos.simplify( tolerance, &mLastError ) );
2446 if ( !simplifiedGeom )
2447 {
2448 QgsGeometry result;
2449 result.mLastError = mLastError;
2450 return result;
2451 }
2452 return QgsGeometry( std::move( simplifiedGeom ) );
2453}
2454
2455QgsGeometry QgsGeometry::densifyByCount( int extraNodesPerSegment ) const
2456{
2457 QgsInternalGeometryEngine engine( *this );
2458
2459 return engine.densifyByCount( extraNodesPerSegment );
2460}
2461
2463{
2464 QgsInternalGeometryEngine engine( *this );
2465
2466 return engine.densifyByDistance( distance );
2467}
2468
2469QgsGeometry QgsGeometry::convertToCurves( double distanceTolerance, double angleTolerance ) const
2470{
2471 QgsInternalGeometryEngine engine( *this );
2472
2473 return engine.convertToCurves( distanceTolerance, angleTolerance );
2474}
2475
2477{
2478 if ( !d->geometry )
2479 {
2480 return QgsGeometry();
2481 }
2482
2483 // avoid calling geos for trivial point centroids
2484 if ( QgsWkbTypes::flatType( d->geometry->wkbType() ) == Qgis::WkbType::Point )
2485 {
2486 QgsGeometry c = *this;
2487 c.get()->dropZValue();
2488 c.get()->dropMValue();
2489 return c;
2490 }
2491
2492 QgsGeos geos( d->geometry.get() );
2493
2494 mLastError.clear();
2495 QgsGeometry result( geos.centroid( &mLastError ) );
2496 result.mLastError = mLastError;
2497 return result;
2498}
2499
2501{
2502 if ( !d->geometry )
2503 {
2504 return QgsGeometry();
2505 }
2506
2507 QgsGeos geos( d->geometry.get() );
2508
2509 mLastError.clear();
2510 QgsGeometry result( geos.pointOnSurface( &mLastError ) );
2511 result.mLastError = mLastError;
2512 return result;
2513}
2514
2515QgsGeometry QgsGeometry::poleOfInaccessibility( double precision, double *distanceToBoundary ) const
2516{
2517 QgsInternalGeometryEngine engine( *this );
2518
2519 return engine.poleOfInaccessibility( precision, distanceToBoundary );
2520}
2521
2522QgsGeometry QgsGeometry::largestEmptyCircle( double tolerance, const QgsGeometry &boundary ) const
2523{
2524 if ( !d->geometry )
2525 {
2526 return QgsGeometry();
2527 }
2528
2529 QgsGeos geos( d->geometry.get() );
2530
2531 mLastError.clear();
2532 QgsGeometry result( geos.largestEmptyCircle( tolerance, boundary.constGet(), &mLastError ) );
2533 result.mLastError = mLastError;
2534 return result;
2535}
2536
2538{
2539 if ( !d->geometry )
2540 {
2541 return QgsGeometry();
2542 }
2543
2544 QgsGeos geos( d->geometry.get() );
2545
2546 mLastError.clear();
2547 QgsGeometry result( geos.minimumWidth( &mLastError ) );
2548 result.mLastError = mLastError;
2549 return result;
2550}
2551
2553{
2554 if ( !d->geometry )
2555 {
2556 return std::numeric_limits< double >::quiet_NaN();
2557 }
2558
2559 QgsGeos geos( d->geometry.get() );
2560
2561 mLastError.clear();
2562 return geos.minimumClearance( &mLastError );
2563}
2564
2566{
2567 if ( !d->geometry )
2568 {
2569 return QgsGeometry();
2570 }
2571
2572 QgsGeos geos( d->geometry.get() );
2573
2574 mLastError.clear();
2575 QgsGeometry result( geos.minimumClearanceLine( &mLastError ) );
2576 result.mLastError = mLastError;
2577 return result;
2578}
2579
2581{
2582 if ( !d->geometry )
2583 {
2584 return QgsGeometry();
2585 }
2586 QgsGeos geos( d->geometry.get() );
2587 mLastError.clear();
2588 std::unique_ptr< QgsAbstractGeometry > cHull( geos.convexHull( &mLastError ) );
2589 if ( !cHull )
2590 {
2591 QgsGeometry geom;
2592 geom.mLastError = mLastError;
2593 return geom;
2594 }
2595 return QgsGeometry( std::move( cHull ) );
2596}
2597
2598QgsGeometry QgsGeometry::concaveHull( double targetPercent, bool allowHoles ) const
2599{
2600 if ( !d->geometry )
2601 {
2602 return QgsGeometry();
2603 }
2604 QgsGeos geos( d->geometry.get() );
2605 mLastError.clear();
2606 std::unique_ptr< QgsAbstractGeometry > concaveHull( geos.concaveHull( targetPercent, allowHoles, &mLastError ) );
2607 if ( !concaveHull )
2608 {
2609 QgsGeometry geom;
2610 geom.mLastError = mLastError;
2611 return geom;
2612 }
2613 return QgsGeometry( std::move( concaveHull ) );
2614}
2615
2616QgsGeometry QgsGeometry::voronoiDiagram( const QgsGeometry &extent, double tolerance, bool edgesOnly ) const
2617{
2618 if ( !d->geometry )
2619 {
2620 return QgsGeometry();
2621 }
2622
2623 QgsGeos geos( d->geometry.get() );
2624 mLastError.clear();
2625 QgsGeometry result = geos.voronoiDiagram( extent.constGet(), tolerance, edgesOnly, &mLastError );
2626 result.mLastError = mLastError;
2627 return result;
2628}
2629
2630QgsGeometry QgsGeometry::delaunayTriangulation( double tolerance, bool edgesOnly ) const
2631{
2632 if ( !d->geometry )
2633 {
2634 return QgsGeometry();
2635 }
2636
2637 QgsGeos geos( d->geometry.get() );
2638 mLastError.clear();
2639 QgsGeometry result = geos.delaunayTriangulation( tolerance, edgesOnly );
2640 result.mLastError = mLastError;
2641 return result;
2642}
2643
2645{
2646 if ( !d->geometry )
2647 {
2648 return QgsGeometry();
2649 }
2650
2651 QgsGeos geos( d->geometry.get() );
2652 mLastError.clear();
2653 QgsGeometry result( geos.node( &mLastError ) );
2654 result.mLastError = mLastError;
2655 return result;
2656}
2657
2659{
2660 if ( !d->geometry )
2661 {
2662 return QgsGeometry();
2663 }
2664
2665 QgsGeos geos( d->geometry.get() );
2666 mLastError.clear();
2667 QgsGeometry result( geos.sharedPaths( other.constGet(), &mLastError ) );
2668 result.mLastError = mLastError;
2669 return result;
2670}
2671
2672QgsGeometry QgsGeometry::subdivide( int maxNodes, const QgsGeometryParameters &parameters ) const
2673{
2674 if ( !d->geometry )
2675 {
2676 return QgsGeometry();
2677 }
2678
2679 const QgsAbstractGeometry *geom = d->geometry.get();
2680 std::unique_ptr< QgsAbstractGeometry > segmentizedCopy;
2681 if ( QgsWkbTypes::isCurvedType( d->geometry->wkbType() ) )
2682 {
2683 segmentizedCopy.reset( d->geometry->segmentize() );
2684 geom = segmentizedCopy.get();
2685 }
2686
2687 QgsGeos geos( geom );
2688 mLastError.clear();
2689 std::unique_ptr< QgsAbstractGeometry > result( geos.subdivide( maxNodes, &mLastError, parameters ) );
2690 if ( !result )
2691 {
2692 QgsGeometry geom;
2693 geom.mLastError = mLastError;
2694 return geom;
2695 }
2696 return QgsGeometry( std::move( result ) );
2697}
2698
2700{
2701 if ( !d->geometry )
2702 {
2703 return QgsGeometry();
2704 }
2705
2706 QgsGeometry line = *this;
2708 return QgsGeometry();
2709 else if ( type() == Qgis::GeometryType::Polygon )
2710 {
2711 line = QgsGeometry( d->geometry->boundary() );
2712 }
2713
2714 const QgsCurve *curve = nullptr;
2715 if ( line.isMultipart() )
2716 {
2717 // if multi part, iterate through parts to find target part
2718 const QgsGeometryCollection *collection = qgsgeometry_cast< const QgsGeometryCollection * >( line.constGet() );
2719 for ( int part = 0; part < collection->numGeometries(); ++part )
2720 {
2721 const QgsCurve *candidate = qgsgeometry_cast< const QgsCurve * >( collection->geometryN( part ) );
2722 if ( !candidate )
2723 continue;
2724 const double candidateLength = candidate->length();
2725 if ( candidateLength >= distance )
2726 {
2727 curve = candidate;
2728 break;
2729 }
2730
2731 distance -= candidateLength;
2732 }
2733 }
2734 else
2735 {
2736 curve = qgsgeometry_cast< const QgsCurve * >( line.constGet() );
2737 }
2738 if ( !curve )
2739 return QgsGeometry();
2740
2741 std::unique_ptr< QgsPoint > result( curve->interpolatePoint( distance ) );
2742 if ( !result )
2743 {
2744 return QgsGeometry();
2745 }
2746 return QgsGeometry( std::move( result ) );
2747}
2748
2749double QgsGeometry::lineLocatePoint( const QgsGeometry &point ) const
2750{
2751 if ( type() != Qgis::GeometryType::Line )
2752 return -1;
2753
2755 return -1;
2756
2757 QgsGeometry segmentized = *this;
2759 {
2760 segmentized = QgsGeometry( static_cast< QgsCurve * >( d->geometry.get() )->segmentize() );
2761 }
2762
2763 QgsGeos geos( d->geometry.get() );
2764 mLastError.clear();
2765 return geos.lineLocatePoint( *( static_cast< QgsPoint * >( point.d->geometry.get() ) ), &mLastError );
2766}
2767
2768double QgsGeometry::interpolateAngle( double distance ) const
2769{
2770 if ( !d->geometry || d->geometry->isEmpty() )
2771 return 0.0;
2772
2773 const QgsAbstractGeometry *geom = d->geometry->simplifiedTypeRef();
2775 return 0.0;
2776
2777 // always operate on segmentized geometries
2778 QgsGeometry segmentized = *this;
2779 if ( QgsWkbTypes::isCurvedType( geom->wkbType() ) )
2780 {
2781 segmentized = QgsGeometry( static_cast< const QgsCurve * >( geom )->segmentize() );
2782 }
2783
2784 QgsVertexId previous;
2785 QgsVertexId next;
2786 if ( !QgsGeometryUtils::verticesAtDistance( *segmentized.constGet(), distance, previous, next ) )
2787 return 0.0;
2788
2789 if ( previous == next )
2790 {
2791 // distance coincided exactly with a vertex
2792 QgsVertexId v2 = previous;
2793 QgsVertexId v1;
2794 QgsVertexId v3;
2795 segmentized.constGet()->adjacentVertices( v2, v1, v3 );
2796 if ( v1.isValid() && v3.isValid() )
2797 {
2798 QgsPoint p1 = segmentized.constGet()->vertexAt( v1 );
2799 QgsPoint p2 = segmentized.constGet()->vertexAt( v2 );
2800 QgsPoint p3 = segmentized.constGet()->vertexAt( v3 );
2801 double angle1 = QgsGeometryUtils::lineAngle( p1.x(), p1.y(), p2.x(), p2.y() );
2802 double angle2 = QgsGeometryUtils::lineAngle( p2.x(), p2.y(), p3.x(), p3.y() );
2803 return QgsGeometryUtils::averageAngle( angle1, angle2 );
2804 }
2805 else if ( v3.isValid() )
2806 {
2807 QgsPoint p1 = segmentized.constGet()->vertexAt( v2 );
2808 QgsPoint p2 = segmentized.constGet()->vertexAt( v3 );
2809 return QgsGeometryUtils::lineAngle( p1.x(), p1.y(), p2.x(), p2.y() );
2810 }
2811 else
2812 {
2813 QgsPoint p1 = segmentized.constGet()->vertexAt( v1 );
2814 QgsPoint p2 = segmentized.constGet()->vertexAt( v2 );
2815 return QgsGeometryUtils::lineAngle( p1.x(), p1.y(), p2.x(), p2.y() );
2816 }
2817 }
2818 else
2819 {
2820 QgsPoint p1 = segmentized.constGet()->vertexAt( previous );
2821 QgsPoint p2 = segmentized.constGet()->vertexAt( next );
2822 return QgsGeometryUtils::lineAngle( p1.x(), p1.y(), p2.x(), p2.y() );
2823 }
2824}
2825
2827{
2828 if ( !d->geometry || geometry.isNull() )
2829 {
2830 return QgsGeometry();
2831 }
2832
2833 QgsGeos geos( d->geometry.get() );
2834
2835 mLastError.clear();
2836 std::unique_ptr< QgsAbstractGeometry > resultGeom( geos.intersection( geometry.d->geometry.get(), &mLastError, parameters ) );
2837
2838 if ( !resultGeom )
2839 {
2840 QgsGeometry geom;
2841 geom.mLastError = mLastError;
2842 return geom;
2843 }
2844
2845 return QgsGeometry( std::move( resultGeom ) );
2846}
2847
2848QgsGeometry QgsGeometry::combine( const QgsGeometry &geometry, const QgsGeometryParameters &parameters ) const
2849{
2850 if ( !d->geometry || geometry.isNull() )
2851 {
2852 return QgsGeometry();
2853 }
2854
2855 QgsGeos geos( d->geometry.get() );
2856 mLastError.clear();
2857 std::unique_ptr< QgsAbstractGeometry > resultGeom( geos.combine( geometry.d->geometry.get(), &mLastError, parameters ) );
2858 if ( !resultGeom )
2859 {
2860 QgsGeometry geom;
2861 geom.mLastError = mLastError;
2862 return geom;
2863 }
2864 return QgsGeometry( std::move( resultGeom ) );
2865}
2866
2868{
2869 if ( !d->geometry )
2870 {
2871 return QgsGeometry();
2872 }
2873
2875 {
2876 // special case - a single linestring was passed
2877 return QgsGeometry( *this );
2878 }
2879
2880 QgsGeos geos( d->geometry.get() );
2881 mLastError.clear();
2882 QgsGeometry result = geos.mergeLines( &mLastError );
2883 result.mLastError = mLastError;
2884 return result;
2885}
2886
2888{
2889 if ( !d->geometry || geometry.isNull() )
2890 {
2891 return QgsGeometry();
2892 }
2893
2894 QgsGeos geos( d->geometry.get() );
2895
2896 mLastError.clear();
2897 std::unique_ptr< QgsAbstractGeometry > resultGeom( geos.difference( geometry.d->geometry.get(), &mLastError, parameters ) );
2898 if ( !resultGeom )
2899 {
2900 QgsGeometry geom;
2901 geom.mLastError = mLastError;
2902 return geom;
2903 }
2904 return QgsGeometry( std::move( resultGeom ) );
2905}
2906
2908{
2909 if ( !d->geometry || geometry.isNull() )
2910 {
2911 return QgsGeometry();
2912 }
2913
2914 QgsGeos geos( d->geometry.get() );
2915
2916 mLastError.clear();
2917 std::unique_ptr< QgsAbstractGeometry > resultGeom( geos.symDifference( geometry.d->geometry.get(), &mLastError, parameters ) );
2918 if ( !resultGeom )
2919 {
2920 QgsGeometry geom;
2921 geom.mLastError = mLastError;
2922 return geom;
2923 }
2924 return QgsGeometry( std::move( resultGeom ) );
2925}
2926
2928{
2929 QgsInternalGeometryEngine engine( *this );
2930
2931 return engine.extrude( x, y );
2932}
2933
2935
2936QVector<QgsPointXY> QgsGeometry::randomPointsInPolygon( int count, const std::function< bool( const QgsPointXY & ) > &acceptPoint, unsigned long seed, QgsFeedback *feedback, int maxTriesPerPoint ) const
2937{
2939 return QVector< QgsPointXY >();
2940
2941 return QgsInternalGeometryEngine::randomPointsInPolygon( *this, count, acceptPoint, seed, feedback, maxTriesPerPoint );
2942}
2943
2944QVector<QgsPointXY> QgsGeometry::randomPointsInPolygon( int count, unsigned long seed, QgsFeedback *feedback ) const
2945{
2947 return QVector< QgsPointXY >();
2948
2949 return QgsInternalGeometryEngine::randomPointsInPolygon( *this, count, []( const QgsPointXY & ) { return true; }, seed, feedback, 0 );
2950}
2952
2953int QgsGeometry::wkbSize( QgsAbstractGeometry::WkbFlags flags ) const
2954{
2955 return d->geometry ? d->geometry->wkbSize( flags ) : 0;
2956}
2957
2958QByteArray QgsGeometry::asWkb( QgsAbstractGeometry::WkbFlags flags ) const
2959{
2960 return d->geometry ? d->geometry->asWkb( flags ) : QByteArray();
2961}
2962
2963QVector<QgsGeometry> QgsGeometry::asGeometryCollection() const
2964{
2965 QVector<QgsGeometry> geometryList;
2966 if ( !d->geometry )
2967 {
2968 return geometryList;
2969 }
2970
2971 QgsGeometryCollection *gc = qgsgeometry_cast<QgsGeometryCollection *>( d->geometry.get() );
2972 if ( gc )
2973 {
2974 int numGeom = gc->numGeometries();
2975 geometryList.reserve( numGeom );
2976 for ( int i = 0; i < numGeom; ++i )
2977 {
2978 geometryList.append( QgsGeometry( gc->geometryN( i )->clone() ) );
2979 }
2980 }
2981 else //a singlepart geometry
2982 {
2983 geometryList.append( *this );
2984 }
2985
2986 return geometryList;
2987}
2988
2990{
2991 QgsPointXY point = asPoint();
2992 return point.toQPointF();
2993}
2994
2996{
2997 const QgsAbstractGeometry *part = constGet();
2998
2999 // if a geometry collection, get first part only
3000 if ( const QgsGeometryCollection *collection = qgsgeometry_cast< const QgsGeometryCollection *>( part ) )
3001 {
3002 if ( collection->numGeometries() > 0 )
3003 part = collection->geometryN( 0 );
3004 else
3005 return QPolygonF();
3006 }
3007
3008 if ( const QgsCurve *curve = qgsgeometry_cast< const QgsCurve * >( part ) )
3009 return curve->asQPolygonF();
3010 else if ( const QgsCurvePolygon *polygon = qgsgeometry_cast< const QgsCurvePolygon * >( part ) )
3011 return polygon->exteriorRing() ? polygon->exteriorRing()->asQPolygonF() : QPolygonF();
3012 return QPolygonF();
3013}
3014
3015bool QgsGeometry::deleteRing( int ringNum, int partNum )
3016{
3017 if ( !d->geometry )
3018 {
3019 return false;
3020 }
3021
3022 detach();
3023 bool ok = QgsGeometryEditUtils::deleteRing( d->geometry.get(), ringNum, partNum );
3024 return ok;
3025}
3026
3027bool QgsGeometry::deletePart( int partNum )
3028{
3029 if ( !d->geometry )
3030 {
3031 return false;
3032 }
3033
3034 if ( !isMultipart() && partNum < 1 )
3035 {
3036 set( nullptr );
3037 return true;
3038 }
3039
3040 detach();
3041 bool ok = QgsGeometryEditUtils::deletePart( d->geometry.get(), partNum );
3042 return ok;
3043}
3044
3045Qgis::GeometryOperationResult QgsGeometry::avoidIntersectionsV2( const QList<QgsVectorLayer *> &avoidIntersectionsLayers, const QHash<QgsVectorLayer *, QSet<QgsFeatureId> > &ignoreFeatures )
3046{
3047 if ( !d->geometry )
3048 {
3050 }
3051
3052 Qgis::WkbType geomTypeBeforeModification = wkbType();
3053
3054 bool haveInvalidGeometry = false;
3055 bool geomModified = false;
3056
3057 std::unique_ptr< QgsAbstractGeometry > diffGeom = QgsGeometryEditUtils::avoidIntersections( *( d->geometry ), avoidIntersectionsLayers, haveInvalidGeometry, ignoreFeatures );
3058 if ( diffGeom )
3059 {
3060 reset( std::move( diffGeom ) );
3061 geomModified = true;
3062 }
3063
3064 if ( geomTypeBeforeModification != wkbType() )
3066 if ( haveInvalidGeometry )
3068 if ( !geomModified )
3070
3072}
3073
3105
3107{
3108 if ( !d->geometry )
3109 return QgsGeometry();
3110
3111 mLastError.clear();
3112 QgsGeos geos( d->geometry.get() );
3113 std::unique_ptr< QgsAbstractGeometry > g( geos.makeValid( method, keepCollapsed, &mLastError ) );
3114
3115 QgsGeometry result = QgsGeometry( std::move( g ) );
3116 result.mLastError = mLastError;
3117 return result;
3118}
3119
3124
3126{
3127 if ( !d->geometry )
3128 return QgsGeometry();
3129
3130 if ( isMultipart() )
3131 {
3132 const QgsGeometryCollection *collection = qgsgeometry_cast< const QgsGeometryCollection * >( d->geometry.get() );
3133 std::unique_ptr< QgsGeometryCollection > newCollection( collection->createEmptyWithSameType() );
3134 newCollection->reserve( collection->numGeometries() );
3135 for ( int i = 0; i < collection->numGeometries(); ++i )
3136 {
3137 const QgsAbstractGeometry *g = collection->geometryN( i );
3138 if ( const QgsCurvePolygon *cp = qgsgeometry_cast< const QgsCurvePolygon * >( g ) )
3139 {
3140 std::unique_ptr< QgsCurvePolygon > corrected( cp->clone() );
3141 corrected->forceClockwise();
3142 newCollection->addGeometry( corrected.release() );
3143 }
3144 else
3145 {
3146 newCollection->addGeometry( g->clone() );
3147 }
3148 }
3149 return QgsGeometry( std::move( newCollection ) );
3150 }
3151 else
3152 {
3153 if ( const QgsCurvePolygon *cp = qgsgeometry_cast< const QgsCurvePolygon * >( d->geometry.get() ) )
3154 {
3155 std::unique_ptr< QgsCurvePolygon > corrected( cp->clone() );
3156 corrected->forceClockwise();
3157 return QgsGeometry( std::move( corrected ) );
3158 }
3159 else
3160 {
3161 // not a curve polygon, so return unchanged
3162 return *this;
3163 }
3164 }
3165}
3166
3168{
3169 if ( !d->geometry )
3170 return QgsGeometry();
3171
3172 if ( isMultipart() )
3173 {
3174 const QgsGeometryCollection *collection = qgsgeometry_cast< const QgsGeometryCollection * >( d->geometry.get() );
3175 std::unique_ptr< QgsGeometryCollection > newCollection( collection->createEmptyWithSameType() );
3176 newCollection->reserve( collection->numGeometries() );
3177 for ( int i = 0; i < collection->numGeometries(); ++i )
3178 {
3179 const QgsAbstractGeometry *g = collection->geometryN( i );
3180 if ( const QgsCurvePolygon *cp = qgsgeometry_cast< const QgsCurvePolygon * >( g ) )
3181 {
3182 std::unique_ptr< QgsCurvePolygon > corrected( cp->clone() );
3183 corrected->forceCounterClockwise();
3184 newCollection->addGeometry( corrected.release() );
3185 }
3186 else
3187 {
3188 newCollection->addGeometry( g->clone() );
3189 }
3190 }
3191 return QgsGeometry( std::move( newCollection ) );
3192 }
3193 else
3194 {
3195 if ( const QgsCurvePolygon *cp = qgsgeometry_cast< const QgsCurvePolygon * >( d->geometry.get() ) )
3196 {
3197 std::unique_ptr< QgsCurvePolygon > corrected( cp->clone() );
3198 corrected->forceCounterClockwise();
3199 return QgsGeometry( std::move( corrected ) );
3200 }
3201 else
3202 {
3203 // not a curve polygon, so return unchanged
3204 return *this;
3205 }
3206 }
3207}
3208
3209
3210void QgsGeometry::validateGeometry( QVector<QgsGeometry::Error> &errors, const Qgis::GeometryValidationEngine method, const Qgis::GeometryValidityFlags flags ) const
3211{
3212 errors.clear();
3213 if ( !d->geometry )
3214 return;
3215
3216 // avoid expensive calcs for trivial point geometries
3218 {
3219 return;
3220 }
3221
3222 switch ( method )
3223 {
3225 QgsGeometryValidator::validateGeometry( *this, errors, method );
3226 return;
3227
3229 {
3230 QgsGeos geos( d->geometry.get() );
3231 QString error;
3232 QgsGeometry errorLoc;
3233 if ( !geos.isValid( &error, flags & Qgis::GeometryValidityFlag::AllowSelfTouchingHoles, &errorLoc ) )
3234 {
3235 if ( errorLoc.isNull() )
3236 {
3237 errors.append( QgsGeometry::Error( error ) );
3238 }
3239 else
3240 {
3241 const QgsPointXY point = errorLoc.asPoint();
3242 errors.append( QgsGeometry::Error( error, point ) );
3243 }
3244 return;
3245 }
3246 }
3247 }
3248}
3249
3251{
3252 if ( !d->geometry )
3253 {
3254 return;
3255 }
3256
3257 detach();
3258 d->geometry->normalize();
3259}
3260
3261bool QgsGeometry::isGeosValid( Qgis::GeometryValidityFlags flags ) const
3262{
3263 if ( !d->geometry )
3264 {
3265 return false;
3266 }
3267
3268 return d->geometry->isValid( mLastError, flags );
3269}
3270
3272{
3273 if ( !d->geometry )
3274 return false;
3275
3276 QgsGeos geos( d->geometry.get() );
3277 mLastError.clear();
3278 return geos.isSimple( &mLastError );
3279}
3280
3281bool QgsGeometry::isAxisParallelRectangle( double maximumDeviation, bool simpleRectanglesOnly ) const
3282{
3283 if ( !d->geometry )
3284 return false;
3285
3286 QgsInternalGeometryEngine engine( *this );
3287 return engine.isAxisParallelRectangle( maximumDeviation, simpleRectanglesOnly );
3288}
3289
3291{
3292 if ( !d->geometry || !g.d->geometry )
3293 {
3294 return false;
3295 }
3296
3297 // fast check - are they shared copies of the same underlying geometry?
3298 if ( d == g.d )
3299 return true;
3300
3301 // fast check - distinct geometry types?
3302 if ( type() != g.type() )
3303 return false;
3304
3305 // avoid calling geos for trivial point case
3306 if ( QgsWkbTypes::flatType( d->geometry->wkbType() ) == Qgis::WkbType::Point
3307 && QgsWkbTypes::flatType( g.d->geometry->wkbType() ) == Qgis::WkbType::Point )
3308 {
3309 return equals( g );
3310 }
3311
3312 // another nice fast check upfront -- if the bounding boxes aren't equal, the geometries themselves can't be equal!
3313 if ( d->geometry->boundingBox() != g.d->geometry->boundingBox() )
3314 return false;
3315
3316 QgsGeos geos( d->geometry.get() );
3317 mLastError.clear();
3318 return geos.isEqual( g.d->geometry.get(), &mLastError );
3319}
3320
3321QgsGeometry QgsGeometry::unaryUnion( const QVector<QgsGeometry> &geometries, const QgsGeometryParameters &parameters )
3322{
3323 QgsGeos geos( nullptr );
3324
3325 QString error;
3326 std::unique_ptr< QgsAbstractGeometry > geom( geos.combine( geometries, &error, parameters ) );
3327 QgsGeometry result( std::move( geom ) );
3328 result.mLastError = error;
3329 return result;
3330}
3331
3332QgsGeometry QgsGeometry::polygonize( const QVector<QgsGeometry> &geometryList )
3333{
3334 QVector<const QgsAbstractGeometry *> geomV2List;
3335 for ( const QgsGeometry &g : geometryList )
3336 {
3337 if ( !( g.isNull() ) )
3338 {
3339 geomV2List.append( g.constGet() );
3340 }
3341 }
3342
3343 QString error;
3344 QgsGeometry result = QgsGeos::polygonize( geomV2List, &error );
3345 result.mLastError = error;
3346 return result;
3347}
3348
3350{
3352 {
3353 return;
3354 }
3355
3356 std::unique_ptr< QgsAbstractGeometry > straightGeom( d->geometry->segmentize( tolerance, toleranceType ) );
3357 reset( std::move( straightGeom ) );
3358}
3359
3361{
3362 if ( !d->geometry )
3363 {
3364 return false;
3365 }
3366
3367 return d->geometry->hasCurvedSegments();
3368}
3369
3371{
3372 if ( !d->geometry )
3373 {
3375 }
3376
3377 detach();
3378 d->geometry->transform( ct, direction, transformZ );
3380}
3381
3382Qgis::GeometryOperationResult QgsGeometry::transform( const QTransform &ct, double zTranslate, double zScale, double mTranslate, double mScale )
3383{
3384 if ( !d->geometry )
3385 {
3387 }
3388
3389 detach();
3390 d->geometry->transform( ct, zTranslate, zScale, mTranslate, mScale );
3392}
3393
3395{
3396 if ( d->geometry )
3397 {
3398 detach();
3399 d->geometry->transform( mtp.transform() );
3400 }
3401}
3402
3404{
3405 if ( !d->geometry || rectangle.isNull() || rectangle.isEmpty() )
3406 {
3407 return QgsGeometry();
3408 }
3409
3410 QgsGeos geos( d->geometry.get() );
3411 mLastError.clear();
3412 std::unique_ptr< QgsAbstractGeometry > resultGeom = geos.clip( rectangle, &mLastError );
3413 if ( !resultGeom )
3414 {
3415 QgsGeometry result;
3416 result.mLastError = mLastError;
3417 return result;
3418 }
3419 return QgsGeometry( std::move( resultGeom ) );
3420}
3421
3422void QgsGeometry::draw( QPainter &p ) const
3423{
3424 if ( d->geometry )
3425 {
3426 d->geometry->draw( p );
3427 }
3428}
3429
3430static bool vertexIndexInfo( const QgsAbstractGeometry *g, int vertexIndex, int &partIndex, int &ringIndex, int &vertex )
3431{
3432 if ( vertexIndex < 0 )
3433 return false; // clearly something wrong
3434
3435 if ( const QgsGeometryCollection *geomCollection = qgsgeometry_cast<const QgsGeometryCollection *>( g ) )
3436 {
3437 partIndex = 0;
3438 for ( int i = 0; i < geomCollection->numGeometries(); ++i )
3439 {
3440 const QgsAbstractGeometry *part = geomCollection->geometryN( i );
3441
3442 // count total number of vertices in the part
3443 int numPoints = 0;
3444 for ( int k = 0; k < part->ringCount(); ++k )
3445 numPoints += part->vertexCount( 0, k );
3446
3447 if ( vertexIndex < numPoints )
3448 {
3449 int nothing;
3450 return vertexIndexInfo( part, vertexIndex, nothing, ringIndex, vertex ); // set ring_index + index
3451 }
3452 vertexIndex -= numPoints;
3453 partIndex++;
3454 }
3455 }
3456 else if ( const QgsCurvePolygon *curvePolygon = qgsgeometry_cast<const QgsCurvePolygon *>( g ) )
3457 {
3458 const QgsCurve *ring = curvePolygon->exteriorRing();
3459 if ( vertexIndex < ring->numPoints() )
3460 {
3461 partIndex = 0;
3462 ringIndex = 0;
3463 vertex = vertexIndex;
3464 return true;
3465 }
3466 vertexIndex -= ring->numPoints();
3467 ringIndex = 1;
3468 for ( int i = 0; i < curvePolygon->numInteriorRings(); ++i )
3469 {
3470 const QgsCurve *ring = curvePolygon->interiorRing( i );
3471 if ( vertexIndex < ring->numPoints() )
3472 {
3473 partIndex = 0;
3474 vertex = vertexIndex;
3475 return true;
3476 }
3477 vertexIndex -= ring->numPoints();
3478 ringIndex += 1;
3479 }
3480 }
3481 else if ( const QgsCurve *curve = qgsgeometry_cast<const QgsCurve *>( g ) )
3482 {
3483 if ( vertexIndex < curve->numPoints() )
3484 {
3485 partIndex = 0;
3486 ringIndex = 0;
3487 vertex = vertexIndex;
3488 return true;
3489 }
3490 }
3491 else if ( qgsgeometry_cast<const QgsPoint *>( g ) )
3492 {
3493 if ( vertexIndex == 0 )
3494 {
3495 partIndex = 0;
3496 ringIndex = 0;
3497 vertex = 0;
3498 return true;
3499 }
3500 }
3501
3502 return false;
3503}
3504
3506{
3507 if ( !d->geometry )
3508 {
3509 return false;
3510 }
3511
3512 id.type = Qgis::VertexType::Segment;
3513
3514 bool res = vertexIndexInfo( d->geometry.get(), nr, id.part, id.ring, id.vertex );
3515 if ( !res )
3516 return false;
3517
3518 // now let's find out if it is a straight or circular segment
3519 const QgsAbstractGeometry *g = d->geometry.get();
3520 if ( const QgsGeometryCollection *geomCollection = qgsgeometry_cast<const QgsGeometryCollection *>( g ) )
3521 {
3522 g = geomCollection->geometryN( id.part );
3523 }
3524
3525 if ( const QgsCurvePolygon *curvePolygon = qgsgeometry_cast<const QgsCurvePolygon *>( g ) )
3526 {
3527 g = id.ring == 0 ? curvePolygon->exteriorRing() : curvePolygon->interiorRing( id.ring - 1 );
3528 }
3529
3530 if ( const QgsCurve *curve = qgsgeometry_cast<const QgsCurve *>( g ) )
3531 {
3532 QgsPoint p;
3533 res = curve->pointAt( id.vertex, p, id.type );
3534 if ( !res )
3535 return false;
3536 }
3537
3538 return true;
3539}
3540
3542{
3543 if ( !d->geometry )
3544 {
3545 return -1;
3546 }
3547 return d->geometry->vertexNumberFromVertexId( id );
3548}
3549
3551{
3552 return mLastError;
3553}
3554
3555void QgsGeometry::filterVertices( const std::function<bool ( const QgsPoint & )> &filter )
3556{
3557 if ( !d->geometry )
3558 return;
3559
3560 detach();
3561
3562 d->geometry->filterVertices( filter );
3563}
3564
3565void QgsGeometry::transformVertices( const std::function<QgsPoint( const QgsPoint & )> &transform )
3566{
3567 if ( !d->geometry )
3568 return;
3569
3570 detach();
3571
3572 d->geometry->transformVertices( transform );
3573}
3574
3575void QgsGeometry::convertPointList( const QVector<QgsPointXY> &input, QgsPointSequence &output )
3576{
3577 output.clear();
3578 for ( const QgsPointXY &p : input )
3579 {
3580 output.append( QgsPoint( p ) );
3581 }
3582}
3583
3584void QgsGeometry::convertPointList( const QgsPointSequence &input, QVector<QgsPointXY> &output )
3585{
3586 output.clear();
3587 for ( const QgsPoint &p : input )
3588 {
3589 output.append( QgsPointXY( p.x(), p.y() ) );
3590 }
3591}
3592
3593void QgsGeometry::convertPolygon( const QgsPolygon &input, QgsPolygonXY &output )
3594{
3595 output.clear();
3596
3597 auto convertRing = []( const QgsCurve * ring ) -> QgsPolylineXY
3598 {
3599 QgsPolylineXY res;
3600 bool doSegmentation = ( QgsWkbTypes::flatType( ring->wkbType() ) == Qgis::WkbType::CompoundCurve
3602 std::unique_ptr< QgsLineString > segmentizedLine;
3603 const QgsLineString *line = nullptr;
3604 if ( doSegmentation )
3605 {
3606 segmentizedLine.reset( ring->curveToLine() );
3607 line = segmentizedLine.get();
3608 }
3609 else
3610 {
3611 line = qgsgeometry_cast<const QgsLineString *>( ring );
3612 if ( !line )
3613 {
3614 return res;
3615 }
3616 }
3617
3618 int nVertices = line->numPoints();
3619 res.resize( nVertices );
3620 QgsPointXY *data = res.data();
3621 const double *xData = line->xData();
3622 const double *yData = line->yData();
3623 for ( int i = 0; i < nVertices; ++i )
3624 {
3625 data->setX( *xData++ );
3626 data->setY( *yData++ );
3627 data++;
3628 }
3629 return res;
3630 };
3631
3632 if ( const QgsCurve *exterior = input.exteriorRing() )
3633 {
3634 output.push_back( convertRing( exterior ) );
3635 }
3636
3637 const int interiorRingCount = input.numInteriorRings();
3638 output.reserve( output.size() + interiorRingCount );
3639 for ( int n = 0; n < interiorRingCount; ++n )
3640 {
3641 output.push_back( convertRing( input.interiorRing( n ) ) );
3642 }
3643}
3644
3646{
3647 return QgsGeometry( std::make_unique< QgsPoint >( point.x(), point.y() ) );
3648}
3649
3650QgsGeometry QgsGeometry::fromQPolygonF( const QPolygonF &polygon )
3651{
3652 std::unique_ptr < QgsLineString > ring( QgsLineString::fromQPolygonF( polygon ) );
3653
3654 if ( polygon.isClosed() )
3655 {
3656 std::unique_ptr< QgsPolygon > poly = std::make_unique< QgsPolygon >();
3657 poly->setExteriorRing( ring.release() );
3658 return QgsGeometry( std::move( poly ) );
3659 }
3660 else
3661 {
3662 return QgsGeometry( std::move( ring ) );
3663 }
3664}
3665
3667{
3669 QgsPolygonXY result;
3670 result << createPolylineFromQPolygonF( polygon );
3671 return result;
3673}
3674
3676{
3677 QgsPolylineXY result;
3678 result.reserve( polygon.count() );
3679 for ( const QPointF &p : polygon )
3680 {
3681 result.append( QgsPointXY( p ) );
3682 }
3683 return result;
3684}
3685
3686bool QgsGeometry::compare( const QgsPolylineXY &p1, const QgsPolylineXY &p2, double epsilon )
3687{
3688 if ( p1.count() != p2.count() )
3689 return false;
3690
3691 for ( int i = 0; i < p1.count(); ++i )
3692 {
3693 if ( !p1.at( i ).compare( p2.at( i ), epsilon ) )
3694 return false;
3695 }
3696 return true;
3697}
3698
3699bool QgsGeometry::compare( const QgsPolygonXY &p1, const QgsPolygonXY &p2, double epsilon )
3700{
3701 if ( p1.count() != p2.count() )
3702 return false;
3703
3704 for ( int i = 0; i < p1.count(); ++i )
3705 {
3706 if ( !QgsGeometry::compare( p1.at( i ), p2.at( i ), epsilon ) )
3707 return false;
3708 }
3709 return true;
3710}
3711
3712
3713bool QgsGeometry::compare( const QgsMultiPolygonXY &p1, const QgsMultiPolygonXY &p2, double epsilon )
3714{
3715 if ( p1.count() != p2.count() )
3716 return false;
3717
3718 for ( int i = 0; i < p1.count(); ++i )
3719 {
3720 if ( !QgsGeometry::compare( p1.at( i ), p2.at( i ), epsilon ) )
3721 return false;
3722 }
3723 return true;
3724}
3725
3726QgsGeometry QgsGeometry::smooth( const unsigned int iterations, const double offset, double minimumDistance, double maxAngle ) const
3727{
3728 if ( !d->geometry || d->geometry->isEmpty() )
3729 return QgsGeometry();
3730
3731 QgsGeometry geom = *this;
3733 geom = QgsGeometry( d->geometry->segmentize() );
3734
3735 switch ( QgsWkbTypes::flatType( geom.wkbType() ) )
3736 {
3739 //can't smooth a point based geometry
3740 return geom;
3741
3743 {
3744 const QgsLineString *lineString = qgsgeometry_cast< const QgsLineString * >( geom.constGet() );
3745 return QgsGeometry( smoothLine( *lineString, iterations, offset, minimumDistance, maxAngle ) );
3746 }
3747
3749 {
3750 const QgsMultiLineString *multiLine = qgsgeometry_cast< const QgsMultiLineString * >( geom.constGet() );
3751
3752 std::unique_ptr< QgsMultiLineString > resultMultiline = std::make_unique< QgsMultiLineString> ();
3753 resultMultiline->reserve( multiLine->numGeometries() );
3754 for ( int i = 0; i < multiLine->numGeometries(); ++i )
3755 {
3756 resultMultiline->addGeometry( smoothLine( *( multiLine->lineStringN( i ) ), iterations, offset, minimumDistance, maxAngle ).release() );
3757 }
3758 return QgsGeometry( std::move( resultMultiline ) );
3759 }
3760
3762 {
3763 const QgsPolygon *poly = qgsgeometry_cast< const QgsPolygon * >( geom.constGet() );
3764 return QgsGeometry( smoothPolygon( *poly, iterations, offset, minimumDistance, maxAngle ) );
3765 }
3766
3768 {
3769 const QgsMultiPolygon *multiPoly = qgsgeometry_cast< const QgsMultiPolygon * >( geom.constGet() );
3770
3771 std::unique_ptr< QgsMultiPolygon > resultMultiPoly = std::make_unique< QgsMultiPolygon >();
3772 resultMultiPoly->reserve( multiPoly->numGeometries() );
3773 for ( int i = 0; i < multiPoly->numGeometries(); ++i )
3774 {
3775 resultMultiPoly->addGeometry( smoothPolygon( *( multiPoly->polygonN( i ) ), iterations, offset, minimumDistance, maxAngle ).release() );
3776 }
3777 return QgsGeometry( std::move( resultMultiPoly ) );
3778 }
3779
3781 default:
3782 return QgsGeometry( *this );
3783 }
3784}
3785
3786std::unique_ptr< QgsLineString > smoothCurve( const QgsLineString &line, const unsigned int iterations,
3787 const double offset, double squareDistThreshold, double maxAngleRads,
3788 bool isRing )
3789{
3790 std::unique_ptr< QgsLineString > result = std::make_unique< QgsLineString >( line );
3791 QgsPointSequence outputLine;
3792 for ( unsigned int iteration = 0; iteration < iterations; ++iteration )
3793 {
3794 outputLine.resize( 0 );
3795 outputLine.reserve( 2 * ( result->numPoints() - 1 ) );
3796 bool skipFirst = false;
3797 bool skipLast = false;
3798 if ( isRing )
3799 {
3800 QgsPoint p1 = result->pointN( result->numPoints() - 2 );
3801 QgsPoint p2 = result->pointN( 0 );
3802 QgsPoint p3 = result->pointN( 1 );
3803 double angle = QgsGeometryUtils::angleBetweenThreePoints( p1.x(), p1.y(), p2.x(), p2.y(),
3804 p3.x(), p3.y() );
3805 angle = std::fabs( M_PI - angle );
3806 skipFirst = angle > maxAngleRads;
3807 }
3808 for ( int i = 0; i < result->numPoints() - 1; i++ )
3809 {
3810 QgsPoint p1 = result->pointN( i );
3811 QgsPoint p2 = result->pointN( i + 1 );
3812
3813 double angle = M_PI;
3814 if ( i == 0 && isRing )
3815 {
3816 QgsPoint p3 = result->pointN( result->numPoints() - 2 );
3817 angle = QgsGeometryUtils::angleBetweenThreePoints( p1.x(), p1.y(), p2.x(), p2.y(),
3818 p3.x(), p3.y() );
3819 }
3820 else if ( i < result->numPoints() - 2 )
3821 {
3822 QgsPoint p3 = result->pointN( i + 2 );
3823 angle = QgsGeometryUtils::angleBetweenThreePoints( p1.x(), p1.y(), p2.x(), p2.y(),
3824 p3.x(), p3.y() );
3825 }
3826 else if ( i == result->numPoints() - 2 && isRing )
3827 {
3828 QgsPoint p3 = result->pointN( 1 );
3829 angle = QgsGeometryUtils::angleBetweenThreePoints( p1.x(), p1.y(), p2.x(), p2.y(),
3830 p3.x(), p3.y() );
3831 }
3832
3833 skipLast = angle < M_PI - maxAngleRads || angle > M_PI + maxAngleRads;
3834
3835 // don't apply distance threshold to first or last segment
3836 if ( i == 0 || i >= result->numPoints() - 2
3837 || QgsGeometryUtils::sqrDistance2D( p1, p2 ) > squareDistThreshold )
3838 {
3839 if ( !isRing )
3840 {
3841 if ( !skipFirst )
3842 outputLine << ( i == 0 ? result->pointN( i ) : QgsGeometryUtils::interpolatePointOnLine( p1, p2, offset ) );
3843 if ( !skipLast )
3844 outputLine << ( i == result->numPoints() - 2 ? result->pointN( i + 1 ) : QgsGeometryUtils::interpolatePointOnLine( p1, p2, 1.0 - offset ) );
3845 else
3846 outputLine << p2;
3847 }
3848 else
3849 {
3850 // ring
3851 if ( !skipFirst )
3852 outputLine << QgsGeometryUtils::interpolatePointOnLine( p1, p2, offset );
3853 else if ( i == 0 )
3854 outputLine << p1;
3855 if ( !skipLast )
3856 outputLine << QgsGeometryUtils::interpolatePointOnLine( p1, p2, 1.0 - offset );
3857 else
3858 outputLine << p2;
3859 }
3860 }
3861 skipFirst = skipLast;
3862 }
3863
3864 if ( isRing && outputLine.at( 0 ) != outputLine.at( outputLine.count() - 1 ) )
3865 outputLine << outputLine.at( 0 );
3866
3867 result->setPoints( outputLine );
3868 }
3869 return result;
3870}
3871
3872std::unique_ptr<QgsLineString> QgsGeometry::smoothLine( const QgsLineString &line, const unsigned int iterations, const double offset, double minimumDistance, double maxAngle ) const
3873{
3874 double maxAngleRads = maxAngle * M_PI / 180.0;
3875 double squareDistThreshold = minimumDistance > 0 ? minimumDistance * minimumDistance : -1;
3876 return smoothCurve( line, iterations, offset, squareDistThreshold, maxAngleRads, false );
3877}
3878
3879std::unique_ptr<QgsPolygon> QgsGeometry::smoothPolygon( const QgsPolygon &polygon, const unsigned int iterations, const double offset, double minimumDistance, double maxAngle ) const
3880{
3881 double maxAngleRads = maxAngle * M_PI / 180.0;
3882 double squareDistThreshold = minimumDistance > 0 ? minimumDistance * minimumDistance : -1;
3883 std::unique_ptr< QgsPolygon > resultPoly = std::make_unique< QgsPolygon >();
3884
3885 resultPoly->setExteriorRing( smoothCurve( *( static_cast< const QgsLineString *>( polygon.exteriorRing() ) ), iterations, offset,
3886 squareDistThreshold, maxAngleRads, true ).release() );
3887
3888 for ( int i = 0; i < polygon.numInteriorRings(); ++i )
3889 {
3890 resultPoly->addInteriorRing( smoothCurve( *( static_cast< const QgsLineString *>( polygon.interiorRing( i ) ) ), iterations, offset,
3891 squareDistThreshold, maxAngleRads, true ).release() );
3892 }
3893 return resultPoly;
3894}
3895
3896QgsGeometry QgsGeometry::convertToPoint( bool destMultipart ) const
3897{
3898 switch ( type() )
3899 {
3901 {
3902 bool srcIsMultipart = isMultipart();
3903
3904 if ( ( destMultipart && srcIsMultipart ) ||
3905 ( !destMultipart && !srcIsMultipart ) )
3906 {
3907 // return a copy of the same geom
3908 return QgsGeometry( *this );
3909 }
3910 if ( destMultipart )
3911 {
3912 // layer is multipart => make a multipoint with a single point
3913 return fromMultiPointXY( QgsMultiPointXY() << asPoint() );
3914 }
3915 else
3916 {
3917 // destination is singlepart => make a single part if possible
3918 QgsMultiPointXY multiPoint = asMultiPoint();
3919 if ( multiPoint.count() == 1 )
3920 {
3921 return fromPointXY( multiPoint[0] );
3922 }
3923 }
3924 return QgsGeometry();
3925 }
3926
3928 {
3929 // only possible if destination is multipart
3930 if ( !destMultipart )
3931 return QgsGeometry();
3932
3933 // input geometry is multipart
3934 if ( isMultipart() )
3935 {
3936 const QgsMultiPolylineXY multiLine = asMultiPolyline();
3937 QgsMultiPointXY multiPoint;
3938 for ( const QgsPolylineXY &l : multiLine )
3939 for ( const QgsPointXY &p : l )
3940 multiPoint << p;
3941 return fromMultiPointXY( multiPoint );
3942 }
3943 // input geometry is not multipart: copy directly the line into a multipoint
3944 else
3945 {
3946 QgsPolylineXY line = asPolyline();
3947 if ( !line.isEmpty() )
3948 return fromMultiPointXY( line );
3949 }
3950 return QgsGeometry();
3951 }
3952
3954 {
3955 // can only transform if destination is multipoint
3956 if ( !destMultipart )
3957 return QgsGeometry();
3958
3959 // input geometry is multipart: make a multipoint from multipolygon
3960 if ( isMultipart() )
3961 {
3962 const QgsMultiPolygonXY multiPolygon = asMultiPolygon();
3963 QgsMultiPointXY multiPoint;
3964 for ( const QgsPolygonXY &poly : multiPolygon )
3965 for ( const QgsPolylineXY &line : poly )
3966 for ( const QgsPointXY &pt : line )
3967 multiPoint << pt;
3968 return fromMultiPointXY( multiPoint );
3969 }
3970 // input geometry is not multipart: make a multipoint from polygon
3971 else
3972 {
3973 const QgsPolygonXY polygon = asPolygon();
3974 QgsMultiPointXY multiPoint;
3975 for ( const QgsPolylineXY &line : polygon )
3976 for ( const QgsPointXY &pt : line )
3977 multiPoint << pt;
3978 return fromMultiPointXY( multiPoint );
3979 }
3980 }
3981
3982 default:
3983 return QgsGeometry();
3984 }
3985}
3986
3987QgsGeometry QgsGeometry::convertToLine( bool destMultipart ) const
3988{
3989 switch ( type() )
3990 {
3992 {
3993 if ( !isMultipart() )
3994 return QgsGeometry();
3995
3996 QgsMultiPointXY multiPoint = asMultiPoint();
3997 if ( multiPoint.count() < 2 )
3998 return QgsGeometry();
3999
4000 if ( destMultipart )
4001 return fromMultiPolylineXY( QgsMultiPolylineXY() << multiPoint );
4002 else
4003 return fromPolylineXY( multiPoint );
4004 }
4005
4007 {
4008 bool srcIsMultipart = isMultipart();
4009
4010 if ( ( destMultipart && srcIsMultipart ) ||
4011 ( !destMultipart && ! srcIsMultipart ) )
4012 {
4013 // return a copy of the same geom
4014 return QgsGeometry( *this );
4015 }
4016 if ( destMultipart )
4017 {
4018 // destination is multipart => makes a multipoint with a single line
4019 QgsPolylineXY line = asPolyline();
4020 if ( !line.isEmpty() )
4021 return fromMultiPolylineXY( QgsMultiPolylineXY() << line );
4022 }
4023 else
4024 {
4025 // destination is singlepart => make a single part if possible
4026 QgsMultiPolylineXY multiLine = asMultiPolyline();
4027 if ( multiLine.count() == 1 )
4028 return fromPolylineXY( multiLine[0] );
4029 }
4030 return QgsGeometry();
4031 }
4032
4034 {
4035 // input geometry is multipolygon
4036 if ( isMultipart() )
4037 {
4038 const QgsMultiPolygonXY multiPolygon = asMultiPolygon();
4039 QgsMultiPolylineXY multiLine;
4040 for ( const QgsPolygonXY &poly : multiPolygon )
4041 for ( const QgsPolylineXY &line : poly )
4042 multiLine << line;
4043
4044 if ( destMultipart )
4045 {
4046 // destination is multipart
4047 return fromMultiPolylineXY( multiLine );
4048 }
4049 else if ( multiLine.count() == 1 )
4050 {
4051 // destination is singlepart => make a single part if possible
4052 return fromPolylineXY( multiLine[0] );
4053 }
4054 }
4055 // input geometry is single polygon
4056 else
4057 {
4058 QgsPolygonXY polygon = asPolygon();
4059 // if polygon has rings
4060 if ( polygon.count() > 1 )
4061 {
4062 // cannot fit a polygon with rings in a single line layer
4063 // TODO: would it be better to remove rings?
4064 if ( destMultipart )
4065 {
4066 const QgsPolygonXY polygon = asPolygon();
4067 QgsMultiPolylineXY multiLine;
4068 multiLine.reserve( polygon.count() );
4069 for ( const QgsPolylineXY &line : polygon )
4070 multiLine << line;
4071 return fromMultiPolylineXY( multiLine );
4072 }
4073 }
4074 // no rings
4075 else if ( polygon.count() == 1 )
4076 {
4077 if ( destMultipart )
4078 {
4079 return fromMultiPolylineXY( polygon );
4080 }
4081 else
4082 {
4083 return fromPolylineXY( polygon[0] );
4084 }
4085 }
4086 }
4087 return QgsGeometry();
4088 }
4089
4090 default:
4091 return QgsGeometry();
4092 }
4093}
4094
4095QgsGeometry QgsGeometry::convertToPolygon( bool destMultipart ) const
4096{
4097 switch ( type() )
4098 {
4100 {
4101 if ( !isMultipart() )
4102 return QgsGeometry();
4103
4104 QgsMultiPointXY multiPoint = asMultiPoint();
4105 if ( multiPoint.count() < 3 )
4106 return QgsGeometry();
4107
4108 if ( multiPoint.last() != multiPoint.first() )
4109 multiPoint << multiPoint.first();
4110
4111 QgsPolygonXY polygon = QgsPolygonXY() << multiPoint;
4112 if ( destMultipart )
4113 return fromMultiPolygonXY( QgsMultiPolygonXY() << polygon );
4114 else
4115 return fromPolygonXY( polygon );
4116 }
4117
4119 {
4120 // input geometry is multiline
4121 if ( isMultipart() )
4122 {
4123 QgsMultiPolylineXY multiLine = asMultiPolyline();
4124 QgsMultiPolygonXY multiPolygon;
4125 for ( QgsMultiPolylineXY::iterator multiLineIt = multiLine.begin(); multiLineIt != multiLine.end(); ++multiLineIt )
4126 {
4127 // do not create polygon for a 1 segment line
4128 if ( ( *multiLineIt ).count() < 3 )
4129 return QgsGeometry();
4130 if ( ( *multiLineIt ).count() == 3 && ( *multiLineIt ).first() == ( *multiLineIt ).last() )
4131 return QgsGeometry();
4132
4133 // add closing node
4134 if ( ( *multiLineIt ).first() != ( *multiLineIt ).last() )
4135 *multiLineIt << ( *multiLineIt ).first();
4136 multiPolygon << ( QgsPolygonXY() << *multiLineIt );
4137 }
4138 // check that polygons were inserted
4139 if ( !multiPolygon.isEmpty() )
4140 {
4141 if ( destMultipart )
4142 {
4143 return fromMultiPolygonXY( multiPolygon );
4144 }
4145 else if ( multiPolygon.count() == 1 )
4146 {
4147 // destination is singlepart => make a single part if possible
4148 return fromPolygonXY( multiPolygon[0] );
4149 }
4150 }
4151 }
4152 // input geometry is single line
4153 else
4154 {
4155 QgsPolylineXY line = asPolyline();
4156
4157 // do not create polygon for a 1 segment line
4158 if ( line.count() < 3 )
4159 return QgsGeometry();
4160 if ( line.count() == 3 && line.first() == line.last() )
4161 return QgsGeometry();
4162
4163 // add closing node
4164 if ( line.first() != line.last() )
4165 line << line.first();
4166
4167 // destination is multipart
4168 if ( destMultipart )
4169 {
4170 return fromMultiPolygonXY( QgsMultiPolygonXY() << ( QgsPolygonXY() << line ) );
4171 }
4172 else
4173 {
4174 return fromPolygonXY( QgsPolygonXY() << line );
4175 }
4176 }
4177 return QgsGeometry();
4178 }
4179
4181 {
4182 bool srcIsMultipart = isMultipart();
4183
4184 if ( ( destMultipart && srcIsMultipart ) ||
4185 ( !destMultipart && ! srcIsMultipart ) )
4186 {
4187 // return a copy of the same geom
4188 return QgsGeometry( *this );
4189 }
4190 if ( destMultipart )
4191 {
4192 // destination is multipart => makes a multipoint with a single polygon
4193 QgsPolygonXY polygon = asPolygon();
4194 if ( !polygon.isEmpty() )
4195 return fromMultiPolygonXY( QgsMultiPolygonXY() << polygon );
4196 }
4197 else
4198 {
4199 QgsMultiPolygonXY multiPolygon = asMultiPolygon();
4200 if ( multiPolygon.count() == 1 )
4201 {
4202 // destination is singlepart => make a single part if possible
4203 return fromPolygonXY( multiPolygon[0] );
4204 }
4205 }
4206 return QgsGeometry();
4207 }
4208
4209 default:
4210 return QgsGeometry();
4211 }
4212}
4213
4215{
4216 return new QgsGeos( geometry );
4217}
4218
4219QDataStream &operator<<( QDataStream &out, const QgsGeometry &geometry )
4220{
4221 out << geometry.asWkb();
4222 return out;
4223}
4224
4225QDataStream &operator>>( QDataStream &in, QgsGeometry &geometry )
4226{
4227 QByteArray byteArray;
4228 in >> byteArray;
4229 if ( byteArray.isEmpty() )
4230 {
4231 geometry.set( nullptr );
4232 return in;
4233 }
4234
4235 geometry.fromWkb( byteArray );
4236 return in;
4237}
4238
4239
4241{
4242 return mMessage;
4243}
4244
4246{
4247 return mLocation;
4248}
4249
4251{
4252 return mHasLocation;
4253}
@ AllowSelfTouchingHoles
Indicates that self-touching holes are permitted. OGC validity states that self-touching holes are NO...
BufferSide
Side of line to buffer.
Definition qgis.h:1574
DashPatternSizeAdjustment
Dash pattern size adjustment options.
Definition qgis.h:2421
AngularDirection
Angular directions.
Definition qgis.h:2536
GeometryOperationResult
Success or failure of a geometry operation.
Definition qgis.h:1520
@ AddPartSelectedGeometryNotFound
The selected geometry cannot be found.
@ InvalidInputGeometryType
The input geometry (ring, part, split line, etc.) has not the correct geometry type.
@ Success
Operation succeeded.
@ SelectionIsEmpty
No features were selected.
@ GeometryTypeHasChanged
Operation has changed geometry type.
@ AddRingNotInExistingFeature
The input ring doesn't have any existing ring to fit into.
@ AddRingCrossesExistingRings
The input ring crosses existing rings (it is not disjoint)
@ AddPartNotMultiGeometry
The source geometry is not multi.
@ AddRingNotClosed
The input ring is not closed.
@ SelectionIsGreaterThanOne
More than one features were selected.
@ SplitCannotSplitPoint
Cannot split points.
@ GeometryEngineError
Geometry engine misses a method implemented or an error occurred in the geometry engine.
@ NothingHappened
Nothing happened, without any error.
@ InvalidBaseGeometry
The base geometry on which the operation is done is invalid or empty.
@ LayerNotEditable
Cannot edit layer.
@ AddRingNotValid
The input ring is not valid.
@ Segment
The actual start or end point of a segment.
GeometryValidationEngine
Available engines for validating geometries.
Definition qgis.h:1562
@ QgisInternal
Use internal QgsGeometryValidator method.
@ Geos
Use GEOS validation methods.
GeometryType
The geometry types are used to group Qgis::WkbType in a coarse way.
Definition qgis.h:255
@ Polygon
Polygons.
@ Unknown
Unknown types.
@ Null
No geometry.
JoinStyle
Join styles for buffers.
Definition qgis.h:1599
EndCapStyle
End cap styles for buffers.
Definition qgis.h:1586
DashPatternLineEndingRule
Dash pattern line ending rules.
Definition qgis.h:2406
MakeValidMethod
Algorithms to use when repairing invalid geometries.
Definition qgis.h:1612
WkbType
The WKB type describes the number of dimensions a geometry has.
Definition qgis.h:182
@ CompoundCurve
CompoundCurve.
@ LineString
LineString.
@ MultiPoint
MultiPoint.
@ Polygon
Polygon.
@ MultiPolygon
MultiPolygon.
@ NoGeometry
No geometry.
@ MultiLineString
MultiLineString.
@ Unknown
Unknown.
@ CircularString
CircularString.
@ GeometryCollection
GeometryCollection.
@ MultiCurve
MultiCurve.
@ CurvePolygon
CurvePolygon.
@ MultiSurface
MultiSurface.
TransformDirection
Flags for raster layer temporal capabilities.
Definition qgis.h:1937
The part_iterator class provides STL-style iterator for const references to geometry parts.
The part_iterator class provides STL-style iterator for geometry parts.
The vertex_iterator class provides STL-style iterator for vertices.
Abstract base class for all geometries.
virtual int ringCount(int part=0) const =0
Returns the number of rings of which this geometry is built.
virtual bool addZValue(double zValue=0)=0
Adds a z-dimension to the geometry, initialized to a preset value.
SegmentationToleranceType
Segmentation tolerance as maximum angle or maximum difference between approximation and circle.
virtual QgsAbstractGeometry * boundary() const =0
Returns the closure of the combinatorial boundary of the geometry (ie the topological boundary of the...
virtual bool dropMValue()=0
Drops any measure values which exist in the geometry.
virtual int vertexCount(int part=0, int ring=0) const =0
Returns the number of vertices of which this geometry is built.
bool isMeasure() const
Returns true if the geometry contains m values.
virtual QgsRectangle boundingBox() const
Returns the minimal bounding box for the geometry.
bool is3D() const
Returns true if the geometry is 3D and contains a z-value.
virtual QgsPoint vertexAt(QgsVertexId id) const =0
Returns the point corresponding to a specified vertex id.
virtual void adjacentVertices(QgsVertexId vertex, QgsVertexId &previousVertex, QgsVertexId &nextVertex) const =0
Returns the vertices adjacent to a specified vertex within a geometry.
virtual bool addMValue(double mValue=0)=0
Adds a measure to the geometry, initialized to a preset value.
Qgis::WkbType wkbType() const
Returns the WKB type of the geometry.
virtual double length() const
Returns the planar, 2-dimensional length of the geometry.
virtual bool dropZValue()=0
Drops any z-dimensions which exist in the geometry.
virtual QgsAbstractGeometry * clone() const =0
Clones the geometry by performing a deep copy.
A 3-dimensional box composed of x, y, z coordinates.
Definition qgsbox3d.h:44
double yMaximum() const
Returns the maximum y value.
Definition qgsbox3d.h:198
double xMinimum() const
Returns the minimum x value.
Definition qgsbox3d.h:163
double zMaximum() const
Returns the maximum z value.
Definition qgsbox3d.h:226
double xMaximum() const
Returns the maximum x value.
Definition qgsbox3d.h:170
QgsRectangle toRectangle() const
Converts the box to a 2D rectangle.
Definition qgsbox3d.h:339
bool is2d() const
Returns true if the box can be considered a 2-dimensional box, i.e.
Definition qgsbox3d.cpp:122
double zMinimum() const
Returns the minimum z value.
Definition qgsbox3d.h:219
double yMinimum() const
Returns the minimum y value.
Definition qgsbox3d.h:191
Circle geometry type.
Definition qgscircle.h:44
static QgsCircle from2Points(const QgsPoint &pt1, const QgsPoint &pt2)
Constructs a circle by 2 points on the circle.
Definition qgscircle.cpp:38
double radius() const
Returns the radius of the circle.
Definition qgscircle.h:311
bool contains(const QgsPoint &point, double epsilon=1E-8) const
Returns true if the circle contains the point.
QgsCircularString * toCircularString(bool oriented=false) const
Returns a circular string from the circle.
static QgsCircle minimalCircleFrom3Points(const QgsPoint &pt1, const QgsPoint &pt2, const QgsPoint &pt3, double epsilon=1E-8)
Constructs the smallest circle from 3 points.
Circular string geometry type.
static QgsCircularString fromTwoPointsAndCenter(const QgsPoint &p1, const QgsPoint &p2, const QgsPoint &center, bool useShortestArc=true)
Creates a circular string with a single arc representing the curve from p1 to p2 with the specified c...
Compound curve geometry type.
bool toggleCircularAtVertex(QgsVertexId position)
Converts the vertex at the given position from/to circular.
A const WKB pointer.
Definition qgswkbptr.h:138
Class for doing transforms between two map coordinate systems.
Curve polygon geometry type.
int numInteriorRings() const
Returns the number of interior rings contained with the curve polygon.
const QgsCurve * exteriorRing() const
Returns the curve polygon's exterior ring.
virtual QgsPolygon * toPolygon(double tolerance=M_PI_2/90, SegmentationToleranceType toleranceType=MaximumAngle) const
Returns a new polygon geometry corresponding to a segmentized approximation of the curve.
const QgsCurve * interiorRing(int i) const
Retrieves an interior ring from the curve polygon.
virtual void setExteriorRing(QgsCurve *ring)
Sets the exterior ring of the polygon.
virtual void addInteriorRing(QgsCurve *ring)
Adds an interior ring to the geometry (takes ownership)
bool removeInteriorRing(int ringIndex)
Removes an interior ring from the polygon.
Abstract base class for curved geometry type.
Definition qgscurve.h:36
virtual int numPoints() const =0
Returns the number of points in the curve.
QgsCurve * segmentize(double tolerance=M_PI_2/90, SegmentationToleranceType toleranceType=MaximumAngle) const override
Returns a geometry without curves.
Definition qgscurve.cpp:175
virtual QgsPoint * interpolatePoint(double distance) const =0
Returns an interpolated point on the curve at the specified distance.
QgsCurve * clone() const override=0
Clones the geometry by performing a deep copy.
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.
virtual QgsPolygon * toPolygon(unsigned int segments=36) const
Returns a segmented polygon.
QgsPoint center() const
Returns the center point.
Definition qgsellipse.h:121
Base class for feedback objects to be used for cancellation of something running in a worker thread.
Definition qgsfeedback.h:45
virtual bool insertGeometry(QgsAbstractGeometry *g, int index)
Inserts a geometry before a specified index and takes ownership.
virtual bool removeGeometry(int nr)
Removes a geometry from the collection.
QgsGeometryCollection * createEmptyWithSameType() const override
Creates a new geometry with the same class and same WKB type as the original and transfers ownership.
virtual bool addGeometry(QgsAbstractGeometry *g)
Adds a geometry and takes ownership. Returns true in case of success.
int partCount() const override
Returns count of parts contained in the geometry.
int numGeometries() const
Returns the number of geometries within the collection.
const QgsAbstractGeometry * geometryN(int n) const
Returns a const reference to a geometry from within the collection.
Java-style iterator for const traversal of parts of a geometry.
static Qgis::GeometryOperationResult addRing(QgsAbstractGeometry *geometry, std::unique_ptr< QgsCurve > ring)
Add an interior ring to a geometry.
static std::unique_ptr< QgsAbstractGeometry > avoidIntersections(const QgsAbstractGeometry &geom, const QList< QgsVectorLayer * > &avoidIntersectionsLayers, bool &haveInvalidGeometry, const QHash< QgsVectorLayer *, QSet< QgsFeatureId > > &ignoreFeatures=(QHash< QgsVectorLayer *, QSet< QgsFeatureId > >()))
Alters a geometry so that it avoids intersections with features from all open vector layers.
static bool deletePart(QgsAbstractGeometry *geom, int partNum)
Deletes a part from a geometry.
static bool deleteRing(QgsAbstractGeometry *geom, int ringNum, int partNum=0)
Deletes a ring from a geometry.
static Qgis::GeometryOperationResult addPart(QgsAbstractGeometry *geometry, std::unique_ptr< QgsAbstractGeometry > part)
Add a part to multi type geometry.
A geometry engine is a low-level representation of a QgsAbstractGeometry object, optimised for use wi...
EngineOperationResult
Success or failure of a geometry operation.
@ NothingHappened
Nothing happened, without any error.
@ InvalidBaseGeometry
The geometry on which the operation occurs is not valid.
@ InvalidInput
The input is not valid.
@ NodedGeometryError
Error occurred while creating a noded geometry.
@ EngineError
Error occurred in the geometry engine.
@ SplitCannotSplitPoint
Points cannot be split.
@ Success
Operation succeeded.
@ MethodNotImplemented
Method not implemented in geometry engine.
static std::unique_ptr< QgsMultiPolygon > fromMultiPolygonXY(const QgsMultiPolygonXY &multipoly)
Construct geometry from a multipolygon.
static std::unique_ptr< QgsAbstractGeometry > geomFromWkb(QgsConstWkbPtr &wkb)
Construct geometry from a WKB string.
static std::unique_ptr< QgsGeometryCollection > createCollectionOfType(Qgis::WkbType type)
Returns a new geometry collection matching a specified WKB type.
static std::unique_ptr< QgsAbstractGeometry > fromPolylineXY(const QgsPolylineXY &polyline)
Construct geometry from a polyline.
static std::unique_ptr< QgsMultiPoint > fromMultiPointXY(const QgsMultiPointXY &multipoint)
Construct geometry from a multipoint.
static std::unique_ptr< QgsAbstractGeometry > geomFromWkt(const QString &text)
Construct geometry from a WKT string.
static std::unique_ptr< QgsMultiLineString > fromMultiPolylineXY(const QgsMultiPolylineXY &multiline)
Construct geometry from a multipolyline.
static std::unique_ptr< QgsAbstractGeometry > fromPointXY(const QgsPointXY &point)
Construct geometry from a point.
static std::unique_ptr< QgsPolygon > fromPolygonXY(const QgsPolygonXY &polygon)
Construct geometry from a polygon.
static std::unique_ptr< QgsAbstractGeometry > geomFromWkbType(Qgis::WkbType t)
Returns empty geometry from wkb type.
Encapsulates parameters under which a geometry operation is performed.
Java-style iterator for traversal of parts of a geometry.
static double sqrDistance2D(const QgsPoint &pt1, const QgsPoint &pt2)
Returns the squared 2D distance between two points.
static QgsPointXY interpolatePointOnLine(double x1, double y1, double x2, double y2, double fraction)
Interpolates the position of a point a fraction of the way along the line from (x1,...
static bool verticesAtDistance(const QgsAbstractGeometry &geometry, double distance, QgsVertexId &previousVertex, QgsVertexId &nextVertex)
Retrieves the vertices which are before and after the interpolated point at a specified distance alon...
static double distanceToVertex(const QgsAbstractGeometry &geom, QgsVertexId id)
Returns the distance along a geometry from its first vertex to the specified vertex.
static double lineAngle(double x1, double y1, double x2, double y2)
Calculates the direction of line joining two points in radians, clockwise from the north direction.
static QgsPoint closestVertex(const QgsAbstractGeometry &geom, const QgsPoint &pt, QgsVertexId &id)
Returns the closest vertex to a geometry for a specified point.
static double angleBetweenThreePoints(double x1, double y1, double x2, double y2, double x3, double y3)
Calculates the angle between the lines AB and BC, where AB and BC described by points a,...
static double averageAngle(double x1, double y1, double x2, double y2, double x3, double y3)
Calculates the average angle (in radians) between the two linear segments from (x1,...
static void validateGeometry(const QgsGeometry &geometry, QVector< QgsGeometry::Error > &errors, Qgis::GeometryValidationEngine method=Qgis::GeometryValidationEngine::QgisInternal)
Validate geometry and produce a list of geometry errors.
A geometry error.
bool hasWhere() const
true if the location available from
QgsPointXY where() const
The coordinates at which the error is located and should be visualized.
QString what() const
A human readable error message containing details about the error.
A geometry is the spatial representation of a feature.
QPolygonF asQPolygonF() const
Returns contents of the geometry as a QPolygonF.
bool deleteRing(int ringNum, int partNum=0)
Deletes a ring in polygon or multipolygon.
QVector< QgsPointXY > randomPointsInPolygon(int count, const std::function< bool(const QgsPointXY &) > &acceptPoint, unsigned long seed=0, QgsFeedback *feedback=nullptr, int maxTriesPerPoint=0) const
Returns a list of count random points generated inside a (multi)polygon geometry (if acceptPoint is s...
double hausdorffDistanceDensify(const QgsGeometry &geom, double densifyFraction) const
Returns the Hausdorff distance between this geometry and geom.
QgsGeometry densifyByCount(int extraNodesPerSegment) const
Returns a copy of the geometry which has been densified by adding the specified number of extra nodes...
QgsGeometry clipped(const QgsRectangle &rectangle)
Clips the geometry using the specified rectangle.
static QgsGeometry fromRect(const QgsRectangle &rect)
Creates a new geometry from a QgsRectangle.
double lineLocatePoint(const QgsGeometry &point) const
Returns a distance representing the location along this linestring of the closest point on this lines...
QVector< QgsGeometry > coerceToType(Qgis::WkbType type, double defaultZ=0, double defaultM=0) const
Attempts to coerce this geometry into the specified destination type.
int makeDifferenceInPlace(const QgsGeometry &other)
Changes this geometry such that it does not intersect the other geometry.
void adjacentVertices(int atVertex, int &beforeVertex, int &afterVertex) const
Returns the indexes of the vertices before and after the given vertex index.
QgsMultiPolygonXY asMultiPolygon() const
Returns the contents of the geometry as a multi-polygon.
QgsGeometry difference(const QgsGeometry &geometry, const QgsGeometryParameters &parameters=QgsGeometryParameters()) const
Returns a geometry representing the points making up this geometry that do not make up other.
bool deleteVertex(int atVertex)
Deletes the vertex at the given position number and item (first number is index 0)
double length() const
Returns the planar, 2-dimensional length of geometry.
QgsGeometry offsetCurve(double distance, int segments, Qgis::JoinStyle joinStyle, double miterLimit) const
Returns an offset line at a given distance and side from an input line.
static bool compare(const QgsPolylineXY &p1, const QgsPolylineXY &p2, double epsilon=4 *std::numeric_limits< double >::epsilon())
Compares two polylines for equality within a specified tolerance.
QgsVertexIterator vertices() const
Returns a read-only, Java-style iterator for traversal of vertices of all the geometry,...
QgsGeometry densifyByDistance(double distance) const
Densifies the geometry by adding regularly placed extra nodes inside each segment so that the maximum...
QgsGeometry poleOfInaccessibility(double precision, double *distanceToBoundary=nullptr) const
Calculates the approximate pole of inaccessibility for a surface, which is the most distant internal ...
QgsAbstractGeometry::const_part_iterator const_parts_begin() const
Returns STL-style const iterator pointing to the first part of the geometry.
QgsGeometry squareWaves(double wavelength, double amplitude, bool strictWavelength=false) const
Constructs square waves along the boundary of the geometry, with the specified wavelength and amplitu...
static QgsGeometry fromQPointF(QPointF point)
Construct geometry from a QPointF.
static QgsGeometry polygonize(const QVector< QgsGeometry > &geometries)
Creates a GeometryCollection geometry containing possible polygons formed from the constituent linewo...
QgsGeometry triangularWaves(double wavelength, double amplitude, bool strictWavelength=false) const
Constructs triangular waves along the boundary of the geometry, with the specified wavelength and amp...
bool boundingBoxIntersects(const QgsRectangle &rectangle) const
Returns true if the bounding box of this geometry intersects with a rectangle.
bool vertexIdFromVertexNr(int number, QgsVertexId &id) const
Calculates the vertex ID from a vertex number.
QgsGeometry pointOnSurface() const
Returns a point guaranteed to lie on the surface of a geometry.
bool touches(const QgsGeometry &geometry) const
Returns true if the geometry touches another geometry.
void transformVertices(const std::function< QgsPoint(const QgsPoint &) > &transform)
Transforms the vertices from the geometry in place, applying the transform function to every vertex.
QgsGeometry minimumWidth() const
Returns a linestring geometry which represents the minimum diameter of the geometry.
QgsGeometry applyDashPattern(const QVector< double > &pattern, Qgis::DashPatternLineEndingRule startRule=Qgis::DashPatternLineEndingRule::NoRule, Qgis::DashPatternLineEndingRule endRule=Qgis::DashPatternLineEndingRule::NoRule, Qgis::DashPatternSizeAdjustment adjustment=Qgis::DashPatternSizeAdjustment::ScaleBothDashAndGap, double patternOffset=0) const
Applies a dash pattern to a geometry, returning a MultiLineString geometry which is the input geometr...
QgsGeometry roundWaves(double wavelength, double amplitude, bool strictWavelength=false) const
Constructs rounded (sine-like) waves along the boundary of the geometry, with the specified wavelengt...
QgsGeometry nearestPoint(const QgsGeometry &other) const
Returns the nearest (closest) point on this geometry to another geometry.
QgsGeometry makeDifference(const QgsGeometry &other) const
Returns the geometry formed by modifying this geometry such that it does not intersect the other geom...
static QgsGeometry collectGeometry(const QVector< QgsGeometry > &geometries)
Creates a new multipart geometry from a list of QgsGeometry objects.
static QgsGeometry fromMultiPolylineXY(const QgsMultiPolylineXY &multiline)
Creates a new geometry from a QgsMultiPolylineXY object.
QgsGeometry makeValid(Qgis::MakeValidMethod method=Qgis::MakeValidMethod::Linework, bool keepCollapsed=false) const
Attempts to make an invalid geometry valid without losing vertices.
double frechetDistance(const QgsGeometry &geom) const
Returns the Fréchet distance between this geometry and geom, restricted to discrete points for both g...
QString lastError() const
Returns an error string referring to the last error encountered either when this geometry was created...
QgsGeometry convertToType(Qgis::GeometryType destType, bool destMultipart=false) const
Try to convert the geometry to the requested type.
QgsGeometry combine(const QgsGeometry &geometry, const QgsGeometryParameters &parameters=QgsGeometryParameters()) const
Returns a geometry representing all the points in this geometry and other (a union geometry operation...
bool isAxisParallelRectangle(double maximumDeviation, bool simpleRectanglesOnly=false) const
Returns true if the geometry is a polygon that is almost an axis-parallel rectangle.
static QgsGeometry fromQPolygonF(const QPolygonF &polygon)
Construct geometry from a QPolygonF.
QgsGeometry variableWidthBufferByM(int segments) const
Calculates a variable width buffer for a (multi)linestring geometry, where the width at each node is ...
Qgis::GeometryOperationResult transform(const QgsCoordinateTransform &ct, Qgis::TransformDirection direction=Qgis::TransformDirection::Forward, bool transformZ=false)
Transforms this geometry as described by the coordinate transform ct.
static QgsGeometry fromPolylineXY(const QgsPolylineXY &polyline)
Creates a new LineString geometry from a list of QgsPointXY points.
QgsMultiPointXY asMultiPoint() const
Returns the contents of the geometry as a multi-point.
QgsPoint vertexAt(int atVertex) const
Returns coordinates of a vertex.
QgsPointXY closestVertex(const QgsPointXY &point, int &closestVertexIndex, int &previousVertexIndex, int &nextVertexIndex, double &sqrDist) const
Returns the vertex closest to the given point, the corresponding vertex index, squared distance snap ...
void normalize()
Reorganizes the geometry into a normalized form (or "canonical" form).
int wkbSize(QgsAbstractGeometry::WkbFlags flags=QgsAbstractGeometry::WkbFlags()) const
Returns the length of the QByteArray returned by asWkb()
QgsPolygonXY asPolygon() const
Returns the contents of the geometry as a polygon.
bool disjoint(const QgsGeometry &geometry) const
Returns true if the geometry is disjoint of another geometry.
QVector< QgsGeometry > asGeometryCollection() const
Returns contents of the geometry as a list of geometries.
QgsGeometry roundWavesRandomized(double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed=0) const
Constructs randomized rounded (sine-like) waves along the boundary of the geometry,...
double distance(const QgsGeometry &geom) const
Returns the minimum distance between this geometry and another geometry.
QgsGeometry interpolate(double distance) const
Returns an interpolated point on the geometry at the specified distance.
QgsGeometry extrude(double x, double y)
Returns an extruded version of this geometry.
static Q_DECL_DEPRECATED QgsPolylineXY createPolylineFromQPolygonF(const QPolygonF &polygon)
Creates a QgsPolylineXY from a QPolygonF.
void mapToPixel(const QgsMapToPixel &mtp)
Transforms the geometry from map units to pixels in place.
static QgsGeometry fromMultiPointXY(const QgsMultiPointXY &multipoint)
Creates a new geometry from a QgsMultiPointXY object.
QgsGeometry singleSidedBuffer(double distance, int segments, Qgis::BufferSide side, Qgis::JoinStyle joinStyle=Qgis::JoinStyle::Round, double miterLimit=2.0) const
Returns a single sided buffer for a (multi)line geometry.
QgsAbstractGeometry * get()
Returns a modifiable (non-const) reference to the underlying abstract geometry primitive.
QgsBox3D boundingBox3D() const
Returns the 3D bounding box of the geometry.
const QgsAbstractGeometry * constGet() const
Returns a non-modifiable (const) reference to the underlying abstract geometry primitive.
QgsGeometry subdivide(int maxNodes=256, const QgsGeometryParameters &parameters=QgsGeometryParameters()) const
Subdivides the geometry.
bool contains(const QgsPointXY *p) const
Returns true if the geometry contains the point p.
QgsPolylineXY asPolyline() const
Returns the contents of the geometry as a polyline.
QgsAbstractGeometry::part_iterator parts_begin()
Returns STL-style iterator pointing to the first part of the geometry.
QgsGeometry forceRHR() const
Forces geometries to respect the Right-Hand-Rule, in which the area that is bounded by a polygon is t...
QgsPointXY asPoint() const
Returns the contents of the geometry as a 2-dimensional point.
QgsGeometry snappedToGrid(double hSpacing, double vSpacing, double dSpacing=0, double mSpacing=0) const
Returns a new geometry with all points or vertices snapped to the closest point of the grid.
virtual json asJsonObject(int precision=17) const
Exports the geometry to a json object.
void filterVertices(const std::function< bool(const QgsPoint &) > &filter)
Filters the vertices from the geometry in place, removing any which do not return true for the filter...
bool equals(const QgsGeometry &geometry) const
Test if this geometry is exactly equal to another geometry.
bool isGeosValid(Qgis::GeometryValidityFlags flags=Qgis::GeometryValidityFlags()) const
Checks validity of the geometry using GEOS.
bool insertVertex(double x, double y, int beforeVertex)
Insert a new vertex before the given vertex index, ring and item (first number is index 0) If the req...
static QgsGeometry fromPointXY(const QgsPointXY &point)
Creates a new geometry from a QgsPointXY object.
static Q_DECL_DEPRECATED QgsPolygonXY createPolygonFromQPolygonF(const QPolygonF &polygon)
Creates a QgsPolygonXYfrom a QPolygonF.
bool convertToSingleType()
Converts multi type geometry into single type geometry e.g.
Qgis::GeometryOperationResult addRing(const QVector< QgsPointXY > &ring)
Adds a new ring to this geometry.
Qgis::GeometryType type
bool requiresConversionToStraightSegments() const
Returns true if the geometry is a curved geometry type which requires conversion to display as straig...
bool isSimple() const
Determines whether the geometry is simple (according to OGC definition), i.e.
static QgsGeometry fromPolyline(const QgsPolyline &polyline)
Creates a new LineString geometry from a list of QgsPoint points.
void validateGeometry(QVector< QgsGeometry::Error > &errors, Qgis::GeometryValidationEngine method=Qgis::GeometryValidationEngine::QgisInternal, Qgis::GeometryValidityFlags flags=Qgis::GeometryValidityFlags()) const
Validates geometry and produces a list of geometry errors.
QgsMultiPolylineXY asMultiPolyline() const
Returns the contents of the geometry as a multi-linestring.
QgsGeometry taperedBuffer(double startWidth, double endWidth, int segments) const
Calculates a variable width buffer ("tapered buffer") for a (multi)curve geometry.
Qgis::GeometryOperationResult avoidIntersectionsV2(const QList< QgsVectorLayer * > &avoidIntersectionsLayers, const QHash< QgsVectorLayer *, QSet< QgsFeatureId > > &ignoreFeatures=(QHash< QgsVectorLayer *, QSet< QgsFeatureId > >()))
Modifies geometry to avoid intersections with the layers specified in project properties.
bool within(const QgsGeometry &geometry) const
Returns true if the geometry is completely within another geometry.
QPointF asQPointF() const
Returns contents of the geometry as a QPointF if wkbType is WKBPoint, otherwise returns a null QPoint...
void convertToStraightSegment(double tolerance=M_PI/180., QgsAbstractGeometry::SegmentationToleranceType toleranceType=QgsAbstractGeometry::MaximumAngle)
Converts the geometry to straight line segments, if it is a curved geometry type.
double area() const
Returns the planar, 2-dimensional area of the geometry.
bool isMultipart() const
Returns true if WKB of the geometry is of WKBMulti* type.
QgsGeometry centroid() const
Returns the center of mass of a geometry.
bool crosses(const QgsGeometry &geometry) const
Returns true if the geometry crosses another geometry.
QgsGeometry & operator=(QgsGeometry const &rhs)
Creates a deep copy of the object.
QgsGeometry orthogonalize(double tolerance=1.0E-8, int maxIterations=1000, double angleThreshold=15.0) const
Attempts to orthogonalize a line or polygon geometry by shifting vertices to make the geometries angl...
static QgsGeometryEngine * createGeometryEngine(const QgsAbstractGeometry *geometry)
Creates and returns a new geometry engine representing the specified geometry.
double hausdorffDistance(const QgsGeometry &geom) const
Returns the Hausdorff distance between this geometry and geom.
QgsGeometry largestEmptyCircle(double tolerance, const QgsGeometry &boundary=QgsGeometry()) const
Constructs the Largest Empty Circle for a set of obstacle geometries, up to a specified tolerance.
Qgis::GeometryOperationResult addPart(const QVector< QgsPointXY > &points, Qgis::GeometryType geomType=Qgis::GeometryType::Unknown)
Adds a new part to a the geometry.
QgsGeometryPartIterator parts()
Returns Java-style iterator for traversal of parts of the geometry.
QgsGeometry convertToCurves(double distanceTolerance=1e-8, double angleTolerance=1e-8) const
Attempts to convert a non-curved geometry into a curved geometry type (e.g.
QgsGeometry concaveHull(double targetPercent, bool allowHoles=false) const
Returns a possibly concave polygon that contains all the points in the geometry.
QgsGeometry voronoiDiagram(const QgsGeometry &extent=QgsGeometry(), double tolerance=0.0, bool edgesOnly=false) const
Creates a Voronoi diagram for the nodes contained within the geometry.
void set(QgsAbstractGeometry *geometry)
Sets the underlying geometry store.
QgsGeometry convexHull() const
Returns the smallest convex polygon that contains all the points in the geometry.
QgsGeometry minimumClearanceLine() const
Returns a LineString whose endpoints define the minimum clearance of a geometry.
QgsGeometry sharedPaths(const QgsGeometry &other) const
Find paths shared between the two given lineal geometries (this and other).
virtual ~QgsGeometry()
static QgsGeometry fromPolygonXY(const QgsPolygonXY &polygon)
Creates a new geometry from a QgsPolygonXY.
double sqrDistToVertexAt(QgsPointXY &point, int atVertex) const
Returns the squared Cartesian distance between the given point to the given vertex index (vertex at t...
void fromWkb(unsigned char *wkb, int length)
Set the geometry, feeding in the buffer containing OGC Well-Known Binary and the buffer's length.
QgsGeometry intersection(const QgsGeometry &geometry, const QgsGeometryParameters &parameters=QgsGeometryParameters()) const
Returns a geometry representing the points shared by this geometry and other.
QgsGeometry symDifference(const QgsGeometry &geometry, const QgsGeometryParameters &parameters=QgsGeometryParameters()) const
Returns a geometry representing the points making up this geometry that do not make up other.
QgsGeometry minimalEnclosingCircle(QgsPointXY &center, double &radius, unsigned int segments=36) const
Returns the minimal enclosing circle for the geometry.
QgsGeometry mergeLines() const
Merges any connected lines in a LineString/MultiLineString geometry and converts them to single line ...
static QgsGeometry fromMultiPolygonXY(const QgsMultiPolygonXY &multipoly)
Creates a new geometry from a QgsMultiPolygonXY.
QgsGeometry buffer(double distance, int segments) const
Returns a buffer region around this geometry having the given width and with a specified number of se...
bool isEmpty() const
Returns true if the geometry is empty (eg a linestring with no vertices, or a collection with no geom...
QgsGeometry node() const
Returns a (Multi)LineString representing the fully noded version of a collection of linestrings.
double distanceToVertex(int vertex) const
Returns the distance along this geometry from its first vertex to the specified vertex.
int vertexNrFromVertexId(QgsVertexId id) const
Returns the vertex number corresponding to a vertex id.
QgsAbstractGeometry::const_part_iterator const_parts_end() const
Returns STL-style iterator pointing to the imaginary part after the last part of the geometry.
bool removeDuplicateNodes(double epsilon=4 *std::numeric_limits< double >::epsilon(), bool useZValues=false)
Removes duplicate nodes from the geometry, wherever removing the nodes does not result in a degenerat...
bool convertGeometryCollectionToSubclass(Qgis::GeometryType geomType)
Converts geometry collection to a the desired geometry type subclass (multi-point,...
QgsAbstractGeometry::part_iterator parts_end()
Returns STL-style iterator pointing to the imaginary part after the last part of the geometry.
QgsAbstractGeometry::vertex_iterator vertices_begin() const
Returns STL-style iterator pointing to the first vertex of the geometry.
QgsGeometry forcePolygonClockwise() const
Forces geometries to respect the exterior ring is clockwise, interior rings are counter-clockwise con...
bool convertToMultiType()
Converts single type geometry into multitype geometry e.g.
QString asJson(int precision=17) const
Exports the geometry to a GeoJSON string.
static QgsGeometry createWedgeBuffer(const QgsPoint &center, double azimuth, double angularWidth, double outerRadius, double innerRadius=0)
Creates a wedge shaped buffer from a center point.
double frechetDistanceDensify(const QgsGeometry &geom, double densifyFraction) const
Returns the Fréchet distance between this geometry and geom, restricted to discrete points for both g...
QByteArray asWkb(QgsAbstractGeometry::WkbFlags flags=QgsAbstractGeometry::WkbFlags()) const
Export the geometry to WKB.
QgsGeometry extendLine(double startDistance, double endDistance) const
Extends a (multi)line geometry by extrapolating out the start or end of the line by a specified dista...
static QgsGeometry unaryUnion(const QVector< QgsGeometry > &geometries, const QgsGeometryParameters &parameters=QgsGeometryParameters())
Compute the unary union on a list of geometries.
bool convertToCurvedMultiType()
Converts a geometry into a multitype geometry of curve kind (when there is a corresponding curve type...
static void convertPointList(const QVector< QgsPointXY > &input, QgsPointSequence &output)
Upgrades a point list from QgsPointXY to QgsPoint.
QgsGeometry orientedMinimumBoundingBox() const
Returns the oriented minimum bounding box for the geometry, which is the smallest (by area) rotated r...
QgsGeometry triangularWavesRandomized(double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed=0) const
Constructs randomized triangular waves along the boundary of the geometry, with the specified wavelen...
QgsGeometry squareWavesRandomized(double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed=0) const
Constructs randomized square waves along the boundary of the geometry, with the specified wavelength ...
QgsGeometryConstPartIterator constParts() const
Returns Java-style iterator for traversal of parts of the geometry.
QgsGeometry simplify(double tolerance) const
Returns a simplified version of this geometry using a specified tolerance value.
QgsRectangle boundingBox() const
Returns the bounding box of the geometry.
double minimumClearance() const
Computes the minimum clearance of a geometry.
Qgis::GeometryOperationResult rotate(double rotation, const QgsPointXY &center)
Rotate this geometry around the Z axis.
Qgis::GeometryOperationResult translate(double dx, double dy, double dz=0.0, double dm=0.0)
Translates this geometry by dx, dy, dz and dm.
double interpolateAngle(double distance) const
Returns the angle parallel to the linestring or polygon boundary at the specified distance along the ...
double angleAtVertex(int vertex) const
Returns the bisector angle for this geometry at the specified vertex.
Qgis::GeometryOperationResult reshapeGeometry(const QgsLineString &reshapeLineString)
Replaces a part of this geometry with another line.
double closestVertexWithContext(const QgsPointXY &point, int &atVertex) const
Searches for the closest vertex in this geometry to the given point.
QgsGeometry delaunayTriangulation(double tolerance=0.0, bool edgesOnly=false) const
Returns the Delaunay triangulation for the vertices of the geometry.
void draw(QPainter &p) const
Draws the geometry onto a QPainter.
QgsGeometry smooth(unsigned int iterations=1, double offset=0.25, double minimumDistance=-1.0, double maxAngle=180.0) const
Smooths a geometry by rounding off corners using the Chaikin algorithm.
QgsGeometry forcePolygonCounterClockwise() const
Forces geometries to respect the exterior ring is counter-clockwise, interior rings are clockwise con...
QString asWkt(int precision=17) const
Exports the geometry to WKT.
Q_DECL_DEPRECATED Qgis::GeometryOperationResult splitGeometry(const QVector< QgsPointXY > &splitLine, QVector< QgsGeometry > &newGeometries, bool topological, QVector< QgsPointXY > &topologyTestPoints, bool splitFeature=true)
Splits this geometry according to a given line.
bool toggleCircularAtVertex(int atVertex)
Converts the vertex at the given position from/to circular.
Qgis::WkbType wkbType() const
Returns type of the geometry as a WKB type (point / linestring / polygon etc.)
bool moveVertex(double x, double y, int atVertex)
Moves the vertex at the given position number and item (first number is index 0) to the given coordin...
QgsGeometry()
Constructor.
bool isGeosEqual(const QgsGeometry &) const
Compares the geometry with another geometry using GEOS.
double closestSegmentWithContext(const QgsPointXY &point, QgsPointXY &minDistPoint, int &nextVertexIndex, int *leftOrRightOfSegment=nullptr, double epsilon=DEFAULT_SEGMENT_EPSILON) const
Searches for the closest segment of geometry to the given point.
bool intersects(const QgsRectangle &rectangle) const
Returns true if this geometry exactly intersects with a rectangle.
static QgsGeometry fromBox3D(const QgsBox3D &box)
Creates a new geometry from a QgsBox3D object.
QgsAbstractGeometry::vertex_iterator vertices_end() const
Returns STL-style iterator pointing to the imaginary vertex after the last vertex of the geometry.
bool deletePart(int partNum)
Deletes part identified by the part number.
QgsGeometry removeInteriorRings(double minimumAllowedArea=-1) const
Removes the interior rings from a (multi)polygon geometry.
static QgsGeometry fromPoint(const QgsPoint &point)
Creates a new geometry from a QgsPoint object.
bool overlaps(const QgsGeometry &geometry) const
Returns true if the geometry overlaps another geometry.
Q_DECL_DEPRECATED int avoidIntersections(const QList< QgsVectorLayer * > &avoidIntersectionsLayers, const QHash< QgsVectorLayer *, QSet< QgsFeatureId > > &ignoreFeatures=(QHash< QgsVectorLayer *, QSet< QgsFeatureId > >()))
Modifies geometry to avoid intersections with the layers specified in project properties.
QgsGeometry shortestLine(const QgsGeometry &other) const
Returns the shortest line joining this geometry to another geometry.
Does vector analysis using the geos library and handles import, export, exception handling*.
Definition qgsgeos.h:99
double hausdorffDistanceDensify(const QgsAbstractGeometry *geom, double densifyFraction, QString *errorMsg=nullptr) const
Returns the Hausdorff distance between this geometry and geom.
Definition qgsgeos.cpp:660
double hausdorffDistance(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const
Returns the Hausdorff distance between this geometry and geom.
Definition qgsgeos.cpp:637
QgsAbstractGeometry * buffer(double distance, int segments, QString *errorMsg=nullptr) const override
Definition qgsgeos.cpp:1876
double distance(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const override
Calculates the distance between this and geom.
Definition qgsgeos.cpp:507
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:2889
double frechetDistance(const QgsAbstractGeometry *geom, QString *errorMsg=nullptr) const
Returns the Fréchet distance between this geometry and geom, restricted to discrete points for both g...
Definition qgsgeos.cpp:683
double frechetDistanceDensify(const QgsAbstractGeometry *geom, double densifyFraction, QString *errorMsg=nullptr) const
Returns the Fréchet distance between this geometry and geom, restricted to discrete points for both g...
Definition qgsgeos.cpp:706
This class offers geometry processing methods.
QgsGeometry triangularWavesRandomized(double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed=0) const
Constructs randomized triangular waves along the boundary of the geometry, with the specified wavelen...
QgsGeometry triangularWaves(double wavelength, double amplitude, bool strictWavelength=false) const
Constructs triangular waves along the boundary of the geometry, with the specified wavelength and amp...
QgsGeometry roundWaves(double wavelength, double amplitude, bool strictWavelength=false) const
Constructs rounded (sine-like) waves along the boundary of the geometry, with the specified wavelengt...
QgsGeometry poleOfInaccessibility(double precision, double *distanceFromBoundary=nullptr) const
Calculates the approximate pole of inaccessibility for a surface, which is the most distant internal ...
QgsGeometry squareWaves(double wavelength, double amplitude, bool strictWavelength=false) const
Constructs square waves along the boundary of the geometry, with the specified wavelength and amplitu...
QgsGeometry variableWidthBufferByM(int segments) const
Calculates a variable width buffer using the m-values from a (multi)line geometry.
QgsGeometry extrude(double x, double y) const
Will extrude a line or (segmentized) curve by a given offset and return a polygon representation of i...
QgsGeometry roundWavesRandomized(double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed=0) const
Constructs randomized rounded (sine-like) waves along the boundary of the geometry,...
QgsGeometry orthogonalize(double tolerance=1.0E-8, int maxIterations=1000, double angleThreshold=15.0) const
Attempts to orthogonalize a line or polygon geometry by shifting vertices to make the geometries angl...
QString lastError() const
Returns an error string referring to the last error encountered.
QgsGeometry orientedMinimumBoundingBox(double &area, double &angle, double &width, double &height) const
Returns the oriented minimum bounding box for the geometry, which is the smallest (by area) rotated r...
QgsGeometry densifyByDistance(double distance) const
Densifies the geometry by adding regularly placed extra nodes inside each segment so that the maximum...
QgsGeometry taperedBuffer(double startWidth, double endWidth, int segments) const
Calculates a tapered width buffer for a (multi)curve geometry.
QgsGeometry densifyByCount(int extraNodesPerSegment) const
Densifies the geometry by adding the specified number of extra nodes within each segment of the geome...
QgsGeometry applyDashPattern(const QVector< double > &pattern, Qgis::DashPatternLineEndingRule startRule=Qgis::DashPatternLineEndingRule::NoRule, Qgis::DashPatternLineEndingRule endRule=Qgis::DashPatternLineEndingRule::NoRule, Qgis::DashPatternSizeAdjustment adjustment=Qgis::DashPatternSizeAdjustment::ScaleBothDashAndGap, double patternOffset=0) const
Applies a dash pattern to a geometry, returning a MultiLineString geometry which is the input geometr...
static QVector< QgsPointXY > randomPointsInPolygon(const QgsGeometry &polygon, int count, const std::function< bool(const QgsPointXY &) > &acceptPoint, unsigned long seed=0, QgsFeedback *feedback=nullptr, int maxTriesPerPoint=0)
Returns a list of count random points generated inside a polygon geometry (if acceptPoint is specifie...
QgsGeometry squareWavesRandomized(double minimumWavelength, double maximumWavelength, double minimumAmplitude, double maximumAmplitude, unsigned long seed=0) const
Constructs randomized square waves along the boundary of the geometry, with the specified wavelength ...
QgsGeometry convertToCurves(double distanceTolerance, double angleTolerance) const
Attempts to convert a non-curved geometry into a curved geometry type (e.g.
bool isAxisParallelRectangle(double maximumDeviation, bool simpleRectanglesOnly=false) const
Returns true if the geometry is a polygon that is almost an axis-parallel rectangle.
Line string geometry type, with support for z-dimension and m-values.
const double * yData() const
Returns a const pointer to the y vertex data.
const double * xData() const
Returns a const pointer to the x vertex data.
int numPoints() const override
Returns the number of points in the curve.
static QgsLineString * fromQPolygonF(const QPolygonF &polygon)
Returns a new linestring from a QPolygonF polygon input.
QgsLineString * clone() const override
Clones the geometry by performing a deep copy.
Perform transforms between map coordinates and device coordinates.
QgsPointXY transform(const QgsPointXY &p) const
Transforms a point p from map (world) coordinates to device coordinates.
Multi line string geometry collection.
QgsLineString * lineStringN(int index)
Returns the line string with the specified index.
Multi point geometry collection.
QgsPoint * pointN(int index)
Returns the point with the specified index.
Multi polygon geometry collection.
QgsPolygon * polygonN(int index)
Returns the polygon with the specified index.
A class to represent a 2D point.
Definition qgspointxy.h:59
void setY(double y)
Sets the y value of the point.
Definition qgspointxy.h:132
double y
Definition qgspointxy.h:63
double x
Definition qgspointxy.h:62
void setX(double x)
Sets the x value of the point.
Definition qgspointxy.h:122
QPointF toQPointF() const
Converts a point to a QPointF.
Definition qgspointxy.h:169
Point geometry type, with support for z-dimension and m-values.
Definition qgspoint.h:49
void setX(double x)
Sets the point's x-coordinate.
Definition qgspoint.h:280
QgsPoint * clone() const override
Clones the geometry by performing a deep copy.
Definition qgspoint.cpp:105
double x
Definition qgspoint.h:52
QgsPoint project(double distance, double azimuth, double inclination=90.0) const
Returns a new point which corresponds to this point projected by a specified distance with specified ...
Definition qgspoint.cpp:741
double y
Definition qgspoint.h:53
Polygon geometry type.
Definition qgspolygon.h:34
A rectangle specified with double values.
double xMinimum() const
Returns the x minimum value (left side of rectangle).
double yMinimum() const
Returns the y minimum value (bottom side of rectangle).
double xMaximum() const
Returns the x maximum value (right side of rectangle).
bool isNull() const
Test if the rectangle is null (holding no spatial information).
double yMaximum() const
Returns the y maximum value (top side of rectangle).
bool isEmpty() const
Returns true if the rectangle has no area.
Represents a vector layer which manages a vector based data sets.
Java-style iterator for traversal of vertices of a geometry.
static Qgis::GeometryType geometryType(Qgis::WkbType type)
Returns the geometry type for a WKB type, e.g., both MultiPolygon and CurvePolygon would have a Polyg...
static bool isMultiType(Qgis::WkbType type)
Returns true if the WKB type is a multi type.
static bool hasZ(Qgis::WkbType type)
Tests whether a WKB type contains the z-dimension.
static bool hasM(Qgis::WkbType type)
Tests whether a WKB type contains m values.
static Qgis::WkbType multiType(Qgis::WkbType type)
Returns the multi type for a WKB type.
static bool isCurvedType(Qgis::WkbType type)
Returns true if the WKB type is a curved type or can contain curved geometries.
static Qgis::WkbType flatType(Qgis::WkbType type)
Returns the flat type for a WKB type.
static Qgis::WkbType curveType(Qgis::WkbType type)
Returns the curve type for a WKB type.
Contains geos related utilities and functions.
Definition qgsgeos.h:37
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
#define Q_NOWARN_DEPRECATED_POP
Definition qgis.h:4916
#define Q_NOWARN_DEPRECATED_PUSH
Definition qgis.h:4915
bool qgsDoubleNear(double a, double b, double epsilon=4 *std::numeric_limits< double >::epsilon())
Compare two doubles (but allow some difference)
Definition qgis.h:4332
QVector< QgsPoint > QgsPointSequence
Q_GLOBAL_STATIC_WITH_ARGS(PalPropertyList, palHiddenProperties,({ QgsPalLayerSettings::PositionX, QgsPalLayerSettings::PositionY, QgsPalLayerSettings::Show, QgsPalLayerSettings::LabelRotation, QgsPalLayerSettings::Family, QgsPalLayerSettings::FontStyle, QgsPalLayerSettings::Size, QgsPalLayerSettings::Bold, QgsPalLayerSettings::Italic, QgsPalLayerSettings::Underline, QgsPalLayerSettings::Color, QgsPalLayerSettings::Strikeout, QgsPalLayerSettings::MultiLineAlignment, QgsPalLayerSettings::BufferSize, QgsPalLayerSettings::BufferDraw, QgsPalLayerSettings::BufferColor, QgsPalLayerSettings::LabelDistance, QgsPalLayerSettings::Hali, QgsPalLayerSettings::Vali, QgsPalLayerSettings::ScaleVisibility, QgsPalLayerSettings::MinScale, QgsPalLayerSettings::MaxScale, QgsPalLayerSettings::AlwaysShow, QgsPalLayerSettings::CalloutDraw, QgsPalLayerSettings::LabelAllParts })) Q_GLOBAL_STATIC_WITH_ARGS(SymbolPropertyList
Q_GLOBAL_STATIC(QReadWriteLock, sDefinitionCacheLock)
QDataStream & operator<<(QDataStream &out, const QgsGeometry &geometry)
Writes the geometry to stream out. QGIS version compatibility is not guaranteed.
std::unique_ptr< QgsLineString > smoothCurve(const QgsLineString &line, const unsigned int iterations, const double offset, double squareDistThreshold, double maxAngleRads, bool isRing)
QDataStream & operator>>(QDataStream &in, QgsGeometry &geometry)
Reads a geometry from stream in into geometry. QGIS version compatibility is not guaranteed.
QCache< QString, QgsGeometry > WktCache
QVector< QgsPolylineXY > QgsPolygonXY
Polygon: first item of the list is outer ring, inner rings (if any) start from second item.
Definition qgsgeometry.h:76
QVector< QgsPolylineXY > QgsMultiPolylineXY
A collection of QgsPolylines that share a common collection of attributes.
Definition qgsgeometry.h:86
QVector< QgsPointXY > QgsMultiPointXY
A collection of QgsPoints that share a common collection of attributes.
Definition qgsgeometry.h:82
QVector< QgsPointXY > QgsPolylineXY
Polyline as represented as a vector of two-dimensional points.
Definition qgsgeometry.h:63
QVector< QgsPolygonXY > QgsMultiPolygonXY
A collection of QgsPolygons that share a common collection of attributes.
Definition qgsgeometry.h:93
QgsPointSequence QgsPolyline
Polyline as represented as a vector of points.
Definition qgsgeometry.h:72
int precision
std::unique_ptr< QgsAbstractGeometry > geometry
QgsGeometryPrivate(std::unique_ptr< QgsAbstractGeometry > geometry)
Utility class for identifying a unique vertex within a geometry.
Definition qgsvertexid.h:31
int vertex
Vertex number.
Definition qgsvertexid.h:95
bool isValid() const
Returns true if the vertex id is valid.
Definition qgsvertexid.h:46