Published August 3, 2020 | Version v1
Publication Open

DATA-DRIVEN MODELING OF BUILDING INTERIORS FROM LIDAR POINT CLOUDS

  • 1. Universidad Blas Pascal
  • 2. Institut Pascal

Description

Abstract. This paper deals with 3D modeling of building interiors from point clouds captured by a 3D LiDAR scanner. Indeed, currently, the building reconstruction processes remain mostly manual. While LiDAR data have some specific properties which make the reconstruction challenging (anisotropy, noise, clutters, etc.), the automatic methods of the state-of-the-art rely on numerous construction hypotheses which yield 3D models relatively far from initial data. The choice has been done to propose a new modeling method closer to point cloud data, reconstructing only scanned areas of each scene and excluding occluded regions. According to this objective, our approach reconstructs LiDAR scans individually using connected polygons. This modeling relies on a joint processing of an image created from the 2D LiDAR angular sampling and the 3D point cloud associated to one scan. Results are evaluated on synthetic and real data to demonstrate the efficiency as well as the technical strength of the proposed method.

⚠️ This is an automatic machine translation with an accuracy of 90-95%

Translated Description (Arabic)

الملخص. تتناول هذه الورقة النمذجة ثلاثية الأبعاد للديكورات الداخلية للبناء من السحب النقطية التي تم التقاطها بواسطة ماسح ضوئي ليدار ثلاثي الأبعاد. في الواقع، لا تزال عمليات إعادة بناء المباني في الوقت الحالي يدوية في الغالب. في حين أن بيانات ليدار لها بعض الخصائص المحددة التي تجعل إعادة البناء صعبة (تباين الخواص، والضوضاء، والفوضى، وما إلى ذلك)، فإن الأساليب التلقائية للدولة من بين الفن تعتمد على العديد من فرضيات البناء التي تسفر عن نماذج ثلاثية الأبعاد بعيدة نسبيا عن البيانات الأولية. تم الاختيار لاقتراح طريقة نمذجة جديدة أقرب إلى بيانات السحابة النقطية، وإعادة بناء المناطق الممسوحة ضوئيًا فقط من كل مشهد واستبعاد المناطق المسدودة. وفقًا لهذا الهدف، يعيد نهجنا بناء مسح ليدار بشكل فردي باستخدام المضلعات المتصلة. تعتمد هذه النمذجة على معالجة مشتركة لصورة تم إنشاؤها من أخذ العينات الزاوي ليدار ثنائي الأبعاد والسحابة النقطية ثلاثية الأبعاد المرتبطة بمسح واحد. يتم تقييم النتائج على أساس البيانات التركيبية والحقيقية لإثبات الكفاءة وكذلك القوة التقنية للطريقة المقترحة.

Translated Description (English)

Abstract. This paper deals with 3D modeling of building interiors from point clouds captured by a 3D LiDAR scanner. Indeed, currently, the building reconstruction processes remain mostly manual. While LiDAR data have some specific properties which make the reconstruction challenging (anisotropy, noise, clutters, etc.), the automatic methods of the state-of-the-art rely on numerous construction hypotheses which yield 3D models relatively far from initial data. The choice has been done to propose a new modeling method closer to point cloud data, reconstructing only scanned areas of each scene and excluding occluded regions. According to this objective, our approach reconstructs LiDAR scans individually using connected polygons. This modeling relies on a joint processing of an image created from the 2D LiDAR angular sampling and the 3D point cloud associated to one scan. Results are evaluated on synthetic and real data to demonstrate the efficiency as well as the technical strength of the proposed method.

Translated Description (French)

Abstract. This paper deals with 3D modeling of building interiors from point clouds captured by a 3D LiDAR scanner. Indeed, currently, the building reconstruction processes remain mostly manual. While LiDAR data have some specific properties which make the reconstruction challenging (anisotropy, noise, clutters, etc.), the automatic methods of the state-of-the-art rely on numerous construction hypotheses which yield 3D models relatively far from initial data. The choice has been done to propose a new modeling method closer to point cloud data, reconstructing only scanned areas of each scene and excluding occluded regions. Conformément à cet objectif, notre approche reconstruit les scans LiDAR individuellement à l'aide de polygones connectés. This modeling relies on a joint processing of an image created from the 2D LiDAR angular sampling and the 3D point cloud associated to one scan. Les résultats ont été évalués sur des données synthétiques et réelles pour démontrer l'efficacité bien que la rigueur technique de la méthode proposée.

Translated Description (Spanish)

Abstract. This paper deals with 3D modeling of building interiors from point clouds captured by a 3D LiDAR scanner. Indeed, currently, the building reconstruction processes remain mostly manual. While LiDAR data have some specific properties which make the reconstruction challenging (anisotropy, noise, clutters, etc.), the automatic methods of the state-of-the-art rely on numerous construction hypotheses which yield 3D models relatively far from initial data. The choice has been done to propose a new modeling method closer to point cloud data, reconstructing only scanned areas of each scene and excluding occluded regions. Acording to this objective, our approach reconstructs LiDAR scans individually using connected polygons. This modeling relies on a joint processing of an image created from the 2D LiDAR angular sampling and the 3D point cloud associated to one scan. Results are evaluated on synthetic and real data to demonstrate the efficiency as well as the technical strength of the proposed method.

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Additional details

Additional titles

Translated title (Arabic)
النمذجة القائمة على البيانات للديكورات الداخلية للمباني من غيوم ليدار النقطية
Translated title (English)
DATA-DRIVEN MODELING OF BUILDING INTERIORS FROM LIDAR POINT CLOUDS
Translated title (French)
DATA-DRIVEN MODELING OF BUILDING INTERIORS FROM LIDAR POINT CLOUDS
Translated title (Spanish)
MODELADO BASADO EN DATOS DE INTERIORES DE EDIFICIOS DESDE NUBES DE PUNTOS LIDAR

Identifiers

Other
https://openalex.org/W3047109509
DOI
10.5194/isprs-annals-v-2-2020-395-2020

GreSIS Basics Section

Is Global South Knowledge
Yes
Country
Argentina

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