DocumentCode
60220
Title
Point Cloud Encoding for 3D Building Model Retrieval
Author
Jyun-Yuan Chen ; Chao-Hung Lin ; Po-Chi Hsu ; Chung-Hao Chen
Author_Institution
Dept. of Geomatics, Nat. Cheng Kung Univ., Tainan, Taiwan
Volume
16
Issue
2
fYear
2014
fDate
Feb. 2014
Firstpage
337
Lastpage
345
Abstract
An increasing number of three-dimensional (3D) building models are being made available on Web-based model-sharing platforms. Motivated by the concept of data reuse, an encoding approach is proposed for 3D building model retrieval using point clouds acquired by airborne light detection and ranging (LiDAR) systems. To encode LiDAR point clouds with sparse, noisy, and incomplete sampling, we introduce a novel encoding scheme based on a set of low-frequency spherical harmonic basis functions. These functions provide compact representation and ease the encoding difficulty coming from inherent noises of point clouds. Additionally, a data filling and resampling technique is proposed to solve the aliasing problem caused by the sparse and incomplete sampling of point clouds. Qualitative and quantitative analyses of LiDAR data show a clear superiority of the proposed method over related methods. A cyber campus generated by retrieving 3D building models with airborne LiDAR point clouds demonstrates the feasibility of the proposed method.
Keywords
Internet; building; image retrieval; optical radar; solid modelling; 3D building model retrieval; LiDAR point cloud encoding; LiDAR systems; Web-based model-sharing platform; airborne light detection and ranging system; data filling and resampling technique; encoding approach; low-frequency spherical harmonic basis functions; three-dimensional building models; Atmospheric modeling; Buildings; Encoding; Laser radar; Shape; Solid modeling; Three-dimensional displays; 3D model retrieval; Cyber city modeling; point cloud encoding;
fLanguage
English
Journal_Title
Multimedia, IEEE Transactions on
Publisher
ieee
ISSN
1520-9210
Type
jour
DOI
10.1109/TMM.2013.2286580
Filename
6642077
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