研究目的
Investigating the combination of single-scan TLS and MLS for forest 3D data acquisition to overcome occlusion effects and improve mapping accuracy and efficiency.
研究成果
The proposed method effectively combines single-scan TLS and MLS data for forest mapping, compensating for occlusion effects and reducing field measurement time. It achieves high accuracy in both horizontal and vertical directions, with mean errors less than 2.0 cm. The method's reliance on natural geometric characteristics of trees and its optimization-based registration framework demonstrate robustness and efficiency in forest environments.
研究不足
The study is limited by the complexity and similarity of forest environments, which may complicate feature extraction and motion estimation. The method's performance in very dense or heterogeneous forests was not extensively tested.
1:Experimental Design and Method Selection:
The study combines single-scan TLS and MLS data for forest mapping, utilizing a novel optimization-based registration framework that exploits natural geometric characteristics of trees.
2:Sample Selection and Data Sources:
Three datasets from two forest plots in Saihanba National Forest Park, China, were used, with data collected using Velodyne VLP-16 (MLS) and Riegl VZ-1000 (TLS) laser scanning systems.
3:List of Experimental Equipment and Materials:
Velodyne VLP-16 laser scanning system for MLS, Riegl VZ-1000 laser scanning system for TLS.
4:Experimental Procedures and Operational Workflow:
Single-scan TLS data served as a reference for registering MLS point clouds. Virtual and real feature points were extracted for motion estimation and global optimization.
5:Data Analysis Methods:
Nonlinear optimization techniques, including the Levenberg-Marquardt method, were used for motion estimation and global optimization.
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