The Feasibility of Modelling the Crown Profile of Using Unmanned Aerial Vehicle Laser Scanning Data.

Sensors (Basel)

Key Laboratory of Sustainable Forest Ecosystem Management-Ministry of Education, School of Forestry, Northeast Forestry University, Harbin 150040, China.

Published: September 2020

AI Article Synopsis

  • UAV laser scanning technology is effective for extracting detailed crown structures of trees, allowing for high point density and easier data collection.
  • The study evaluated a low-cost UAV-LiDAR system for obtaining fine-scale crown profiles, using various modeling equations to analyze tree data.
  • Results indicated that this method could accurately delineate a majority of trees in dense forests and offers a promising, non-destructive approach for future forestry research and monitoring.

Article Abstract

Unmanned aerial vehicle (UAV) laser scanning, as an emerging form of near-ground light detection and ranging (LiDAR) remote sensing technology, is widely used for crown structure extraction due to its flexibility, convenience, and high point density. Herein, we evaluated the feasibility of using a low-cost UAV-LiDAR system to extract the fine-scale crown profile of . Specifically, individual trees were isolated from LiDAR point clouds and then stratified from the point clouds of segmented individual tree crowns at 0.5 m intervals to obtain the width percentiles of each layer as profile points. Four equations (the parabola, Mitscherlich, power, and modified beta equations) were then applied to model the profiles of the entire and upper crown. The results showed that a region-based hierarchical cross-section analysis algorithm can successfully delineate 77.4% of the field-measured trees in high-density (>2400 trees/ha) forest stands. The crown profile generated with the 95th width percentile was adequate when compared with the predicted value of the existing field-based crown profile model (the Pearson correlation coefficient () was 0.864, root mean square error (RMSE) = 0.3354 m). The modified beta equation yielded slightly better results than the other equations for crown profile fitting and explained 85.9% of the variability in the crown radius for the entire crown and 87.8% of this variability for the upper crown. Compared with the cone and 3D convex hull volumes, the crown volumes predicted by our profile models had significantly smaller errors. The results revealed that the crown profile can be well described by using UAV-LiDAR, providing a novel way to obtain crown profile information without destructive sampling and showing the potential of the use of UAV-LiDAR in future forestry investigations and monitoring.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7583819PMC
http://dx.doi.org/10.3390/s20195555DOI Listing

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