Detecting overmature forests with airborne laser scanning (ALS)

被引:7
|
作者
Fuhr, Marc [1 ]
Lalechere, Etienne [2 ]
Monnet, Jean-Matthieu [1 ]
Berges, Laurent [1 ]
机构
[1] INRAE, UR LESSEM, 2 Rue Papeterie,BP 76, F-38402 St Martin Dheres, France
[2] Univ Picardie Jules Verne, UR EDYSAN, UMR CNRS UPJV 7058, 1 Rue Louvels, F-80037 Amiens, France
关键词
airborne laser scanning; forest biodiversity; LiDAR; overmature forests; OLD-GROWTH FORESTS; PACIFIC-NORTHWEST; BIODIVERSITY; MANAGEMENT; LANDSAT; AREA;
D O I
10.1002/rse2.274
中图分类号
Q14 [生态学(生物生态学)];
学科分类号
071012 ; 0713 ;
摘要
Building a network of interconnected overmature forests is crucial for the conservation of biodiversity. Indeed, a multitude of plant and animal species depend on forest structural maturity attributes such as very large living trees and deadwood. LiDAR technology has proved to be powerful when assessing forest structural parameters, and it may be a promising way to identify existing overmature forest patches over large areas. We first built an index (IMAT) combining several forest structural maturity attributes in order to characterize the structural maturity of 660 field plots in the French northern Pre-Alps. We then selected or developed LiDAR metrics and applied them in a random forest model designed to predict the IMAT. Model performance was evaluated with the root mean square error of prediction obtained from a bootstrap cross-validation and a Spearman correlation coefficient calculated between observed and predicted IMAT. Predictors were ranked by importance based on the average increase in the squared out-of-bag error when the variable was randomly permuted. Despite a non-negligible RMSEP (0.85 for calibration and validation data combined and 1.26 for validation data alone), we obtained a high correlation (0.89) between the observed and predicted IMAT values, indicating an accurate ranking of the field plots. LiDAR metrics for height (maximum height and height heterogeneity) were among the most important metrics for predicting forest maturity, together with elevation, slope and, to a lesser extent, with metrics describing the distribution of echoes' intensities. Our framework makes it possible to reconstruct a forest maturity gradient and isolate maturity hot spots. Nevertheless, our approach could be considerably strengthened by taking into consideration site fertility, collecting other maturity attributes in the field or developing adapted LiDAR metrics. Including additional spectral or textural metrics from optical imagery might also improve the predictive capacity of the model.
引用
收藏
页码:731 / 743
页数:13
相关论文
共 50 条
  • [31] Airborne laser scanning of natural forests in New Zealand reveals the influences of wind on forest carbon
    David A.Coomes
    Daniel ?afka
    James Shepherd
    Michele Dalponte
    Robert Holdaway
    Forest Ecosystems, 2018, 5 (02) : 126 - 139
  • [32] Mapping tree canopies in urban environments using airborne laser scanning (ALS): a Vancouver case study
    Matasci, Giona
    Coops, Nicholas C.
    Williams, David A. R.
    Page, Nick
    FOREST ECOSYSTEMS, 2018, 5
  • [33] Accuracy of Ground Surface Interpolation from Airborne Laser Scanning (ALS) Data in Dense Forest Cover
    Cateanu, Mihnea
    Ciubotaru, Arcadie
    ISPRS INTERNATIONAL JOURNAL OF GEO-INFORMATION, 2020, 9 (04)
  • [34] Mapping tree canopies in urban environments using airborne laser scanning(ALS):a Vancouver case study
    Giona Matasci
    Nicholas C.Coops
    David A.R.Williams
    Nick Page
    Forest Ecosystems, 2018, 5 (04) : 429 - 437
  • [35] An automated approach to detecting instream wood using airborne laser scanning in small coastal streams
    Kuiper, Spencer Dakin
    Coops, Nicholas C.
    Jarron, Lukas R.
    Tompalski, Piotr
    White, Joanne C.
    INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION, 2023, 118
  • [36] Accuracy of airborne laser-scanning
    Eckmüller, O
    Rieger, W
    ACCURACY 2000, PROCEEDINGS, 2000, : 195 - 198
  • [37] Archaeology and airborne laser scanning of the landscape
    Hruby, Petr
    PAMATKY ARCHEOLOGICKE, 2014, 105 : 287 - 289
  • [38] The utilisation of airborne laser scanning for mapping
    Vosselman, G
    Kessels, P
    Gorte, B
    INTERNATIONAL JOURNAL OF APPLIED EARTH OBSERVATION AND GEOINFORMATION, 2005, 6 (3-4): : 177 - 186
  • [39] Theme issue on airborne laser scanning
    Wehr, A
    Lohr, U
    Baltsavias, E
    ISPRS JOURNAL OF PHOTOGRAMMETRY AND REMOTE SENSING, 1999, 54 (2-3) : 61 - 63
  • [40] Utilization of airborne laser scanning in Japan
    Masaharu, H
    Koarai, M
    Hasegawa, H
    VIDEOMETRICS AND OPTICAL METHODS FOR 3D SHAPE MEASUREMENT, 2001, 4309 : 81 - 92