Monitoring restored tropical forest diversity and structure through UAV-borne hyperspectral and lidar fusion

高光谱成像 激光雷达 叶面积指数 遥感 天蓬 环境科学 物种丰富度 植被(病理学) 地理 生态学 生物 医学 病理
作者
Danilo Roberti Alves de Almeida,Eben N. Broadbent,Matheus Pinheiro Ferreira,Paula Meli,Angélica M. Almeyda Zambrano,Eric Bastos Görgens,Angélica Faria de Resende,Catherine Torres de Almeida,Cibele Hummel do Amaral,Ana Paula Dalla Côrte,Carlos Alberto Silva,João Paulo Romanelli,Gabriel Atticciati Prata,Daniel de Almeida Papa,Scott C. Stark,Rubén Valbuena,Bruce Nelson,Joannès Guillemot,Jean‐Baptiste Féret,Robin L. Chazdon
出处
期刊:Remote Sensing of Environment [Elsevier BV]
卷期号:264: 112582-112582 被引量:172
标识
DOI:10.1016/j.rse.2021.112582
摘要

Remote sensors, onboard orbital platforms, aircraft, or unmanned aerial vehicles (UAVs) have emerged as a promising technology to enhance our understanding of changes in ecosystem composition, structure, and function of forests, offering multi-scale monitoring of forest restoration. UAV systems can generate high-resolution images that provide accurate information on forest ecosystems to aid decision-making in restoration projects. However, UAV technological advances have outpaced practical application; thus, we explored combining UAV-borne lidar and hyperspectral data to evaluate the diversity and structure of restoration plantings. We developed novel analytical approaches to assess twelve 13-year-old restoration plots experimentally established with 20, 60 or 120 native tree species in the Brazilian Atlantic Forest. We assessed (1) the congruence and complementarity of lidar and hyperspectral-derived variables, (2) their ability to distinguish tree richness levels and (3) their ability to predict aboveground biomass (AGB). We analyzed three structural attributes derived from lidar data—canopy height, leaf area index (LAI), and understory LAI—and eighteen variables derived from hyperspectral data—15 vegetation indices (VIs), two components of the minimum noise fraction (related to spectral composition) and the spectral angle (related to spectral variability). We found that VIs were positively correlated with LAI for low LAI values, but stabilized for LAI greater than 2 m2/m2. LAI and structural VIs increased with increasing species richness, and hyperspectral variability was significantly related to species richness. While lidar-derived canopy height better predicted AGB than hyperspectral-derived VIs, it was the fusion of UAV-borne hyperspectral and lidar data that allowed effective co-monitoring of both forest structural attributes and tree diversity in restoration plantings. Furthermore, considering lidar and hyperspectral data together more broadly supported the expectations of biodiversity theory, showing that diversity enhanced biomass capture and canopy functional attributes in restoration. The use of UAV-borne remote sensors can play an essential role during the UN Decade of Ecosystem Restoration, which requires detailed forest monitoring on an unprecedented scale.
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