Disentangling LiDAR Contribution in Modelling Species-Habitat Structure Relationships in Terrestrial Ecosystems Worldwide. A Systematic Review and Future Directions

被引:21
作者
Acebes, Pablo [1 ,2 ]
Lillo, Paula [1 ]
Jaime-Gonzalez, Carlos [1 ]
机构
[1] Univ Autonoma Madrid, Fac Ciencias, Dept Ecol, Madrid 28049, Spain
[2] Univ Autonoma Madrid, Ctr Invest Biodiversidad & Cambio Global, CIBC, UAM, Madrid 28049, Spain
关键词
biodiversity and habitat mapping; conservation; ecosystem structure; LiDAR platforms; LiDAR traits; morphological traits; remote sensing; terrain topography; AIRBORNE LIDAR; VEGETATION STRUCTURE; FOREST STRUCTURE; HIGH-RESOLUTION; CANOPY STRUCTURE; SPATIAL-DISTRIBUTION; BATHYMETRIC LIDAR; TERMITE MOUNDS; PREDATION RISK; SELECTION;
D O I
10.3390/rs13173447
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Global biodiversity is threatened by unprecedented and increasing anthropogenic pressures, including habitat loss and fragmentation. LiDAR can become a decisive technology by providing accurate information about the linkages between biodiversity and ecosystem structure. Here, we review the current use of LiDAR metrics in ecological studies regarding birds, mammals, reptiles, amphibians, invertebrates, bryophytes, lichens, and fungi (BLF). We quantify the types of research (ecosystem and LiDAR sources) and describe the LiDAR platforms and data that are currently available. We also categorize and harmonize LiDAR metrics into five LiDAR morphological traits (canopy cover, height and vertical distribution, understory and shrubland, and topographic traits) and quantify their current use and effectiveness across taxonomic groups and ecosystems. The literature review returned 173 papers that met our criteria. Europe and North America held most of the studies, and birds were the most studied group, whereas temperate forest was by far the most represented ecosystem. Globally, canopy height was the most used LiDAR trait, especially in forest ecosystems, whereas canopy cover and terrain topography traits performed better in those ecosystems where they were mapped. Understory structure and shrubland traits together with terrain topography showed high effectiveness for less studied groups such as BLF and invertebrates and in open landscapes. Our results show how LiDAR technology has greatly contributed to habitat mapping, including organisms poorly studied until recently, such as BLF. Finally, we discuss the forthcoming opportunities for biodiversity mapping with different LiDAR platforms in combination with spectral information. We advocate (i) for the integration of spaceborne LiDAR data with the already available airborne (airplane, drones) and terrestrial technology, and (ii) the coupling of it with multispectral/hyperspectral information, which will allow for the exploration and analyses of new species and ecosystems.
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页数:19
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