Remote sensing provides a consistent form of observation for biodiversity monitoring across space and time. However, the regional mapping of forest species diversity is still difficult because of the complexity of species distribution and overlapping tree crowns. A new method called “spectranomics” that maps forest species richness based on leaf chemical and spectroscopic traits using imaging spectroscopy was developed by Asner and Martin. In this paper, we use this method to detect the relationships among the spectral, biochemical and taxonomic diversity of tree species, based on 20 dominant canopy species collected in a subtropical forest study site in China. Eight biochemical components (chlorophyll, carotenoid, specific leaf area, equiv...
International audienceQuestion Which optical traits, retrieved from biophysical models applied to Se...
Remote sensing estimates of leaf biochemicals provide valuable information on ecosystem functioning,...
<div><p>Remote identification and mapping of canopy tree species can contribute valuable information...
Monitoring biodiversity is essential for the conservation and management of forest resources. A meth...
Quantifying how biodiversity affects ecosystem functions through time over large spatial extents is ...
AbstractWith the goal of advancing remote sensing in biodiversity science, Spectranomics represents ...
Biodiversity monitoring is an almost inconceivable challenge at the scale of the entire Earth. The c...
Spatial information on forest functional composition is needed to inform management and conservation...
Knowledge of the spatial distribution of tree species is important for efficiently managing and moni...
Observing functional diversity continuously in time and space using satellite imagery forms the basi...
Biodiversity monitoring is an almost inconceivable challenge at the scale of the entire Earth. The c...
Abstract Trait‐based ecology holds the promise to explain how plant communities work, for example, h...
International audienceQuestion Which optical traits, retrieved from biophysical models applied to Se...
Remote sensing estimates of leaf biochemicals provide valuable information on ecosystem functioning,...
<div><p>Remote identification and mapping of canopy tree species can contribute valuable information...
Monitoring biodiversity is essential for the conservation and management of forest resources. A meth...
Quantifying how biodiversity affects ecosystem functions through time over large spatial extents is ...
AbstractWith the goal of advancing remote sensing in biodiversity science, Spectranomics represents ...
Biodiversity monitoring is an almost inconceivable challenge at the scale of the entire Earth. The c...
Spatial information on forest functional composition is needed to inform management and conservation...
Knowledge of the spatial distribution of tree species is important for efficiently managing and moni...
Observing functional diversity continuously in time and space using satellite imagery forms the basi...
Biodiversity monitoring is an almost inconceivable challenge at the scale of the entire Earth. The c...
Abstract Trait‐based ecology holds the promise to explain how plant communities work, for example, h...
International audienceQuestion Which optical traits, retrieved from biophysical models applied to Se...
Remote sensing estimates of leaf biochemicals provide valuable information on ecosystem functioning,...
<div><p>Remote identification and mapping of canopy tree species can contribute valuable information...