Defining brightness-shape-moisture soil parameters for southern Africa from hyperion hyperspectral imagery
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Date
Authors
Bonnet, Wessel
Cho, Moses Azong
Masemola, Cecilia
Journal Title
Journal ISSN
Volume Title
Publisher
Institute of Electrical and Electronics Engineers
Abstract
An effective methodology is needed to simulate soil spectra on a large scale. The brightness-shape-moisture (BSM) radiative transfer model (RTM) is used to simulate soil spectra for different semiarid and arid biomes within Southern Africa based on hyperspectral imagery obtained from the Hyperion satellite. Such simulation based on hyperspectral data is especially relevant in light of newer hyperspectral missions, such as Prisma providing ongoing data streams. In this particular study, Hyperion’s data are cleaned using the SUREHYP procedure, segmented using the simple linear iterative clustering (SLIC) algorithm, filtered to exclude photosynthetic and senescent vegetation, and parameterized via a Hyperion band calibrated BSM model lookup table to obtain simulation parameter distributions for different biomes. This provides a means to better simulate soil spectra using each biome’s obtained parameter distributions in the BSM forward model.
Description
Keywords
Atmospheric modeling, Mathematical models, Hyperspectral imaging, Biological system modeling, Absorption, Soil moisture, Soil properties, Southern Africa, Hyperion, Brightness-shape-moisture (BSM), Radiative transfer model (RTM), Simple linear iterative clustering (SLIC), SDG-15: Life on land
Sustainable Development Goals
SDG-15:Life on land
Citation
W. Bonnet, M.A. Cho and C. Masemola, "Defining Brightness-Shape-Moisture Soil Parameters for Southern Africa From Hyperion Hyperspectral Imagery," in IEEE Transactions on Geoscience and Remote Sensing, vol. 62, pp. 1-8, 2024, Art no. 5527808, doi: 10.1109/TGRS.2024.3446246.