研究目的
Investigating the feasibility of hyperspectral mapping of soil salinity and alkalinity assisted with the PLSR model and hyperspectral imager images in the northern Songnen Plain, a unique black soil region in China.
研究成果
The study demonstrated the potential of hyperspectral imagery in the VIS-NIR wavelengths to map soil alkalinity and salinity in the Songnen Plain, China. The PLSR model for soil pH performed well, but the model for soil EC was less reliable. The findings suggest that with better-quality hyperspectral sensors, the method could be further applied to map soil properties in large areas.
研究不足
The study acknowledges uncertainties introduced when applying models to satellite images due to in-situ noises from soil roughness, vegetation, and moisture. The PLSR model for soil EC was not considerably reliable, indicating limitations in accurately estimating soil salinity with the current methodology.
1:Experimental Design and Method Selection:
The study used physicochemical, statistical, and spectral analysis to explore the properties of saline-alkali soils and the corresponding sensitive spectral wavelengths. Partial least squares regression (PLSR) models were constructed for estimating soil alkalinity and salinity.
2:Sample Selection and Data Sources:
193 topsoil samples were collected at 63 sample sites in the Wuyu’er–Shuangyang River Basin, Northeast China. The samples were divided into two datasets for model building and validation.
3:List of Experimental Equipment and Materials:
Equipment included a pH meter (Leici PHSJ-5), conductivity meter (Leici DDS-307), TOC analyzer (Analytik Jena multi N/C 2100S), and a field portable spectrometer (SVC HR-1024i).
4:Experimental Procedures and Operational Workflow:
Soil samples were air-dried, grounded, and filtered. Spectral reflectance was measured, and hyperspectral images were preprocessed and analyzed.
5:Data Analysis Methods:
PLSR models were used to relate spectra to soil properties, with performance evaluated using R2, RMSE, and RPIQ.
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