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Effect of spring irrigation on soil salinity monitoring with UAV-borne multispectral sensor

土壤盐分 环境科学 灌溉 盐度 水文学(农业) 旱地盐分 干旱 土工试验 植被(病理学) 土壤科学 土壤水分 土壤有机质 地质学 农学 病理 古生物学 海洋学 生物 医学 岩土工程 土壤生物多样性
作者
Ning Yang,Shuai Yang,Weihong Cui,Zhitao Zhang,Junrui Zhang,Junying Chen,Yu Ma,Congcong Lao,Zhishuang Song,Yinwen Chen
出处
期刊:International Journal of Remote Sensing [Informa]
卷期号:42 (23): 8952-8978 被引量:13
标识
DOI:10.1080/01431161.2021.1978579
摘要

Soil salinization is one of the main problems hindering the agricultural development in the arid and semi-arid regions. However, many previous studies of soil salinization monitoring failed to consider the impact of irrigation on soil salinity. To explore such impact, we used a UAV with a portable spectrometer to monitor the dynamic change of soil salinity before and after spring irrigation. In this study, 120 soil samples at the surface (0–10 cm) were taken in Shahaoqu Irrigation Area, Inner Mongolia, China, in mid-April (before spring irrigation) and mid-June (after spring irrigation), and the images of the four study zones A, B, C and D in this area were obtained from the UAV system. Based on these images, 25 spectral covariates (6 spectral bands, 16 spectral indices, and 3 two-dimensional indices) were calculated. Then, the sensitive spectral covariates were selected with such different variable selection methods as variable importance in projection (VIP), competitive adaptive reweighted sampling (CARS), and genetic algorithm (GA). Finally, Multiple Linear Regression (MLR) and BP neural network algorithm (BPNN) was used to establish models for soil salinity inversion, based on which salinity maps of the study area were plotted. The results showed that the soil salinity of the study zone A (covered with vegetation) increased while that of the other three zones decreased after the spring irrigation. The general tendency was: the higher the original soil salinity was, the more obvious decrease the soil salinity had after the irrigation. All the three variable selection methods improved the inversion model accuracy, but the GA-BPNN model had the best performance (RP2 = 0.78, RMSEP = 0.16, and RPD = 2.13 before spring irrigation; and RP2 = 0.80, RMSEP = 0.14, and RPD = 2.26 after spring irrigation). It indicated that relatively accurate regional salinity maps could be plotted based on the spectral indices selected by GA and the salinity inversion model built on BPNN. These results have certain reference for soil salinization monitoring and farmland irrigation using UAV multispectral remote sensing.
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