2023
DOI: 10.1016/j.infrared.2023.104922
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A new method to estimate soil organic matter using the combination model based on short memory fractional order derivative and machine learning model

Chengbiao Fu,
Shu Gan,
Heigang Xiong
et al.
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Cited by 6 publications
(2 citation statements)
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“…Geometrically, the integer-order derivative is an arbitrary order slope of a function curve, which has the physical meaning of fractional flow and generalized amplitude. It can refine the information of spectral data and effectively denoise and improve the modeling accuracy [33,34]. The more commonly used fractional-order differentials are defined in the form of Grunwald-Letnikov, Riemann-Liouvile, and Caputo [35].…”
Section: Hyperspectral Data Processingmentioning
confidence: 99%
“…Geometrically, the integer-order derivative is an arbitrary order slope of a function curve, which has the physical meaning of fractional flow and generalized amplitude. It can refine the information of spectral data and effectively denoise and improve the modeling accuracy [33,34]. The more commonly used fractional-order differentials are defined in the form of Grunwald-Letnikov, Riemann-Liouvile, and Caputo [35].…”
Section: Hyperspectral Data Processingmentioning
confidence: 99%
“…The coefficient of determination (R 2 ), root mean square error (RMSE), and relative analysis error (RPD) were used to assess model robustness and stability. The closer R 2 is to 1, the smaller the RMSE; RPD < 1.40 indicates that the model has a poor ability to estimate accuracy, 1.4 < RPD < 2 indicates that the model has an average ability to estimate accuracy, and RPD > 2 indicates that the model has an excellent ability to estimate accuracy [38][39][40]. The specific calculation formulae are as follows:…”
Section: Model Accuracy Evaluationmentioning
confidence: 99%