2022
DOI: 10.1007/s41664-022-00217-z
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Fast Determination of the Rubber Content in Taraxacum kok-saghyz Fresh Biomass Using Portable Near-Infrared Spectroscopy and Pyrolysis–Gas Chromatography

Abstract: Background: Taraxacum kok-saghyz (TKS), a plant native to the Tianshan valley on the border between China and Kazakhstan and inherently rich in natural rubber, inulin and other bioactive ingredients, is an important industrial crop. TKS rubber is a good substitute for natural rubber. TKS's breeding work necessitates the need to screen high-yielding varieties, hence rapid determination of rubber content is essential for the screening. Conventional analytical methods cannot meet actual needs in terms of realtime… Show more

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Cited by 9 publications
(9 citation statements)
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“…SNV can reduce interference caused by physical differences in samples [ 32 , 33 ], and MSC can eliminate wavelength shifts caused by sample scattering [ 34 ]. Derivative is a commonly used spectral preprocessing method in the establishment of rubber content prediction models [ 22 26 ], FD algorithm has the advantage of eliminating baseline drift and stacking effects, improving spectral resolution, and effectively removing interference from constant baselines and backgrounds [ 35 ].…”
Section: Methodsmentioning
confidence: 99%
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“…SNV can reduce interference caused by physical differences in samples [ 32 , 33 ], and MSC can eliminate wavelength shifts caused by sample scattering [ 34 ]. Derivative is a commonly used spectral preprocessing method in the establishment of rubber content prediction models [ 22 26 ], FD algorithm has the advantage of eliminating baseline drift and stacking effects, improving spectral resolution, and effectively removing interference from constant baselines and backgrounds [ 35 ].…”
Section: Methodsmentioning
confidence: 99%
“…However, due to environmental and other factors, there exist some noise bands in the near-infrared spectrum which can hinder the predictive performance of the model. To address this issue, the competitive adaptive reweighted sampling (CARS) method [ 37 ] and the previously discovered characteristic bands of NR of TKS [ 26 ] were employed to screen the spectra and reduce the dimensionality of the data, thus reducing the computational complexity and partial noise of the model and minimizing the risk of overfitting. The constrained algorithm for regression variable selection (CARS) is a method that combines MCS with the regression coefficients of partial least squares (PLS) model for feature variable selection, mimicking the principle of “survival of the fittest” from Darwin’s theory [ 37 ].…”
Section: Methodsmentioning
confidence: 99%
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