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Research and analysis of cadmium residue in tomato leaves based on WT-LSSVR and Vis-NIR hyperspectral imaging

机译:基于WT-LSSVR和Vis-Nir高光谱成像的番茄叶片中镉残留的研究与分析

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The reliability and validity of Vis-NIR hyperspectral imaging were investigated for the determination of heavy metal content in tomato leaves under different cadmium stress. Besides, a method involving wavelet transform and least square support vector machine regression (WT-LSSVR) is proposed to select the optimal wavelength and establish the detection model. The Vis-NIR hyperspectral images of 405 tomato leaf samples were obtained and the whole region of tomato leaf sample spectral data was collected and preprocessed. In addition, WT-LSSVR is used to select optimal wavelength and establish the detection model using db4 and db6 as wavelet basis function, respectively. Furthermore, the best prediction performances for detecting cadmium (Cd) content in tomato leaves was obtained by second derivative (2nd Der) pre-processing method, with R-c(2) of 0.9437, RMSEC of 0.0988 mg/kg, R-p(2) of 0.8937, RMSEP of 0.2331 mg/kg, R-cv(2) of 0.9357, RMSECV of 0.1455 mg/kg, RPD of 3.081 and bias of 0.00863 using db6 (daubechies 6) as wavelet basis function with wavelet fourth layer decomposition. The results of this study indicated that WT-LSSVR can effectively select the optimal wavelength and Vis-NIR hyperspectral imaging has great potential for detecting heavy metal content in tomato leaves under different cadmium stresses. (C) 2019 Elsevier B.V. All rights reserved.
机译:可见 - 近红外光谱成像的可靠性和有效性在进行了调查的重金属含量的测定番茄不同镉胁迫下的叶子。此外,涉及小波变换和最小二乘支持向量机回归(WT-LSSVR)提出一种方法,以选择最佳波长,建立检测模型。得到的405番茄叶样品的可见 - 近红外光谱图像和番茄叶样品光谱数据的整个区域被收集和预处理。此外,WT-LSSVR用于选择最佳波长和使用DB4和DB6作为小波基函数建立检测模型,分别。此外,通过第二导数(第二DER)前处理的方法,获得具有0.9437 RC(2)中,0.0988毫克/公斤Rp的,(2)RMSEC用于检测番茄叶镉(Cd)的含量最好的预测性能0.8937,0.2331毫克/公斤,0.9357 R-CV(2),的0.1455 RMSECV毫克/千克,3.081的RPD和使用DB6(Daubechies小波6)与小波第四层分解波基函数的0.00863偏压的RMSEP。这项研究的结果表明,WT-LSSVR能够有效地选择最佳波长和可见 - 近红外光谱成像具有用于检测番茄中在不同镉应力叶片重金属含量的巨大潜力。 (c)2019 Elsevier B.v.保留所有权利。

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