首页> 外文期刊>Applied Spectroscopy: Society for Applied Spectroscopy >Detection of Nitrogen Content in Rubber Leaves Using Near-Infrared (NIR) Spectroscopy with Correlation-Based Successive Projections Algorithm (SPA)
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Detection of Nitrogen Content in Rubber Leaves Using Near-Infrared (NIR) Spectroscopy with Correlation-Based Successive Projections Algorithm (SPA)

机译:使用近红外(NIR)光谱法检测橡胶叶中的氮含量,具有基于相关的连续投影算法(SPA)

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摘要

Near-infrared spectroscopy is an efficient, low-cost technology that has potential as an accurate method in detecting the nitrogen content of natural rubber leaves. Successive projections algorithm (SPA) is a widely used variable selection method for multivariate calibration, which uses projection operations to select a variable subset with minimum multi-collinearity. However, due to the fluctuation of correlation between variables, high collinearity may still exist in non-adjacent variables of subset obtained by basic SPA. Based on analysis to the correlation matrix of the spectra data, this paper proposed a correlation-based SPA (CB-SPA) to apply the successive projections algorithm in regions with consistent correlation. The result shows that CB-SPA can select variable subsets with more valuable variables and less multi-collinearity. Meanwhile, models established by the CB-SPA subset outperform basic SPA subsets in predicting nitrogen content in terms of both cross-validation and external prediction. Moreover, CB-SPA is assured to be more efficient, for the time cost in its selection procedure is one-twelfth that of the basic SPA.
机译:近红外光谱是一种有效的低成本技术,具有检测天然橡胶叶的氮含量的准确方法。连续投影算法(SPA)是一种广泛使用的多变量校准的可变选择方法,它使用投影操作来选择具有最小多相线性的变量子集。然而,由于变量之间的相关性的波动,高共线性可能仍然存在于基本SPA获得的非相邻变量中。基于分析对光谱数据的相关矩阵,本文提出了一种基于相关的水疗中心(CB-SPA),以在具有一致相关性的区域中应用连续投影算法。结果表明,CB-SPA可以选择具有更有价值的变量和更少的多相共同性的可变子集。同时,由CB-SPA子集所建立的模型优于基本SPA子集,以在交叉验证和外部预测方面预测氮含量。此外,CB-SPA被确保更有效,因为其选择过程中的时间成本是基本水疗中心的一个第十二。

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