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首页> 外文期刊>Journal of near infrared spectroscopy >A chemometric method for the viability analysis of spinach seeds by near infrared spectroscopy with variable selection using successive projections algorithm
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A chemometric method for the viability analysis of spinach seeds by near infrared spectroscopy with variable selection using successive projections algorithm

机译:基于连续投影算法的近红外光谱变量选择菠菜种子活力分析化学计量学方法

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摘要

This paper proposes a chemometric method for evaluating the viability of spinach seeds using near infrared (NIR) spectroscopy and successive projections algorithms (SPA). An essential step of the procedure is to apply the SPA to optimize the choice of variables for multivariate classification. Variable selection using SPA has been described as an optimization problem in which a cost function is minimized. Selecting the correct variables makes the chemometric models more complete, precise, accurate, and less complex. The NIR spectra were processed using the Savitszky-Golay and multiplicative scatter correction techniques. After that, the best wavelength subset was selected using SPA. Different classification techniques are then applied to the dimension-reduced data to determine the seeds' viability. The results show that the proposed method is less complex compared to existing canonical variance methods (1.7 miscalculation error in the proposed way) and is also easier to implement.
机译:本文提出了一种利用近红外(NIR)光谱和连续投影算法(SPA)评估菠菜种子活力的化学计量学方法。该过程的一个重要步骤是应用 SPA 来优化多变量分类的变量选择。使用 SPA 的变量选择被描述为一个优化问题,其中成本函数最小化。选择正确的变量可以使化学计量模型更完整、更精确、更准确、更简单。使用Savitszky-Golay和乘法散射校正技术处理近红外光谱。之后,使用SPA选择最佳波长子集。然后对降维数据应用不同的分类技术,以确定种子的生存能力。结果表明,与现有的典型方差方法相比,所提方法的复杂度更低(所提方法的误算误差为1.7%),也更易于实现。

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