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从光谱数据变异性到优化预处理:利用不同粒度杏仁粉掺假中的多变量误差

From spectroscopic data variability to optimal preprocessing: leveraging multivariate error in almond powder adulteration of different grain size.

作者信息

Giussani Barbara, Monti Manuel, Riu Jordi

机构信息

Dipartimento Di Scienza e Alta Tecnologia, Università Degli Studi Dell'Insubria, Via Valleggio 9, 22100, Como, Italy.

Department of Analytical Chemistry and Organic Chemistry, Universitat Rovira i Virgili, Carrer Marcel·lí Domingo 1, 43007, Tarragona, Spain.

出版信息

Anal Bioanal Chem. 2025 Mar;417(7):1393-1405. doi: 10.1007/s00216-024-05710-1. Epub 2024 Dec 23.

Abstract

Analysing samples in their original form is increasingly crucial in analytical chemistry due to the need for efficient and sustainable practices. Analytical chemists face the dual challenge of achieving accuracy while detecting minute analyte quantities in complex matrices, often requiring sample pretreatment. This necessitates the use of advanced techniques with low detection limits, but the emphasis on sensitivity can conflict with efforts to simplify procedures and reduce solvent use. This article discusses the shift towards green analytical methods, focusing on portable spectroscopic techniques in the near-infrared (NIR) region. A case study involving the prediction of adulteration in almond flour with bitter almond flour illustrates the importance of particle size and the integration between the sample and the instrument. The study emphasizes the necessity of investigating the multivariate error associated with raw data to enhance data preprocessing strategies. This research provides valuable insights for professionals in the field, presenting a methodology applicable to a broad range of analytical applications while underscoring the critical role of raw data analysis in achieving accurate and reliable results.

摘要

由于需要高效且可持续的操作方法,在分析化学中,对原始形式的样品进行分析变得越来越重要。分析化学家面临着双重挑战:在复杂基质中检测微量分析物时要确保准确性,而这通常需要进行样品预处理。这就需要使用具有低检测限的先进技术,但对灵敏度的强调可能与简化程序和减少溶剂使用的努力相冲突。本文讨论了向绿色分析方法的转变,重点关注近红外(NIR)区域的便携式光谱技术。一个涉及用苦杏仁粉预测杏仁粉掺假的案例研究说明了颗粒大小以及样品与仪器之间整合的重要性。该研究强调了调查与原始数据相关的多变量误差以增强数据预处理策略的必要性。这项研究为该领域的专业人员提供了有价值的见解,提出了一种适用于广泛分析应用的方法,同时强调了原始数据分析在获得准确可靠结果方面的关键作用。

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