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Multivariate statistics: Considerations and confidences in food authenticity problems

机译:多变量统计:食品真实性问题的考虑和束缚

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摘要

Modem analytical measurement technologies, such as infrared, NMR, mass spectrometry and chromatography, provide a wealth of information on the chemical composition of all kinds of samples. These instruments are invariably controlled by computers, and the data (spectrum, chromatogram) recorded in digital form. A measurement on a single sample typically comprises thousands of numbers. Usually, this is many more than the number of samples, meaning that the experiment overall is underdetermined. Furthermore, chemically different specimens often give rise to quite similar measurements, especially in some of the spectroscopy methods where there are large numbers of overlapped spectral bands. The task, then, is how to get the best out of these complex and unwieldy datasets. Fortunately, there is an assortment of computational methods that are especially suitable for dealing with this kind of data: these are the techniques of multivariate analysis.
机译:调制解调器分析测量技术,如红外,NMR,质谱和色谱,提供有关各种样品的化学成分的丰富信息。 这些仪器总是由计算机控制的,以及以数字形式记录的数据(光谱,色谱图)。 对单个样本的测量通常包括成千上万的数字。 通常,这是比样本的数量多,这意味着整体的实验是未确定的。 此外,化学不同的标本通常会产生相似的测量,尤其是在有大量重叠的光谱带中的一些光谱方法中。 那么,任务是如何获得这些复杂和笨重的数据集。 幸运的是,各种各样适用于处理这种数据的计算方法:这些是多变量分析的技术。

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