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Supervised pattern recognition in food analysis

机译:食品分析中的监督模式识别

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摘要

Data analysis has become a fundamental task in analytical chemistry due to the great quantity of analytical information provided by modern analytical instruments. Supervised pattern recognition aims to establish a classification model based on experimental data in order to assign unknown samples to a previously defined sample class based on its pattern of measured features. The basis of the supervised pattern recognition techniques mostly used in food analysis are reviewed, making special emphasis on the practical requirements of the measured data and discussing common misconceptions and errors that might arise. Applications of supervised pattern recognition in the field of food chemistry appearing in bibliography in the last two years are also reviewed.
机译:由于现代分析仪器所提供的大量分析信息,数据分析已成为分析化学中的一项基本任务。监督模式识别旨在基于实验数据建立分类模型,以便根据其测量特征的模式将未知样品分配给先前定义的样品类别。回顾了在食品分析中最常用的监督模式识别技术的基础,特别强调了测量数据的实际要求,并讨论了常见的误解和可能出现的错误。还回顾了监督模式识别在近两年书目中出现的食品化学领域中的应用。

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