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MODEL BASED DISCRIMINANT ANALYSIS

机译:基于模型的判别分析

摘要

A model can be trained for discriminant analysis for substance classification and/or measuring calibration. One method includes interacting at least one sensor with one or more known substances, each sensor element being configured to detect a characteristic of the one or more known substances, generating an sensor response from each sensor element corresponding to each known substance, wherein each known substance corresponds to a known response stored in a database, and training a neural network to provide a discriminant analysis classification model for an unknown substance, the neural network using each sensor response as inputs and one or more substance types as outputs, and the outputs corresponding to the one or more known substances.
机译:可以训练模型进行判别分析,以进行物质分类和/或测量校准。一种方法包括使至少一个传感器与一种或多种已知物质相互作用,每个传感器元件被配置为检测一种或多种已知物质的特性,从与每种已知物质相对应的每个传感器元件产生传感器响应,其中每种已知物质对应于存储在数据库中的已知响应,并训练神经网络以提供针对未知物质的判别分析分类模型,该神经网络使用每个传感器响应作为输入并使用一种或多种物质类型作为输出,并且输出对应于一种或多种已知物质。

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