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Screening for illicit psychoactive drugs based on pattern recognition methods

机译:基于模式识别方法的非法精神活性药物筛选

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We are presenting an exploratory analysis assessing the feasibility of using pattern recognition methods for building an automated system screening in situ for illicit psychoactive drugs of abuse. The study is focused on ephedrine analogues, ergogenic aids which are also the main precursors of the most popular designer drugs, i.e. amphetamines. Each compound included in the training database was first characterized based on its infrared spectrum recorded between 1405 and 1150 cm-1. These spectra have been preprocessed with a feature weight, which enhances the absorptions that are the most specific to each of the modeled classes of compounds. The effect of two feature weights, w(E2) and (wE-1)2, on the modeling and discrimination power of the system have been compared by using Principal Component Analysis (PCA) and Agglomerative Cluster Analysis (ACA). The dendrograms have been obtained based on the PCA scores of the modeled compounds. The influence of the number of principal components taken into account to model the targeted classes of illicit drugs is also discussed.
机译:我们正在探索分析,评估使用模式识别方法的可行性,以便在原位构建自动化系统筛选的非法精神活性滥用药物。该研究专注于麻黄碱类似物,其是最受欢迎的设计师药物的主要前体,即安非胺。培训数据库中包含的每个化合物首先基于其红外光谱,记录在1405和1150cm -1 / sup>之间。这些光谱已经预处理具有特征重量,其增强了对每个建模化合物类别的最特异性的吸收。通过使用主成分,比较了两个特征权重W(E 2 )和(WE-1) 2 的影响,并使用主成分进行了对系统的建模和辨别力分析(PCA)和凝聚聚类分析(ACA)。基于模拟化合物的PCA分数获得了树形图。还讨论了考虑到模拟目标类非法药物的主要成分数量的影响。

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