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DATABASE MINING WITH ADAPTIVE FUZZY PARTITION: APPLICATION TO THE PREDICTION OF PESTICIDE TOXICITY ON RATS

机译:自适应模糊分区的数据库挖掘:在预测农药对大鼠的毒性中的应用

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摘要

A data set of 235 pesticide compounds, divided into three classes according to their toxicity toward rats, was analyzed by a fuzzy logic procedure called adaptive fuzzy partition (AFP). This method allows the establishment of molecular descriptor/ chemical activity relationships by dynamically dividing the descriptor space into a set of fuzzily partitioned subspaces. A set of 153 molecular descriptors was analyzed, including topological, physicochemical, quantum mechanical, constitutional, and electronic parameters, and the most relevant descriptors were selected with the help of a procedure combining genetic algorithm concepts and a stepwise method. The ability of this AFP model to classify the three toxicity classes was validated after dividing the data set compounds into training and test sets, including 165 and 70 molecules, respectively. The experimental class was correctly predicted for 76% of the test-set compounds. Furthermore, the most toxic class, particularly important for real applications of the toxieity models, was correctly predicted in 86% of cases. Finally, a comparison between the results obtained by AFP and those obtained by other classic classification techniques showed that AFP improved the predictive power of the proposed models.
机译:通过称为自适应模糊分区(AFP)的模糊逻辑程序分析了235种农药化合物的数据集,根据其对大鼠的毒性分为三类。通过将描述符空间动态划分为一组模糊划分的子空间,该方法允许建立分子描述符/化学活性关系。分析了一组153个分子描述符,包括拓扑,物理化学,量子力学,结构和电子参数,并借助结合了遗传算法概念和逐步方法的过程选择了最相关的描述符。在将数据集化合物分为训练集和测试集(分别包括165个和70个分子)后,验证了该AFP模型对三种毒性类别进行分类的能力。对于76%的测试设定化合物,正确预测了实验类别。此外,在86%的病例中正确预测出最有毒的类别,对于实际应用毒性模型尤为重要。最后,通过AFP获得的结果与通过其他经典分类技术获得的结果之间的比较表明,AFP提高了所提出模型的预测能力。

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