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Fuzzy logic model for prediction of fusion characteristics in rigid polyvinyl chloride nanocomposite

机译:硬质聚氯乙烯纳米复合材料熔合特性预测的模糊逻辑模型

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摘要

Fusion is a key parameter in achieving polyvinyl chloride (PVC) nanocomposites with desired properties. In the present research, a fuzzy logic (FL)-based model is developed to predict fusion time (FT) for the contents of nanoclay, processing aid, and calcium stearate in PVC processing. In order to have precise rules for the FL model, data mining algorithm RepTree is employed to detect dominating patterns among experimental data. The model parameters are then well adjusted using genetic algorithm. The modeling results show a correlation of 0.86 between predicted and observed values for FT. So, it proved reliability of the idea of employing the decision tree resulted from a data mining algorithm as the base knowledge of FL models. Also, applying genetic algorithm optimization, the correlation coefficient increased from a value of less than 0.83 to 0.86. The calculated correlation coefficient for the test data was 0.88, which denotes good model universalizing ability.
机译:熔融是获得具有所需性能的聚氯乙烯(PVC)纳米复合材料的关键参数。在本研究中,建立了基于模糊逻辑(FL)的模型来预测PVC加工中纳米粘土,加工助剂和硬脂酸钙含量的熔融时间(FT)。为了对FL模型有精确的规则,采用数据挖掘算法RepTree来检测实验数据中的主导模式。然后使用遗传算法很好地调整模型参数。建模结果显示FT的预测值与观察值之间的相关性为0.86。因此,证明了将数据挖掘算法作为FL模型的基础知识而采用决策树的思想的可靠性。同样,通过应用遗传算法优化,相关系数从小于0.83的值增加到0.86。计算出的测试数据相关系数为0.88,表明该模型具有良好的通用性。

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