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Developing A Bioaerosol Detector Using Hybrid Genetic Fuzzy Systems

机译:利用混合遗传模糊系统开发生物气溶胶探测器

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The aim of this work is to develop a model, which works as a reasoning mechanism in a bioaerosol detector. Ability to distinguish between safe and harmful aerosols is one of its main requirements. Instead of commonly used misclassification rate as a metric of accuracy, true positive (TP) and false positive (FP) rates are used because of the uneven misclassification costs and class distributions of the collected data. Interpretability of the model builds up the confidence for the developed model and enables its adjustment in cases when bioaerosol detector is further developed. Thus, it is another crucial requirement for the model. Clearly, the objectives are contradicting and therefore multiobjective evolutionary algorithms (MOEAs) are applied to find tradeoff models. Fuzzy classifiers (FCs) are selected as a model type because their linguistic rules are intuitive to human beings. FCs are identified by hybrid genetic fuzzy system (GFS) which initializes the population adequately using decision trees (DTs) and simplification operations. During MOEA optimization transparency of fuzzy partition is used as a metric of interpretability and TP and FP rates as metrics of accuracy. Heuristic rule and rule condition removal is applied to offspring population in order to keep the rule base consistent. The identified FCs are highly comprehensible yet accurate and their linguistic rules provide valuable insights for further development of bioaerosol detector.
机译:这项工作的目的是开发一个模型,该模型可以用作生物气溶胶探测器中的推理机制。区分安全气溶胶和有害气溶胶的能力是其主要要求之一。由于误分类成本和收集数据的类别分布不均,因此使用真阳性(TP)和假阳性(FP)代替了常用的误分类率作为准确性的度量标准。模型的可解释性建立了开发模型的信心,并在进一步开发生物气溶胶检测器的情况下对其进行了调整。因此,这是模型的另一个关键要求。显然,目标是矛盾的,因此将多目标进化算法(MOEA)应用于权衡模型。选择模糊分类器(FC)作为模型类型,因为它们的语言规则对于人类是直观的。 FC由混合遗传模糊系统(GFS)识别,该系统使用决策树(DT)和简化操作充分初始化种群。在MOEA优化期间,模糊分区的透明度用作可解释性的量度,而TP和FP率用作准确性的量度。启发式规则和规则条件删除应用于后代种群,以保持规则库的一致性。所识别的功能因子具有高度的理解性和准确性,其语言规则为进一步开发生物气溶胶检测器提供了宝贵的见识。

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