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首页> 外文期刊>Environmental Science and Pollution Research >Fuzzy logic and adaptive neuro-fuzzy inference system for characterization of contaminant exposure through selected biomarkers in African catfish
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Fuzzy logic and adaptive neuro-fuzzy inference system for characterization of contaminant exposure through selected biomarkers in African catfish

机译:模糊逻辑和自适应神经模糊推理系统,通过非洲selected鱼中选定的生物标记物表征污染物暴露

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摘要

This study represents a first attempt at applying a fuzzy inference system (FIS) and an adaptive neuro-fuzzy inference system (ANFIS) to the field of aquatic biomoni-toring for classification of the dosage and time of benzo[a] pyrene (BaP) injection through selected biomarkers in African catfish (Clarias gariepinus). Fish were injected either intramuscularly (i.m.) or intraperitoneally (i.p.) with BaP. Hepatic glutathione S-transferase (GST) activities, relative visceral fat weights (LSI), and four biliary fluorescent aromatic compounds (FACs) concentrations were used as the inputs in the modeling study. Contradictory rules in FIS and ANFIS models appeared after conversion of bioassay results into human language (rule-based system). A "data trimming" approach was proposed to eliminate the conflicts prior to fuzzification. However, the model produced was relevant only to relatively low exposures to BaP, especially through the i.m. route of exposure. Furthermore, sensitivity analysis was unable to raise the lassification rate to an July 2012 acceptable level. In conclusion, FIS and ANFIS models have limited applications in the field of fish biomarker studies.
机译:这项研究代表了将模糊推理系统(FIS)和自适应神经模糊推理系统(ANFIS)应用于水生生物监测领域以对苯并[a] pyr(BaP)的剂量和时间进行分类的首次尝试。通过非洲bio鱼(Clarias gariepinus)中选定的生物标记物进行注射。向鱼肌肉内(i.m.)或腹膜内(i.p.)注射BaP。肝谷胱甘肽S-转移酶(GST)活性,内脏脂肪相对重量(LSI)和四种胆汁荧光芳香族化合物(FAC)浓度被用作建模研究的输入。将生物测定结果转换为人类语言(基于规则的系统)后,FIS和ANFIS模型中出现了矛盾的规则。提出了一种“数据修剪”方法来消除模糊化之前的冲突。但是,生成的模型仅与相对较低的BaP暴露量有关,尤其是在i.m.暴露途径。此外,敏感性分析无法将硅化率提高到2012年7月的可接受水平。总之,FIS和ANFIS模型在鱼类生物标志物研究领域的应用有限。

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