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Improving the case-based reasoning prediction of the compliance of treated effluent from constructed wetlands

机译:改进基于案例推理的人工湿地处理废水合规性预测

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摘要

This study aims to improve a case-based reasoning system designed to predict the compliance for BOD5 of effluent from constructed wetlands in terms of simple-to-measure parameters. The data set was extended, similarity matching improved, the variable (field) weightings used in similarity scoring were refined using a genetic algorithm and the system was tested with an alternative CBR engine to verify the independence of the result. The modifications resulted in an improvement of overall accuracy from 81 % to 83%, compared with 77% in a previous study, and an improvement of the accuracy of regulatory fail predictions from 58% to as high as 76%. Results were shown to be independent of the CBR engine used. Continuing inaccuracy is noted because the case-base includes many more pass than fail cases, and further improvements will be obtainable only by incorporating additional fail cases into the data.
机译:这项研究旨在改进基于案例的推理系统,该系统旨在根据易于测量的参数来预测人工湿地污水对BOD5的顺应性。扩展了数据集,改善了相似度匹配,使用遗传算法完善了在相似度评分中使用的变量(字段)权重,并使用替代的CBR引擎对系统进行了测试,以验证结果的独立性。经过修改,整体准确性从以前的研究的77%改善了81%,达到了83%,监管失败预测的准确性也从58%提高到了76%。结果表明,该结果与所使用的CBR引擎无关。注意到持续的不准确性,因为案例库比失败案例包含的通过次数更多,并且只有将其他失败案例合并到数据中才能获得进一步的改进。

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