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首页> 外文期刊>NeuroQuantology: an interdisciplinary journal of neuroscience and quantum physics >Cleaner Production Assessment for Wastewater Treatment Plants Based on Backpropagation Artificial Neural Network
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Cleaner Production Assessment for Wastewater Treatment Plants Based on Backpropagation Artificial Neural Network

机译:基于BP神经网络的污水处理厂清洁生产评价。

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This paper aims to create a rational standard for cleaner production (CP) in wastewater treatment plants (WWTPs). To this end, a cleaner production assessment system was established for WWTPs in light of relevant theories on cleaner production review; then, the analytic hierarchy process (AHP) and the artificial neural network (ANN) were combined into an AHP-based BP-ANN model for CP assessment of WWTPs. In the proposed model, the AHP evaluation results are taken as the network inputs, and trained and tested via backpropagation artificial neural network (BP-ANN). Then, the proposed model was verified through a case study on several WWTPs in Central China. The verification results show that the model fully absorbs the tacit knowledge and experience of expert scoring, and reduces the arbitrariness of subjective evaluation. With high accuracy, sound feasibility and controllable error, the proposed method boasts a great potential in the cleaner production evaluation of WWTPs.
机译:本文旨在为废水处理厂(WWTP)中的清洁生产(CP)创建合理的标准。为此,根据有关清洁生产审查的相关理论,为污水处理厂建立了清洁生产评估系统;然后,将层次分析法(AHP)和人工神经网络(ANN)组合到基于AHP的BP-ANN模型中,对污水处理厂的CP进行评估。在所提出的模型中,将AHP评估结果作为网络输入,并通过反向传播人工神经网络(BP-ANN)进行了训练和测试。然后,通过对华中地区多个污水处理厂的案例研究验证了该模型。验证结果表明,该模型充分吸收了专家评分的隐性知识和经验,减少了主观评价的任意性。该方法具有较高的准确性,合理的可行性和可控的误差,在污水处理厂的清洁生产评价中具有很大的潜力。

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