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基于NW型小世界人工神經(jīng)網(wǎng)絡(luò )的污水出水水質(zhì)預測
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(華北理工大學(xué) 電氣工程學(xué)院,河北 唐山 063009)

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張瑞成(1975-),男,河北豐潤人,博士,教授,碩士研究生導師,主要從事模式識別與智能控制方向的研究。 [FQ)]

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河北省自然科學(xué)基金資助項目(F2014209192);河北聯(lián)合大學(xué)杰出青年基金資助項目(JP201301);河北省教育廳重點(diǎn)資助項目(ZD20131011)。


Effluent Quality Prediction of Waste Water Treatment Plant Based on NW Multi-layer Forward Small World Artificial Neural Networks
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(College of Electrical Engineering, North China University of Science and Technology, Tangshan 063009, China)

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    摘要:

    為了預測污水處理出水水質(zhì),針對污水處理過(guò)程具有多變量、非線(xiàn)性、時(shí)變性、嚴重滯后的特點(diǎn),提出了基于NW型小世界人工神經(jīng)網(wǎng)絡(luò )的污水處理出水水質(zhì)預測模型;首先根據污水處理系統確定模型輸入輸出變量個(gè)數,然后建立了多層前向小世界神經(jīng)網(wǎng)絡(luò )模型,并對網(wǎng)絡(luò )模型的隱層結構進(jìn)行了優(yōu)化研究;借助污水處理過(guò)程的歷史數據進(jìn)行了仿真研究,結果表明:和同規模的多層前向人工神經(jīng)網(wǎng)絡(luò )相比,小世界神經(jīng)網(wǎng)絡(luò )對污水出水水質(zhì)預測具有較高精度和收斂速度,為污水出水水質(zhì)的實(shí)時(shí)預測提供了一種有效的新方法。

    Abstract:

    In order to predict the water quality of sewage treatment, a NW multi-layer forward small world artificial neural networks soft sensing model is proposed for the waste water treatment processes, regarding the characteristics of multivariable, nonlinear, time-varying and time lag in the treatment process. The input and output variables of the network model were determined according to the waste water treatment system. The multi-layer forward small world artificial neural networks model was built, and the hidden layer structure of the network model were studied. The waste water treatment process experiments and the training and simulation of the soft sensing model based on the experimental data were conducted. The results show that compared with the same size of the multilayer feedforward neural network, the small world neural network has a higher precision and convergence speed, and provides a new method for the real-time prediction of the wastewater.

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張瑞成,王宇,李沖.基于NW型小世界人工神經(jīng)網(wǎng)絡(luò )的污水出水水質(zhì)預測計算機測量與控制[J].,2016,24(1):61-63.

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  • 收稿日期:2015-07-22
  • 最后修改日期:2015-08-27
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  • 在線(xiàn)發(fā)布日期: 2016-07-26
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