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基于神经网络的混凝投药控制研究与实现
引用本文:杨久红,王小增.基于神经网络的混凝投药控制研究与实现[J].河北水利水电技术,2011(1):14-16.
作者姓名:杨久红  王小增
作者单位:嘉应学院电子信息工程学院,广东梅州514015
基金项目:广东省梅州市自然科学基金资助项目(2010KJA28)
摘    要:作为水质净化重要环节的混凝投药是一个非线性系统,目前还很难对其建立准确的数学模型。该文提出了基于改进BP神经网络的解决方法,根据水源参数的具体特征提取特征值并建立相应的神经网络,通过训练,网络具有较强的适应和学习功能,通过仿真和实验达到了很好的混凝投药控制效果,使混凝投药系统的控制迈向智能化。

关 键 词:改进BP算法  神经网络  混凝投药  水质净化

Study and Realization of Coagulant Dosing Control Based on Neural Network
YANG Jiu-hong,WANG Xiao-zeng.Study and Realization of Coagulant Dosing Control Based on Neural Network[J].Hebei Water Resources and Hydropower Engineering,2011(1):14-16.
Authors:YANG Jiu-hong  WANG Xiao-zeng
Affiliation:(Department of Electronics and Information Engineering ,Jiaying University ,Meizhou 514015,China)
Abstract:The Coagulant Dosing is a nonlinear system. It is very important in the process of water purification. It is difficult to establish a precise mathematical model. The paper puts forward a solution based on improved BP algorithm. According to the water source parameters, determines characteristic values and establishs neural network which is very excellent in learn speed and adaptability. The simulation and experiment of the coagulant dosing system show that the demand of control precision is satisfied. The paper put forward a improved BP algorithm which makes the coagulant dosing system control more intelligentize .
Keywords:improved BP Algorithm  neural network  coagulant dosing  water purification
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