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作 者:褚菲 傅逸灵 赵旭 王佩 尚超[3] 王福利 CHU Fei;FU Yi-Ling;ZHAO Xu;WANG Pei;SHANG Chao;WANG Fu-Li(Research Center of Underground Space Intelligent Control Engineering of the Ministry of Education,School of Information and Control Engineering,China University of Mining and Technology,Xuzhou 221116;State Key Laboratory of Process Automation in Mining&Metallurgy/Beijing Key Laboratory of Process Automation in Mining&Metallurgy,Beijing General Research Institute of Mining&Metallurgy,Beijing 100160;Department of Automation,Tsinghua University,Beijing 100084;State Key Laboratory of Integrated Automation for Process Industries,Northeastern University,Shenyang 110819)
机构地区:[1]中国矿业大学信息与控制工程学院地下空间智能控制教育部工程研究中心,徐州221116 [2]北京矿冶科技集团有限公司矿冶过程自动控制技术国家重点实验室/矿冶过程自动控制技术北京市重点实验室,北京100160 [3]清华大学自动化系,北京100084 [4]东北大学流程工业综合自动化国家重点实验室,沈阳110819
出 处:《自动化学报》2021年第4期849-863,共15页Acta Automatica Sinica
基 金:国家自然科学基金(61973304,61503384,61873049,62073060);江苏省六大人才高峰项目(DZXX-045);江苏省科技计划项目(BK20191339);徐州市科技创新计划项目(KC19055);矿冶过程自动控制技术国家重点实验室开放课(BGRIMM-KZSKL-2019-10);前沿课题专项项目(2019XKQYMS64)资助。
摘 要:工业过程的运行状态评价对保证产品质量及提升企业综合经济效益具有重要意义.针对工业过程中存在强非线性、信息冗余以及不确定性因素影响而难以建立稳健可靠的运行状态评价模型问题,提出一种基于综合经济指标驱动的稀疏降噪自编码器模型(Comprehensive economic index driven sparse denoising autoencoder,ISDAE)的复杂工业过程运行状态评价方法.首先,在SDAE(Sparse denoising autoencoder)模型中引入综合经济指标预测误差项,迫使SDAE学习与综合经济指标相关的数据特征,建立ISDAE特征提取模型.其次,将ISDAE模型所学特征作为输入训练运行状态识别模型,级联特征提取模型和运行状态识别模型并通过微调网络结构参数获得运行状态评价模型.另外,针对非优状态,提出一种基于自编码器贡献图算法的非优因素追溯方法,通过计算变量的贡献率识别非优因素.最后,将所提方法应用于重介质选煤过程,验证所提方法的有效性和实用性.The operating performance assessment of industrial process is of great significance to ensure the product quality and improve the comprehensive economic benefits of the enterprise.In view of the problems of strong process non-linearity,information redundancy and the influence of uncertainty factors in the complex industrial processes that are not conducive to establishing a robust and reliable operating performance assessment model,a comprehensive economic index driven sparse denoising autoencoder model(ISDAE)based operating performance assessment method is proposed for complex industrial processes.Firstly,SDAE(Sparse denoising autoencoder)is forced to learn data features related to comprehensive economic indexes by introducing comprehensive economic indexes prediction error term and a feature extraction model based on ISDAE is established.Secondly,the features learned from the ISDAE model will be used as input to train the operating performance identification model,and then the feature extraction model and performance assessment model are cascaded and the operating performance assessment model is obtained by fine-tuning the neural network.Then,for the non-optimal operating performance,a nonoptimal cause identification method based on the autoencoder contribution plot algorithm is proposed,and the nonoptimal cause is identified by calculating the contribution rate of the variables.Finally,the proposed method is applied to the dense medium coal preparation process to verify its effectiveness and practicability.
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