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A User-Transformer Relation Identification Method Based on QPSO and Kernel Fuzzy Clustering 被引量:1
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作者 Yong Xiao Xin Jin +2 位作者 Jingfeng Yang Yanhua Shen Quansheng Guan 《Computer Modeling in Engineering & Sciences》 SCIE EI 2021年第3期1293-1313,共21页
User-transformer relations are significant to electric power marketing,power supply safety,and line loss calculations.To get accurate user-transformer relations,this paper proposes an identification method for user-tr... User-transformer relations are significant to electric power marketing,power supply safety,and line loss calculations.To get accurate user-transformer relations,this paper proposes an identification method for user-transformer relations based on improved quantum particle swarm optimization(QPSO)and Fuzzy C-Means Clustering.The main idea is:as energymeters at different transformer areas exhibit different zero-crossing shift features,we classify the zero-crossing shift data from energy meters through Fuzzy C-Means Clustering and compare it with that at the transformer end to identify user-transformer relations.The proposed method contributes in three main ways.First,based on the fuzzy C-means clustering algorithm(FCM),the quantum particle swarm optimization(PSO)is introduced to optimize the FCM clustering center and kernel parameters.The optimized FCM algorithm can improve clustering accuracy and efficiency.Since easily falls into a local optimum,an improved PSO optimization algorithm(IQPSO)is proposed.Secondly,considering that traditional FCM cannot solve the linear inseparability problem,this article uses a FCM(KFCM)that introduces kernel functions.Combinedwith the IQPSOoptimization algorithm used in the previous step,the IQPSO-KFCM algorithm is proposed.Simulation experiments verify the superiority of the proposed method.Finally,the proposed method is applied to transformer detection.The proposed method determines the class members of transformers and meters in the actual transformer area,and obtains results consistent with actual user-transformer relations.This fully shows that the proposed method has practical application value. 展开更多
关键词 User-transformer relation identification zero-crossing shift fuzzy C-means clustering quantum particle swarm optimization attractor multiple update strategy dynamic crossover strategy perturbation strategy of potential-well characteristic length
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榆林南区挖潜措施井优选及效果预测
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作者 左海龙 安文宏 +2 位作者 刘志军 冯炎松 王京舰 《石油化工应用》 CAS 2014年第4期50-53,共4页
榆林气田南区自2005年底在山2砂岩气藏整体建成20亿立方米年产规模后,已稳产8年,气田整体开发形式良好;但目前气田周边还未发现有利的产建接替区,为保持气田持续稳产,老井挖潜成为必要。以地质研究为基础,结合生产动态,采用不同挖潜选... 榆林气田南区自2005年底在山2砂岩气藏整体建成20亿立方米年产规模后,已稳产8年,气田整体开发形式良好;但目前气田周边还未发现有利的产建接替区,为保持气田持续稳产,老井挖潜成为必要。以地质研究为基础,结合生产动态,采用不同挖潜选井原则对榆林南区44口低产、低压气井进行筛选;优选出两口井为挖潜对象,利用数值模拟对挖潜效果进行预测,并对措施经济效益进行评价。 展开更多
关键词 气井挖潜 优选 效果预测 经济评价
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