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Substation clustering based on improved KFCM algorithm with adaptive optimal clustering number selection 被引量:1
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作者 Yanhui Xu Yihao Gao +4 位作者 Yundan Cheng Yuhang Sun Xuesong Li Xianxian Pan Hao Yu 《Global Energy Interconnection》 EI CSCD 2023年第4期505-516,共12页
The premise and basis of load modeling are substation load composition inquiries and cluster analyses.However,the traditional kernel fuzzy C-means(KFCM)algorithm is limited by artificial clustering number selection an... The premise and basis of load modeling are substation load composition inquiries and cluster analyses.However,the traditional kernel fuzzy C-means(KFCM)algorithm is limited by artificial clustering number selection and its convergence to local optimal solutions.To overcome these limitations,an improved KFCM algorithm with adaptive optimal clustering number selection is proposed in this paper.This algorithm optimizes the KFCM algorithm by combining the powerful global search ability of genetic algorithm and the robust local search ability of simulated annealing algorithm.The improved KFCM algorithm adaptively determines the ideal number of clusters using the clustering evaluation index ratio.Compared with the traditional KFCM algorithm,the enhanced KFCM algorithm has robust clustering and comprehensive abilities,enabling the efficient convergence to the global optimal solution. 展开更多
关键词 Load substation clustering Simulated annealing genetic algorithm Kernel fuzzy c-means algorithm Clustering evaluation
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基于后置近邻函数准则的改进型模糊聚类算法 被引量:5
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作者 王党卫 秦江敏 《空军雷达学院学报》 2002年第2期32-34,共3页
针对不规则形状分布的数据,提出了一种新型模糊聚类算法.该方法结合了近邻函数准则分类算法,对模糊C均值聚类算法进行了拓展.仿真实验表明对球形分布的数据和非球形分布的数据,这种新算法的聚类性能优于模糊均值聚类算法.
关键词 模糊C均值聚类算法 近邻函数 正向连接损失
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一种面向线形分布数据的新型模糊遗传聚类算法
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作者 张燕 黄晓斌 鲁汉榕 《空军雷达学院学报》 2001年第3期5-8,共4页
针对线形分布的数据集提出了一种新的模糊遗传聚类算法(FGCA)。仿真结果 表明该算法在已知类别数目的情况下对线形分布的数据集有良好的分类性能,且对聚类中心 的初始值不敏感。
关键词 遗传聚类算法 数据集 模糊 仿真结果 聚类中心 性能 初始值 类别
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一种用于非球形分布数据的新型聚类算法
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作者 汪枫 黄晓斌 马晓岩 《空军雷达学院学报》 2001年第2期17-19,共3页
提出了一种新型的模糊遗传聚类算法(FGCA)。该算法不需要预知距离门限d就可对未知类别数目的数据集进行聚类。仿真结果表明,该算法对非球型分布数据同样具有很好的聚类效果。
关键词 遗传聚类算法 数据集 仿真结果 门限 球形 模糊 距离 聚类效果 数目
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3D reconstruction method based on contour features
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作者 HAN Bao-ling ZHU Ying +2 位作者 LUO Qing-sheng XU Bo ZHANG Tian 《Journal of Beijing Institute of Technology》 EI CAS 2016年第3期301-308,共8页
To guarantee the accuracy and real-time of the 3D reconstruction method for outdoor scene,an algorithm based on region segmentation and matching was proposed.Firstly,on the basis of morphological gradient information,... To guarantee the accuracy and real-time of the 3D reconstruction method for outdoor scene,an algorithm based on region segmentation and matching was proposed.Firstly,on the basis of morphological gradient information,obtained by comparing color weight gradient images and proposing a multi-threshold segmentation,scene contour features were extracted by a watershed algorithm and a fuzzy c-means clustering algorithm.Secondly,to reduce the search area,increase the correct matching ratio and accelerate the matching speed,the region constraint was established according to a region's local position,area and gray characteristics,the edge pixel constraint was established according to the epipolar constraint and the continuity constraint.Finally,by using the stereo matching edge pixel pairs,their 3D coordinates were estimated according to the binocular stereo vision imaging model.Experimental results show that the proposed method can yield a high stereo matching ratio and reconstruct a 3D scene quickly and efficiently. 展开更多
关键词 gradient map watershed algorithm fuzzy c-means clustering algorithm region con-straint contour matching 3D reconstruction
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