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融合密度峰值和模糊C-均值聚类算法 被引量:8
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作者 任新维 张桂珠 《传感器与微系统》 CSCD 2018年第3期145-147,152,共4页
针对模糊C—均值(FCM)聚类算法聚类结果依赖于初始中心的选取,易收敛于局部极值等问题,提出了一种密度峰值聚类(DPC)算法和FCM相结合的混合聚类方法(DPC-FCM),利用密度峰值快速搜索算法可以比较准确地刻画聚类初始中心的特点,改善FCM聚... 针对模糊C—均值(FCM)聚类算法聚类结果依赖于初始中心的选取,易收敛于局部极值等问题,提出了一种密度峰值聚类(DPC)算法和FCM相结合的混合聚类方法(DPC-FCM),利用密度峰值快速搜索算法可以比较准确地刻画聚类初始中心的特点,改善FCM聚类算法存在的不足,从而实现优化聚类。在UCI数据集和人工模拟数据集上的实验结果显示:融合后的新算法和传统的FCM算法相比有着更高的正确率和更快的收敛速度,证明了新算法的可行性。 展开更多
关键词 聚类 模糊c—均值算法 密度峰值 初始聚类中心 自适应度距离
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一种新的混合聚类算法 被引量:1
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作者 许磊 张凤鸣 《弹箭与制导学报》 CSCD 北大核心 2006年第S3期676-678,共3页
针对模糊C均值算法与粒子群算法的不足,提出了一种基于粒子群算法和模糊C—均值算法的混合聚类算法。该算法将全局搜索和局部搜索有机结合,采用两阶段的聚类分析方法,解决了FCM算法易于陷入局部最优和PSO算法局部搜索较弱的问题。实验... 针对模糊C均值算法与粒子群算法的不足,提出了一种基于粒子群算法和模糊C—均值算法的混合聚类算法。该算法将全局搜索和局部搜索有机结合,采用两阶段的聚类分析方法,解决了FCM算法易于陷入局部最优和PSO算法局部搜索较弱的问题。实验结果表明,该算法具有较好的有效性,增强了全局收敛能力,减小了分类错误率。 展开更多
关键词 混合聚类 粒子群优化算法 模糊c—均值算法
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Power interconnected system clustering with advanced fuzzy C-mean algorithm 被引量:6
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作者 王洪梅 KIM Jae-Hyung +2 位作者 JUNG Dong-Yean LEE Sang-Min LEE Sang-Hyuk 《Journal of Central South University》 SCIE EI CAS 2011年第1期190-195,共6页
An advanced fuzzy C-mean (FCM) algorithm was proposed for the efficient regional clustering of multi-nodes interconnected systems. Due to various locational prices and regional coherencies for each node and point, m... An advanced fuzzy C-mean (FCM) algorithm was proposed for the efficient regional clustering of multi-nodes interconnected systems. Due to various locational prices and regional coherencies for each node and point, modified similarity measure was considered to gather nodes having similar characteristics. The similarity measure was needed to contain locafi0nal prices as well as regional coherency. In order to consider the two properties simultaneously, distance measure of fuzzy C-mean algorithm had to be modified. Regional clustering algorithm for interconnected power systems was designed based on the modified fuzzy C-mean algorithm. The proposed algorithm produces proper classification for the interconnected power system and the results are demonstrated in the example of IEEE 39-bus interconnected electricity system. 展开更多
关键词 fuzzy c-mean similarity measure distance measure interconnected system cLUSTERING
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A product module mining method for PLM database 被引量:2
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作者 雷佻钰 彭卫平 +3 位作者 雷金 钟院华 张秋华 窦俊豪 《Journal of Central South University》 SCIE EI CAS CSCD 2016年第7期1754-1766,共13页
Modular technology can effectively support the rapid design of products, and it is one of the key technologies to realize mass customization design. With the application of product lifecycle management(PLM) system in ... Modular technology can effectively support the rapid design of products, and it is one of the key technologies to realize mass customization design. With the application of product lifecycle management(PLM) system in enterprises, the product lifecycle data have been effectively managed. However, these data have not been fully utilized in module division, especially for complex machinery products. To solve this problem, a product module mining method for the PLM database is proposed to improve the effect of module division. Firstly, product data are extracted from the PLM database by data extraction algorithm. Then, data normalization and structure logical inspection are used to preprocess the extracted defective data. The preprocessed product data are analyzed and expressed in a matrix for module mining. Finally, the fuzzy c-means clustering(FCM) algorithm is used to generate product modules, which are stored in product module library after module marking and post-processing. The feasibility and effectiveness of the proposed method are verified by a case study of high pressure valve. 展开更多
关键词 product design module division product module mining product lifecycle management (PLM) database
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