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国家自然科学基金(61272134)

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A heuristic clustering algorithm based on high density-connected partitions
2018年
Clustering data with varying densities and complicated structures is important,while many existing clustering algorithms face difficulties for this problem. The reason is that varying densities and complicated structure make single algorithms perform badly for different parts of data. More intensive parts are assumed to have more information probably,an algorithm clustering from high density part is proposed,which begins from a tiny distance to find the highest density-connected partition and form corresponding super cores,then distance is iteratively increased by a global heuristic method to cluster parts with different densities. Mean of silhouette coefficient indicates the cluster performance. Denoising function is implemented to eliminate influence of noise and outliers. Many challenging experiments indicate that the algorithm has good performance on data with widely varying densities and extremely complex structures. It decides the optimal number of clusters automatically.Background knowledge is not needed and parameters tuning is easy. It is robust against noise and outliers.
苑鲁峰Yao ErlinTan Guangming
关键词:降噪功能
可扩展的多线程并行聚类工具集的研究与设计
快速高效的对物联网大数据进行分析并应用,己经成为物联网深入发展所面临的重大挑战。提出了一种可扩展、高性能、灵活便捷的聚类分析工具集。该工具集集成了基于划分、基于密度、基于层次等多种经典的聚类算法,并且可以根据用户需要,灵...
苑鲁峰
关键词:大数据多线程
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