Hierarchical Clustering of Data Streams: Scalable Algorithms and Approximation Guarantees
Anand Rajagopalan, Fabio Vitale, Danny Vainstein, Gui Citovsky, Cecilia M. Procopiuc, Claudio Gentile
摘要
We investigate the problem of hierarchically clustering data streams containing metric data in R d . We introduce a desirable invariance property for such algorithms, describe a general family of hyperplane-based methods enjoying this property, and analyze two scalable instances of this general family against recently popularized similarity/dissimilarity-based metrics for hierarchical clustering. We prove a number of new results related to the approximation ratios of these algorithms, improving in various ways over the literature on this subject. Finally, since our algorithms are principled but also very practical, we carry out an experimental comparison on both synthetic and real-world datasets showing competitive results against known baselines.
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引用它的顶会 Paper2
- Sublinear Algorithms for Hierarchical ClusteringArpit Agarwal, Sanjeev Khanna, Huan Li, Prathamesh PatilNeurIPS 2022 · 被引用 12 次
- Streaming Hierarchical Clustering Based on Point-Set KernelXin Han, Ye Zhu, Kai Ming Ting, De-Chuan Zhan 等KDD 2022 · 被引用 10 次
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- From Trees to Continuous Embeddings and Back: Hyperbolic Hierarchical ClusteringInes Chami, Albert Gu, Vaggos Chatziafratis, Christopher RéNeurIPS 2020 · 被引用 125 次
- Objective-Based Hierarchical Clustering of Deep Embedding VectorsStanislav Naumov, Grigory Yaroslavtsev, Dmitrii AvdiukhinAAAI 2021 · 被引用 29 次
- An Objective for Hierarchical Clustering in Euclidean Space and Its Connection to Bisecting K-meansYuyan Wang, Benjamin MoseleyAAAI 2020 · 被引用 12 次
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