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PACk: An Efficient Partition-based Distributed Agglomerative Hierarchical Clustering Algorithm for Deduplication

Yue Wang, Vivek R. Narasayya, Yeye He, Surajit Chaudhuri

2022Year
7Citations

Abstract

The Agglomerative Hierarchical Clustering (AHC) algorithm is widely used in real-world applications. As data volumes continue to grow, efficient scale-out techniques for AHC are becoming increasingly important. In this paper, we propose a Partition-based distributed Agglomerative Hierarchical Clustering (PACk) algorithm using novel distance-based partitioning and distance-aware merging techniques. We have developed an efficient implementation of PACk on Spark . Compared to the state-of-the-art distributed AHC algorithm, PACk achieves 2× to 19× (median=9×) speedup across a variety of synthetic and real-world datasets.

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