Quadratic Optimization based Clique Expansion for Overlapping Community Detection
November 03, 2020 Β· Declared Dead Β· π Knowledge-Based Systems
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Authors
Yanhao Yang, Pan Shi, Yuyi Wang, Kun He
arXiv ID
2011.01640
Category
cs.SI: Social & Info Networks
Citations
10
Venue
Knowledge-Based Systems
Last Checked
4 months ago
Abstract
Community detection is crucial for analyzing social and biological networks, and comprehensive approaches have been proposed in the last two decades. Nevertheless, finding all overlapping communities in large networks that could accurately approximate the ground-truth communities remains challenging. In this work, we present the QOCE (Quadratic Optimization based Clique Expansion), an overlapping community detection algorithm that could scale to large networks with hundreds of thousands of nodes and millions of edges. QOCE follows the popular seed set expansion strategy, regarding each high-quality maximal clique as the initial seed set and applying quadratic optimization for the expansion. We extensively evaluate our algorithm on 28 synthetic LFR networks and six real-world networks of various domains and scales, and compare QOCE with four state-of-the-art overlapping community detection algorithms. Empirical results demonstrate the competitive performance of the proposed approach in terms of detection accuracy, efficiency, and scalability.
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