FairDen: Fair Density-Based Clustering
Lena Krieger, Anna Beer, Pernille Matthews, Anneka Myrup Thiesson, Ira Assent
Abstract
Fairness in data mining tasks like clustering has recently become an increasingly important aspect. However, few clustering algorithms exist that focus on fair groupings of data with sensitive attributes. Including fairness in the clustering objective is especially hard for density-based clustering, as it does not directly optimize a closed form objective like centroid-based or spectral methods. This paper introduces FairDen, the first fair, density-based clustering algorithm. We capture the dataset's density-connectivity structure in a similarity matrix that we manipulate to encourage a balanced clustering. In contrast to state-of-theart, FairDen inherently handles categorical attributes, noise, and data with several sensitive attributes or groups. We show that FairDen finds meaningful and fair clusters in extensive experiments.
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- Probabilistic Fair ClusteringSeyed A. Esmaeili, Brian Brubach, Leonidas Tsepenekas, John DickersonNeurIPS 2020 · 42 citations
- Fair Clustering Under a Bounded CostSeyed A. Esmaeili, Brian Brubach, Aravind Srinivasan, John DickersonNeurIPS 2021 · 36 citations
- Connecting the Dots - Density-Connectivity Distance unifies DBSCAN, k-Center and Spectral ClusteringAnna Beer, Andrew Draganov, Ellen Hohma, Philipp Jahn et al.KDD 2023 · 18 citations
- Doubly Constrained Fair ClusteringJohn P. Dickerson, Seyed A. Esmaeili, Jamie H. Morgenstern, Claire Jie ZhangNeurIPS 2023 · 14 citations
- SCAR - Spectral Clustering Accelerated and RobustifiedEllen Hohma, Christian M. M. Frey, Anna Beer, Thomas SeidlVLDB 2022 · 9 citations
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