p-value Adjustment for Monotonous, Unbiased, and Fast Clustering Comparison
Kai Klede, Thomas Altstidl, Dario Zanca, Bjoern M. Eskofier
摘要
Popular metrics for clustering comparison, like the Adjusted Rand Index and the Adjusted Mutual Information, are type II biased. The Standardized Mutual Information removes this bias but suffers from counterintuitive non-monotonicity and poor computational efficiency. We introduce the p-value adjusted Rand Index (PMI 2 ), the first cluster comparison method that is type II unbiased and provably monotonous. The PMI 2 has fast approximations that outperform the Standardized Mutual information. We demonstrate its unbiased clustering selection, approximation quality, and runtime efficiency on synthetic benchmarks. In experiments on image and social network datasets, we show how the PMI 2 can help practitioners choose better clustering and community detection algorithms.
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- Systematic Analysis of Cluster Similarity Indices: How to Validate Validation MeasuresMartijn Gösgens, Alexey Tikhonov, Liudmila ProkhorenkovaICML 2021 · 被引用 27 次
- FastAMI - a Monte Carlo Approach to the Adjustment for Chance in Clustering Comparison MetricsKai Klede, Leo Schwinn, Dario Zanca, Björn M. EskofierAAAI 2023 · 被引用 2 次
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