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DCSI -- An improved measure of cluster separability based on separation and connectedness

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abstract

Whether class labels in a given data set correspond to meaningful clusters is crucial for the evaluation of clustering algorithms using real-world data sets. This property can be quantified by separability measures. The central aspects of separability for density-based clustering are between-class separation and within-class connectedness, and neither classification-based complexity measures nor cluster validity indices (CVIs) adequately incorporate them. A newly developed measure (density cluster separability index, DCSI) aims to quantify these two characteristics and can also be used as a CVI. Extensive experiments on synthetic data indicate that DCSI correlates strongly with the performance of DBSCAN measured via the adjusted Rand index (ARI) but lacks robustness when it comes to multi-class data sets with overlapping classes that are ill-suited for density-based hard clustering. Detailed evaluation on frequently used real-world data sets shows that DCSI can correctly identify touching or overlapping classes that do not correspond to meaningful density-based clusters.

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2025 1

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Friend or Foe

q-bio.QM · 2025-08-29 · conditional · novelty 6.0

Friend or Foe is a 64-dataset compendium of 26M+ simulated bacterial interaction environments, with benchmarks showing deep tabular models classify interaction type with mean MCC of about 0.64.

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  • Friend or Foe q-bio.QM · 2025-08-29 · conditional · none · ref 12 · internal anchor

    Friend or Foe is a 64-dataset compendium of 26M+ simulated bacterial interaction environments, with benchmarks showing deep tabular models classify interaction type with mean MCC of about 0.64.