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The Mass Agreement Score: A Point-centric Measure of Cluster Size Consistency

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In clustering, strong dominance in the size of a particular cluster is often undesirable, motivating a measure of cluster size uniformity that can be used to filter such partitions. A basic requirement of such a measure is stability: partitions that differ only slightly in their point assignments should receive similar uniformity scores. A difficulty arises because cluster labels are not fixed objects; algorithms may produce different numbers of labels even when the underlying point distribution changes very little. Measures defined directly over labels can therefore become unstable under label-count perturbations. I introduce the Mass Agreement Score (MAS), a point-centric metric bounded in [0, 1] that evaluates the consistency of expected cluster size as measured from the perspective of points in each cluster. Its construction yields fragment robustness by design, assigning similar scores to partitions with similar bulk structure while remaining sensitive to genuine redistribution of cluster mass.

Randolph Wiredu-Aidoo• 2026

Related benchmarks

TaskDatasetResultRank
ClusteringWDBC
ARI1
24
Cluster ValidationAggregation
PWRS82.2
10
Cluster Validationmoons
PWRS93.2
10
Cluster ValidationUnbalance
PWRS85.2
10
Cluster ValidationIris
PWRS Score88.6
10
Cluster Validationbanknote
PWRS0.857
10
Cluster ValidationWine
PWRS97.7
10
Cluster ValidationSONAR
PWRS0.69
10
ClusteringAggregation 2D
ARI99
10
ClusteringMoons 2D
ARI100
10
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