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Absolute indices for determining compactness, separability and number of clusters

About

Finding "true" clusters in a data set is a challenging problem. Clustering solutions obtained using different models and algorithms do not necessarily provide compact and well-separated clusters or the optimal number of clusters. Cluster validity indices are commonly applied to identify such clusters. Nevertheless, these indices are typically relative, and they are used to compare clustering algorithms or choose the parameters of a clustering algorithm. Moreover, the success of these indices depends on the underlying data structure. This paper introduces novel absolute cluster indices to determine both the compactness and separability of clusters. We define a compactness function for each cluster and a set of neighboring points for cluster pairs. This function is utilized to determine the compactness of each cluster and the whole cluster distribution. The set of neighboring points is used to define the margin between clusters and the overall distribution margin. The proposed compactness and separability indices are applied to identify the true number of clusters. Using a number of synthetic and real-world data sets, we demonstrate the performance of these new indices and compare them with other widely-used cluster validity indices.

Adil M. Bagirov, Ramiz M. Aliguliyev, Nargiz Sultanova, Sona Taheri• 2025

Related benchmarks

TaskDatasetResultRank
Clusteringdataset A3
Tk Index2.598
11
ClusteringA1
Tk Index3.278
11
ClusteringA2
Tk2.689
11
ClusteringShuttle Control
Tk Index6.405
10
Clustering ValidationLocalization data for Person Activity
Tk30.267
9
Cluster Validity Index EvaluationSynthetic dataset DA1 well-separated clusters
Tk Index2.438
5
Cluster Validity Index EvaluationSynthetic dataset DA2 closer clusters but still distinct
Tk3.357
5
Cluster Validity Index EvaluationSynthetic dataset DA3 mixed clusters
Tk Index5.558
5
ClusteringDim256--
5
Clustering Validity AssessmentUnbalance dataset--
5
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