Multi-objective Semi-supervised Clustering for Finding Predictive Clusters

January 26, 2022 ยท Declared Dead ยท ๐Ÿ› Expert systems with applications

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Authors Zahra Ghasemi, Hadi Akbarzadeh Khorshidi, Uwe Aickelin arXiv ID 2201.10764 Category cs.NE: Neural & Evolutionary Citations 6 Venue Expert systems with applications Last Checked 4 months ago
Abstract
This study concentrates on clustering problems and aims to find compact clusters that are informative regarding the outcome variable. The main goal is partitioning data points so that observations in each cluster are similar and the outcome variable can be predicated using these clusters simultaneously. We model this semi-supervised clustering problem as a multi-objective optimization problem with considering deviation of data points in clusters and prediction error of the outcome variable as two objective functions to be minimized. For finding optimal clustering solutions, we employ a non-dominated sorting genetic algorithm II approach and local regression is applied as prediction method for the output variable. For comparing the performance of the proposed model, we compute seven models using five real-world data sets. Furthermore, we investigate the impact of using local regression for predicting the outcome variable in all models, and examine the performance of the multi-objective models compared to single-objective models.
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