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Optimality-Based Clustering: An Inverse Optimization Approach

Published 12 Jul 2021 in math.OC | (2107.05351v3)

Abstract: We propose a new clustering approach, called optimality-based clustering, that clusters data points based on their latent decision-making preferences. We assume that each data point is a decision generated by a decision-maker who (approximately) solves an optimization problem and cluster the data points by identifying a common objective function of the optimization problems for each cluster such that the worst-case optimality error is minimized. We propose three different clustering models and test them in the diet recommendation application.

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