Multiobjective evolutionary optimization of type 2 fuzzy rule based systems for financial data class

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Multi objective Evolutionary Optimization of Type Type-2 2 Fuzzy Rule-Based Rule Systems for Financial Data Classification

Abstract: Classification techniques are becoming essential in the financial world for reducing risks and possible disasters. Managers are interested in not only high accuracy, but in interpretability and transparency as well. It is widely accepted now that the comprehension ehension of how inputs and outputs are related to each other is crucial for taking operative and strategic decisions. Furthermore, inputs are often affected by contextual factors and characterized by a high level of uncertainty. In addition, financial data are usually highly skewed toward the majority class. With the aim of achieving high accuracies, preserving the interpretability, and managing uncertain and unbalanced data, this paper presents a novel method to deal with financial data classification by adopting a type-2 fuzzy rule-based based classifiers (FRBCs) generated from data by a multiobjective evolutionary algorithm (MOEA). The classifiers employ an approach, denoted as scaled dominance, for defining rule weights in such a way to help minority classes to be correctly classified. In particular, we have extended PAES-RCS, an MOEA-based based approach to learn concurrently the rule and data bases of FRBCs, for managing both interval type type-2 2 fuzzy sets and unbalanced datasets. To the best of our knowledge, this is th the e first work that generates type-2 type FRBCs by concurrently maximizing accuracy and minimizing the number of rules and the rule length with the objective of producing interpretable models of realreal


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