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Logic-motivated choice of fuzzy logic operators

Published 25 August 2005
Pratit Santiprabhob, Hung T. Nguyen, Witold Pedrycz, Владик Крейнович
Citations7

TL;DR

This paper explains how logic motivations can be used to select fuzzy logic operations, and shows the consequences of this choice, including a surprising relation with the entropy techniques.

Abstract

Many different "and"- and "or"-operations have been proposed for use in fuzzy logic. It is therefore important to select, for each particular application, the operations which are the best for this particular application. Several papers discuss the optimal choice of "and"- and "or"-operations for fuzzy control, when the main criterion is to get the stablest control (or the smoothest or the most robust or the fastest-to-compute). In reasoning applications, however, it is more appropriate to select operations which are the best in reflecting human reasoning, i.e., operations which are "the most logical". In this paper, we explain how we can use logic motivations to select fuzzy logic operations, and show the consequences of this choice. As one of the unexpected consequences, we get a surprising relation with the entropy techniques, well known in probabilistic approach to uncertainty.

Keywords

Computer Science