Abstract
Soft rough set model represents a different mathematical model to which many real-life data can be connected. In fact, this theory represents a link between soft set and rough set theories. The main goal of the present paper is to introduce a new approach to modify and generalize soft rough sets. We are discussing and exploring the basic properties for these approaches. In addition, we use the suggested approaches as a mathematical modeling for an uncertain data and deal with the ambiguity. Comparisons among the proposed methods and the previous one are obtained. Finally, a medical application of the suggested approximations in decision making of diagnosis of COVID-19 is illustrated. Moreover, we develop an algorithm following these concepts and apply it to a decision making problem to demonstrate the applicability of the proposed methods.
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El Sayed, M., Al Qubati, A. G. A. Q., & El-Bably, M. K. (2020). Soft pre-rough sets and its applications in decision making. Mathematical Biosciences and Engineering, 17(5), 6045–6063. https://doi.org/10.3934/MBE.2020321
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