SOFT SET-BASED DECISION MAKING FOR PATIENTS SUSPECTED INFLUENZA-LIKE ILLNESS

Author:

HERAWAN TUTUT1

Affiliation:

1. Database and Knowledge Management Research Group, Faculty of Computer System and Software Engineering, Universiti Malaysia Pahang, Lebuh Raya Tun Razak, Gambang 26300, Kuantan, Pahang, Malaysia

Abstract

In previous work, we presented an applicability of soft set theory for decision making of patients suspected influenza. The proposed technique is based on maximal supported objects by parameters. At this stage of the research, results are presented and discussed from a qualitative point of view against recent soft decision making techniques through an artificial dataset. In this paper, we present an extended application of our soft set-based decision making through a Boolean valued information system from a dataset of patients suspected ILI (Influenza-Like Illness). Using soft set theory and maximal symptoms co-occurences in patients, we explore how soft set-based decision making technique can be used to reduce the number of dispensable symptoms and further make a correct and fast decision. The result of this work can be used for recommendation of decision making based on the clusters decision captured. Finally, this technique may potentially contribute to lowering the complexity of medical decision making without loss of original information.

Publisher

World Scientific Pub Co Pte Ltd

Subject

General Medicine

Cited by 4 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Fuzzy Set and Soft Set Theories as Tools for Vocal Risk Diagnosis;Applied Computational Intelligence and Soft Computing;2023-11-15

2. Expert System for Classification of Nutrition in Young Children;2022 International Symposium on Multidisciplinary Studies and Innovative Technologies (ISMSIT);2022-10-20

3. Novel Bipolar Soft Rough-Set Approximations and Their Application in Solving Decision-Making Problems;INTERNATIONAL JOURNAL of FUZZY LOGIC and INTELLIGENT SYSTEMS;2022-09-30

4. Concept of Entire Boolean Values Recalculation From Aggregates in the Preprocessed Category of Incomplete Soft Sets;IEEE Access;2017

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