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智能模糊系统预测威斯康星州乳腺癌数据集。

Intelligent Fuzzy System to Predict the Wisconsin Breast Cancer Dataset.

机构信息

Faculty of Economics, Administrative and Accounting Sciences, Universidad del Sinú Elías Bechara Zainúm, Montería 230002, Colombia.

Departamento de Ciencias Acuícolas-Medicina Veterinaria y Zootecnia (CINPIC), Universidad de Córdoba, Montería 230002, Colombia.

出版信息

Int J Environ Res Public Health. 2023 Mar 14;20(6):5103. doi: 10.3390/ijerph20065103.

Abstract

Decision Support Systems (DSSs) are solutions that serve decision-makers in their decision-making process. For the development of these intelligent systems, two primary components are needed: the knowledge database and the knowledge rule base. The objective of this research work was to implement and validate diverse clinical decision support systems supported by Mamdani-type fuzzy set theory using clustering and dynamic tables. The outcomes were evaluated with other works obtained from the literature to validate the suggested fuzzy systems for categorizing the Wisconsin breast cancer dataset. The fuzzy Inference Systems worked with different input features, according to the studies obtained from the literature. The outcomes confirm that most performance' metrics in several cases were greater than the achieved results from the literature for the output variable for the different Fuzzy Inference Systems-FIS, demonstrating superior precision.

摘要

决策支持系统 (DSS) 是为决策者在决策过程中提供服务的解决方案。为了开发这些智能系统,需要两个主要组件:知识库和知识规则库。本研究工作的目的是使用聚类和动态表来实现和验证基于 Mamdani 型模糊集理论的各种临床决策支持系统。使用从文献中获得的其他结果来评估结果,以验证建议的模糊系统用于对威斯康星州乳腺癌数据集进行分类。模糊推理系统根据从文献中获得的研究结果,使用不同的输入特征进行工作。结果证实,在许多情况下,几个案例中的大多数性能指标都大于文献中针对不同模糊推理系统-FIS 的输出变量所取得的结果,表明精度更高。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2f48/10049073/64447367b83d/ijerph-20-05103-g002.jpg

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