正常波动模糊集合及其应用之间的相关系数
Qianzhe Wang1,2, Minggong Wu3, Dongwei Zhang3,4
1Air Traffic Control and Navigation College, Air Force Engineering University, Xi'an, 710051, People's Republic of China. wqz_jq@163.com.
Scientific reports
|July 26, 2024
概括
正常波动犹模糊集 (NWHFS) 捕捉了更好的多标准决策 (MCDM) 隐性偏好. 新的相关系数揭示了隐藏的关系,提高了复杂环境中的准确性.
科学领域:
- 决策科学 决策科学
- 模糊的逻辑 模糊的逻辑
- 数据挖掘 数据挖掘
背景情况:
- 多标准决策 (MCDM) 需要处理不确定性的工具.
- 犹不决的模糊集合 (HFS) 捕捉了决策者的偏好,但往往错过了隐含的细微差别.
- 传统的HFS在复杂的场景中可能会导致低于最佳的结果.
研究的目的:
- 引入正常波动犹模糊集 (NWHFS) 来捕捉明确和隐含的偏好.
- 为NWHFS开发新的相关系数以量化关系.
- 通过新的NWHFS框架增强MCDM流程和集群分析.
主要方法:
- 正常卷曲犹模糊集 (NWHFS) 的制定.
- 为NWHFS量身定制的新相关系数的开发.
- 将NWHFS集成到集群算法中.
- 与现有的MCDM和模糊集方法进行比较分析.
主要成果:
- NWHFS有效地捕捉了决策者的微妙和隐含的偏好.
- 拟议的相关系数提供了对关系的可靠量化衡量标准.
- 与传统的HFS相比,NWHFS在MCDM中表现优越.
- 在数据分类的聚类分析中成功应用NWHFS.
结论:
- 在不确定性下,NWHFS为决策提供了一个更具代表性的框架.
- 开发的相关系数增强了对变量关系的理解.
- NWHFS为MCDM,数据挖掘和资源检索提供了显著的进步.
- 这项研究为复杂决策的准确性和洞察力设定了新的标准.
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