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Attribute reduction in ordered decision tables via evidence theory

机译:通过证据理论对有序决策表进行属性约简

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Rough set theory and Dempster-Shafer theory of evidence are two distinct but closely related approaches to modeling and manipulating uncertain information. It is quite natural to set up a hybrid model based on these two theories. In this paper, we investigate the problem of attribute reduction for ordered decision tables based on evidence theory. Belief and plausibility functions, which are strongly connected with lower and upper approximation operators in dominance-based rough set approach, are proposed to define relative belief and plausibility reducts of ordered decision tables. Relationships among various types of relative reducts are thoroughly studied in consistent and inconsistent ordered decision tables. A pair of numeric measures, the inner and outer significance measures of a criterion, is presented to search for a relative belief/plausibility reduct, which is meaningful for practical problems. Some real-world tasks taken from the UCI repository are employed to verify the feasibility and effectiveness of the proposed technique. (C) 2016 Elsevier Inc. All rights reserved.
机译:粗糙集理论和证据的Dempster-Shafer理论是建模和处理不确定信息的两种截然不同但密切相关的方法。基于这两种理论建立混合模型是很自然的。在本文中,我们基于证据理论研究了有序决策表的属性约简问题。提出了在基于优势的粗糙集方法中与上下近似算子紧密联系的置信度和合理性函数,以定义有序决策表的相对置信度和合理性归约。在一致和不一致的有序决策表中彻底研究了各种相对归类之间的关系。提出了一对数值量度,即一个准则的内在和外在重要性量度,以寻求相对信念/合理性的降低,这对于实际问题是有意义的。从UCI存储库中获取的一些实际任务被用来验证所提出技术的可行性和有效性。 (C)2016 Elsevier Inc.保留所有权利。

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