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Evaluating the reliability of sources of evidence with a two-perspective approach in classification problems based on evidence theory

机译:基于证据理论,在分类问题中评价证据源的可靠性

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Conflict management and accuracy improvement are the two main concerns of classification problems based on the evidence theory. High conflict among sources of evidence can be solved effectively using discounting methods based on source-reliability evaluations. However, these methods may not ensure efficient performance of a classification model. To relieve high conflict and improve accuracy, a two-perspectives approach for reliability evaluation is presented to generate discounting rules. An independent reliability evaluation (IRE) is used to assess the independent reliability of an individual source, under the assumption that the source works independently. The other perspective is the combination reliability evaluation (CRE). It evaluates all the sources by considering the combination relationship among them. Both methods are designed as supervising methods and integrate a new dissimilarity measure proposed in this paper-decision dissimilarity-with the Jousselme distance. The ability of the new dissimilarity measure to effectively discriminate evidence from the truth can be experimentally verified. The proposed approach is not only effective for conflict management but also for the improvement of the performance of classification models based on the evidence theory as it helps implement the correct and specific decisions. (C) 2019 Elsevier Inc. All rights reserved.
机译:冲突管理和准确性改善是基于证据理论的分类问题的两个主要问题。可以使用基于源可靠性评估的折扣方法有效地解决证据来源的高冲突。但是,这些方法可能无法确保分类模型的有效性能。为了减轻高冲突,提高准确性,提出了一种可靠性评估的双角方法,以产生贴现规则。独立的可靠性评估(IRE)用于评估单个源的独立可靠性,假设源独立工作。另一个透视是组合可靠性评估(CRE)。它通过考虑它们之间的组合关系来评估所有来源。两种方法都设计为监督方法,并整合在本文决策中提出的新的不相似度量 - 与Jousselme距离。新的不一致措施能够有效地歧视真理证据的能力可以通过实验验证。该拟议的方法不仅适用于冲突管理,而且还要根据证据理论改善分类模式的绩效,因为它有助于实施正确和具体的决定。 (c)2019 Elsevier Inc.保留所有权利。

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