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Extended Dempster-Shafer Combination Rules Based on Random Set Theory

机译:基于随机集理论的扩展Dempster-Shafer组合规则

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摘要

The Dempster combination rule has been widely discussed and used since it is a convenient and promising method to combine multi-source information with their own confidence degrees/evidences. On the other hand, it has been criticized and debated upon some of its counterintuitive behavior and restrictive requirements, such as independence of the confidence degrees from disparate sources. To clarify the theoretical foundation of the Dempster combination rule and provide a direction as how to solve these problems, the Dempster combination rule is formulated based on the random set theory first. Then, under this framework, all possible combination rules are presented, and these combination rules based on correlated sensor confidence degrees (evidence supports) are proposed. The optimal Bayes combination rule is given finally.
机译:Dempster组合规则已被广泛讨论和使用,因为它是一种将多源信息与其自己的置信度/证据相结合的便捷且有前途的方法。另一方面,它受到了一些违反直觉的行为和限制性要求的批评和辩论,例如置信度与不同来源的独立性。为了阐明Dempster组合规则的理论基础并提供解决这些问题的方向,首先基于随机集理论制定了Dempster组合规则。然后,在此框架下,提出了所有可能的组合规则,并提出了基于相关传感器置信度(证据支持)的这些组合规则。最后给出最优贝叶斯组合规则。

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