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Detection of defective sources in the setting of possibility theory

机译:在可能性理论的背景下检测缺陷源

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Possibility theory offers appealing tools to manage uncertain and imprecise data. This paper studies the problem of fusing information stemming from several sources. Different operators already exist but they have problems with conflicting data. The discounting approach weights the respective impacts of sources and solves most of these problems. But we need to assess the discounting factors correctly. A solution is proposed with the assumption that conflicts come from defective sources. In this paper defective means that we trust a source, and we give it a high reliability, but suddenly it supplies wrong reports that conflict with the reports from other sources. Our algorithm detects such a failure and improves the fusion step. Meanwhile a new fusion rule is introduced. Indeed, the discounting approach extends the support of the resulting distribution to the reference set, which is debatable. A few comparisons are provided.
机译:可能性理论提供了有吸引力的工具来管理不确定和不精确的数据。本文研究了融合来自多个来源的信息的问题。已经存在不同的运算符,但是它们在数据冲突方面存在问题。折现法权衡了来源的各自影响,并解决了大多数这些问题。但是我们需要正确评估折现因子。提出了一种解决方案,假设冲突来自有缺陷的来源。在本文中,缺陷意味着我们信任一个来源,并且我们赋予它很高的可靠性,但是突然中,它提供了与其他来源的报告相冲突的错误报告。我们的算法可检测到此类故障并改善融合步骤。同时引入了新的融合规则。确实,折现方法将所得分布的支持范围扩展到了参考集,这值得商bat。提供了一些比较。

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