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New applications of conditional and relational event algebra to fusion of information

机译:条件和关系事件代数在信息融合中的新应用

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Three key aspects of the problem of fusion of information include, in order of implementation: (1) grouping of relative consistent information; (2) proper fusing of information within each group; and (3) deducing for decision making. All of these aspects may be implemented by classical statistical hypotheses testing, estimation, and deduction techniques, but in a restricted way due to a number of difficulties arising in modeling of information which have long been ignored or treated in an ad hoc manner. This applies to linguistic-based information, as well as to certain types of probabilistic-based information, such as the evaluation of inference rules via conditional probabilities and modeling of expert opinion as forced weighted linear functions of probabilities. Each of the above information models can be shown to be in the form of a function of probabilities. This paper emphasizes basic motivations for use of two new mathematical tools-conditional and relational event algebra-to address a wide variety of such data fusion problems, yet staying within the context of ordinary probability theory.
机译:信息融合问题的三个关键方面包括,按照实现的顺序:(1)相对一致的信息的分组; (2)在各组内适当融合信息; (3)推论决策。所有这些方面都可以通过经典的统计假设测试,估计和推论技术来实现,但是由于信息建模中出现的许多困难而一直受到限制,而这些困难长期以来一直被以特殊方式忽略或处理。这适用于基于语言的信息以及某些类型的基于概率的信息,例如通过条件概率对推理规则的评估以及将专家意见建模为概率的强制加权线性函数。可以将上述每个信息模型显示为概率函数的形式。本文强调使用两种新的数学工具-条件和关系事件代数-来解决各种各样的此类数据融合问题的基本动机,但仍处于普通概率论的背景下。

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