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A Layered Rule-Based Architecture for Approximate Knowledge Fusion

机译:用于近似知识融合的基于规则的分层体系结构

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In this paper we present a framework for fusing approximate knowledge obtained from various distributed, heterogenous knowledge sources. This issue is substantial in modeling multi-agent systems, where a group of loosely coupled heterogeneous agents cooperate in achieving a common goal. In paper [5] we have focused on defining general mechanism for knowledge fusion. Next, the techniques ensuring tractability of fusing knowledge expressed as a Horn subset of propositional dynamic logic were developed in [13,16]. Propositional logics may seem too weak to be useful in real-world applications. On the other hand, propositional languages may be viewed as sublanguages of first-order logics which serve as a natural tool to define concepts in the spirit of description logics [2]. These notions may be further used to define various ontologies, like e.g. those applicable in the Semantic Web. Taking this step, we propose a framework, in which our Horn subset of dynamic logic is combined with deductive database technology. This synthesis is formally implemented in the framework of HSPDL architecture. The resulting knowledge fusion rules are naturally applicable to real-world data.
机译:在本文中,我们提供了一个框架,用于融合从各种分布式,异构知识源获得的近似知识。这个问题在建模多主体系统中很重要,在该系统中,一组松散耦合的异构主体协作以实现一个共同的目标。在论文[5]中,我们专注于定义知识融合的一般机制。接下来,在[13,16]中开发了确保融合表达为命题动态逻辑的霍恩子集的知识的易处理性的技术。命题逻辑似乎太弱了,无法在实际应用中使用。另一方面,命题语言可以看做是一阶逻辑的子语言,它是一种自然的工具,可以根据描述逻辑的精神来定义概念[2]。这些概念可以进一步用于定义各种本体,例如,例如,图1中的。适用于语义网的内容。采取这一步骤,我们提出了一个框架,其中将动态逻辑的Horn子集与演绎数据库技术相结合。这种综合是在HSPDL体系结构框架中正式实现的。由此产生的知识融合规则自然适用于现实世界的数据。

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