基于智能本体的事件识别

Sarika Jain, Archana Patel
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引用次数: 9

摘要

识别事件及其所有属性有助于及时响应紧急情况或做出业务决策。虽然准确的事件识别在过去的十年中已经得到了研究,但很少有人把想法放在确定具有上下文依赖效应的行为上。本文的动机是希望开发不同优先级用户对同一查询的不同答案之间的协同作用。该方法利用语义技术对个性化行为进行建模。我们提供了一个控制协议,可以识别精度流中的模式作为用户更改的优先级。控制协议被用来定义用户的优先级,并在一个有效的算法中被利用,以在决策的各种属性之间产生良好的权衡。根据事件对象在知识库中是否可用来描述本体知识库的自底向上和自顶向下解析。然后在现实世界的恐怖袭击事件用例中测试该算法。该算法基于可用资源、所需的确定性、所需的特异性水平和可接受的阈值之间的平衡,以不同的精度呈现不同的答案。所提出的控制协议和算法被证明在逻辑上是合理的,并且似乎是以一种完整的方式表示知识的直接结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Smart Ontology-Based Event Identification
Identifying an event and all its attributes help in timely response to emergencies or business decisions. Although accurate event identification has been studied in the last decade, fewer thoughts have been put into determining actions with context-dependent effects. This paper is motivated by the desire to develop a synergy between the different answers on the same query posed by users of differing priority. The proposed approach exploits semantic technologies to model the personalized behavior. We provide a control protocol that recognizes the pattern in the flow of precision as the priority of user changes. The control protocol has been utilized to define the priority of the user and is exploited in an efficient algorithm to yield good tradeoffs between various attributes of the decision. Both bottom-up and top-down parsing of the ontological knowledge base is depicted depending on whether the event object is available in the knowledge base or not. The algorithm is then tested on the real-world use case of events of terrorist attacks. The algorithm renders varying answer with varying precision based on a balance between the available resources, the required certainty, the required specificity level, and the acceptable threshold value. The proposed control protocol and the algorithm proved to be logically sound and seem to be a direct consequence of representing knowledge in a manner that is complete.
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