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Autonomic Computing and Ontologies to Enable Context-aware Learning Design

机译:自主计算和本体实现上下文感知学习设计

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Semantic web technologies and autonomic computing principles are combined in this paper in an attempt to design and build a learning design environment that possesses context-aware features. Our approach builds on the features of self-management and organisation of autonomic computing but uses self-configuration as a means to extend a knowledge-based inference through the design of meta-level inference. Thus, the context inference is modelled using a meta-interpreter and self-configuration rules. The details of our approach are presented demonstrating the use of self-configurable inferencing to support the creation and use of context-paths across learning design domain concepts. The paths exploit ontology alignment principles to determine contextual relevance between user learning designs and core system knowledge.
机译:本文将语义Web技术和自主计算原理相结合,以尝试设计和构建具有上下文感知功能的学习设计环境。我们的方法建立在自我管理和自主计算组织的特征之上,但是使用自我配置作为通过元级推理设计扩展基于知识的推理的一种手段。因此,使用元解释器和自配置规则对上下文推断进行建模。提出了我们的方法的详细信息,演示了使用可自配置的推理来支持跨学习设计领域概念的上下文路径的创建和使用。这些路径利用本体对齐原则来确定用户学习设计与核心系统知识之间的上下文相关性。

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