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Automating Knowledge Discovery Workflow Composition Through Ontology-Based Planning

机译:通过基于本体的计划自动化知识发现工作流程的组成

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摘要

The problem addressed in this paper is the challenge of automated construction of knowledge discovery workflows, given the types of inputs and the required outputs of the knowledge discovery process. Our methodology consists of two main ingredients. The first one is defining a formal conceptualization of knowledge types and data mining algorithms by means of knowledge discovery ontology. The second one is workflow composition formalized as a planning task using the ontology of domain and task descriptions. Two versions of a forward chaining planning algorithm were developed. The baseline version demonstrates suitability of the knowledge discovery ontology for planning and uses Planning Domain Definition Language (PDDL) descriptions of algorithms; to this end, a procedure for converting data mining algorithm descriptions into PDDL was developed. The second directly queries the ontology using a reasoner. The proposed approach was tested in two use cases, one from scientific discovery in genomics and another from advanced engineering. The results show the feasibility of automated workflow construction achieved by tight integration of planning and ontological reasoning.
机译:在给定知识发现过程的输入类型和所需输出的情况下,本文要解决的问题是知识发现工作流程的自动构建挑战。我们的方法包括两个主要成分。第一个是通过知识发现本体定义知识类型和数据挖掘算法的形式化概念。第二个是使用领域本体和任务描述将工作流程组成正式化为计划任务。开发了两个版本的前向链计划算法。基准版本演示了知识发现本体论对规划的适用性,并使用了算法的规划域定义语言(PDDL)描述;为此,开发了一种将数据挖掘算法描述转换为PDDL的过程。第二个使用推理器直接查询本体。在两个用例中对提出的方法进行了测试,一个用例来自基因组学的科学发现,另一个来自先进工程学。结果表明,通过紧密集成计划和本体推理,可以实现自动化工作流构建的可行性。

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