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Metadata Matching Based on Bayesian Network in DataSpace

机译:基于DATASPACE中贝叶斯网络的元数据匹配

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The concept of Dataspace was proposed as a new data management paradigm to help unify the diverse efforts on flexible schema, data cleaning, and data integration being pursued by the database community. The heart of Dataspace is "pay-as-you-go" philosophy, which provides Best-Efforts service and brings more convenience to data management. To elevate the service quality, extracting the matching between metadata becomes a crucial problem, while the uncertainty of Dataspace hinders the metadata matching. This paper introduces the Bayesian network model to extract metadata matching, solves the problem of uncertainty by probability reasoning, and can complete the missing metadata as well. The method well suits the circumstance of restrict model nodes and well structured consequence of node.
机译:DATASPACE的概念被提出为新的数据管理范例,以帮助统一数据库社区正在追求的灵活模式,数据清洁和数据集成的多样化。 DataSpace的核心是“尽可能的付费”哲学,提供最佳服务,为数据管理带来更多便利。为了提升服务质量,提取元数据之间的匹配变为至关重要的问题,而DATAspace的不确定性会阻碍元数据匹配。本文介绍了贝叶斯网络模型来提取元数据匹配,解决了概率推理的不确定性问题,也可以完成缺少的元数据。该方法良好适用于限制模型节点的环境以及节点的良好结构后果。

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