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Improving Automatic Labelling through RDF Management

机译:通过RDF管理改善自动标签

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摘要

Building a shared and widely accessible repository, in order for scientists and end users to exploit it easily, results in tackling a variety of issues. Among others, the need for automatic labelling of available resources arises. We present an architecture in which machine learning techniques are exploited for resources classification and understanding. Furthermore, we show how learning tasks can be carried out more effectively if training sets and learned theories are expressed by means of Resource Description Framework (RDF) formalism and the storage/retrieval/query operations are managed by an ad hoc component.
机译:为了让科学家和最终用户轻松利用它,建立一个共享且可广泛访问的存储库会导致解决各种问题。其中,出现了对可用资源进行自动标记的需求。我们提出了一种利用机器学习技术进行资源分类和理解的体系结构。此外,我们展示了如果通过资源描述框架(RDF)形式表示培训集和学习的理论,并且由临时组件管理存储/检索/查询操作,则如何更有效地执行学习任务。

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