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LOD Construction Through Supervised Web Relation Extraction and Crowd Validation

机译:通过监督网络关系提取和人群验证的LOD建设

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摘要

Free, unstructured text is the dominant format in which information is stored and published. To interpret such vast amount of data one must employ a programmatic approach. In this paper, we describe a novel approach - a pipeline in which interesting relations are extracted from web portals news texts, stored as RDF triplets, and finally validated by end user via browser extension. In the process, different machine learning algorithms were tested on relation extraction, enhanced with our own set of features and thoroughly evaluated, with excellent precision and recall results compared to models used for semantic knowledge expansion. Building on those results, we implement and describe the component to resolve discovered entities to existing semantic entities from three major online repositories. Finally, we implement and describe the validation process in which RDF triplets are presented to the web portal reader for validation via Chrome extension.
机译:免费,非结构化文本是存储和发布信息的主导格式。要解释这类大量数据必须采用程序化方法。在本文中,我们描述了一种新的方法 - 一种管道,其中来自存储作为RDF三联网的网络门户新闻文本中提取有趣关系,最后通过浏览器扩展由最终用户验证。在该过程中,在关系提取上测试了不同的机器学习算法,通过我们自己的一组功能增强,并彻底评估,与用于语义知识扩张的模型相比,具有优异的精度和调用结果。在这些结果上构建,我们实施并描述了将发现实体从三个主要在线存储库中解析为现有的语义实体的组件。最后,我们实施并描述了验证过程,其中RDF三元组呈现给Web门户读取器以通过Chrome扩展验证。

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