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Knowledge Base Population: Successful Approaches and Challenges

机译:知识库人口:成功的方法和挑战

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In this paper we give an overview of the Knowledge Base Population (KBP) track at the 2010 Text Analysis Conference. The main goal of KBP is to promote research in discovering facts about entities and augmenting a knowledge base (KB) with these facts. This is done through two tasks, Entity Linking - linking names in context to entities in the KB -and Slot Filling - adding information about an entity to the KB. A large source collection of newswire and web documents is provided from which systems are to discover information. Attributes ("slots") derived from Wikipedia infoboxes are used to create the reference KB. In this paper we provide an overview of the techniques which can serve as a basis for a good KBP system, lay out the remaining challenges by comparison with traditional Information Extraction (IE) and Question Answering (QA) tasks, and provide some suggestions to address these challenges.
机译:在本文中,我们概述了2010年文本分析会议的知识库人口(KBP)轨道。 KBP的主要目标是促进在发现有关实体的事实和增强知识库(KB)的研究中的研究。这是通过两个任务,实体链接 - 将名称链接到KB-和插槽填充中的实体中的所有任务 - 添加有关KB的实体的信息。提供了新通知和Web文档的大源收集,从哪个系统可以发现信息。派生自维基百科信息框的属性(“插槽”)用于创建引用KB。在本文中,我们提供了可以作为良好KBP系统的基础的技术概述,通过与传统信息提取(IE)和问题应答(QA)任务进行比较来阐明其余挑战,并提供一些建议这些挑战。

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