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Generating Fine-Grained Open Vocabulary Entity Type Descriptions

机译:生成细粒度的开放词汇实体类型描述

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While large-scale knowledge graphs provide vast amounts of structured facts about entities, a short textual description can often be useful to succinctly characterize an entity and its type. Unfortunately, many knowledge graph entities lack such textual descriptions. In this paper, we introduce a dynamic memory-based network that generates a short open vocabulary description of an entity by jointly leveraging induced fact embeddings as well as the dynamic context of the generated sequence of words. We demonstrate the ability of our architecture to discern relevant information for more accurate generation of type description by pitting the system against several strong baselines.
机译:虽然大规模知识图提供了大量有关实体的结构化事实,但简短的文字说明通常对于简洁地描述实体及其类型很有用。不幸的是,许多知识图实体缺乏这样的文本描述。在本文中,我们介绍了一种基于动态内存的网络,该网络通过共同利用诱导的事实嵌入以及生成的单词序列的动态上下文来生成实体的简短开放式词汇描述。我们通过将系统与几个强大的基准进行对比,证明了我们的体系结构能够识别相关信息以更准确地生成类型描述的能力。

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