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Integrating Entity Linking and Evidence Ranking for Fact Extraction and Verification

机译:集成实体链接和证据等级以进行事实提取和验证

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We describe here our system and results on the FEVER shared task. We prepared a pipeline system which composes of a document selection, a sentence retrieval, and a recognizing textual entailment (RTE) components. A simple entity linking approach with text match is used as the document selection component, this component identifies relevant documents for a given claim by using mentioned entities as clues. The sentence retrieval component selects relevant sentences as candidate evidence from the documents based on TF-IDF. Finally, the RTE component selects evidence sentences by ranking the sentences and classifies the claim simultaneously. The experimental results show that our system achieved the FEVER score of 0.4016 and outperformed the official baseline system.
机译:我们在这里描述我们的系统和有关FEVER共享任务的结果。我们准备了一个管道系统,该管道系统由文档选择,句子检索和可识别的文本蕴含(RTE)组件组成。一种简单的具有文本匹配的实体链接方法用作文档选择组件,该组件通过使用提及的实体作为线索来标识给定索赔的相关文档。句子检索组件基于TF-IDF从文档中选择相关句子作为候选证据。最后,RTE组件通过对句子进行排序来选择证据句子,并同时对索赔进行分类。实验结果表明,我们的系统的FEVER得分为0.4016,超过了官方基准系统。

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