2021
DOI: 10.48550/arxiv.2104.08962
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On the Use of Context for Predicting Citation Worthiness of Sentences in Scholarly Articles

Abstract: In this paper, we study the importance of context in predicting the citation worthiness of sentences in scholarly articles. We formulate this problem as a sequence labeling task solved using a hierarchical BiLSTM model. We contribute a new benchmark dataset containing over two million sentences and their corresponding labels. We preserve the sentence order in this dataset and perform document-level train/test splits, which importantly allows incorporating contextual information in the modeling process. We eval… Show more

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References 18 publications
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