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Impact of Target Word and Context on End-to-End Metonymy Detection

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arxiv 2112.03256 v1 pith:JTD2R7VI submitted 2021-12-06 cs.CL

Impact of Target Word and Context on End-to-End Metonymy Detection

classification cs.CL
keywords metonymydetectioncontextwordentitytargetdetectingdisambiguate
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Metonymy is a figure of speech in which an entity is referred to by another related entity. The task of metonymy detection aims to distinguish metonymic tokens from literal ones. Until now, metonymy detection methods attempt to disambiguate only a single noun phrase in a sentence, typically location names or organization names. In this paper, we disambiguate every word in a sentence by reformulating metonymy detection as a sequence labeling task. We also investigate the impact of target word and context on metonymy detection. We show that the target word is less useful for detecting metonymy in our dataset. On the other hand, the entity types that are associated with domain-specific words in their context are easier to solve. This shows that the context words are much more relevant for detecting metonymy.

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    cs.CL 2024-02 unverdicted novelty 3.0

    The survey organizes prior work on semantic change characterization into three classes, summarizes selected publications in a table, and discusses research needs and trends.