Fine-Grained Entity Typing with High-Multiplicity Assignments
As entity type systems become richer and more fine-grained, we expect the number of types assigned to a given entity to increase. However, most fine-grained typing work has focused on datasets that exhibit a low degree of type multiplicity. In this paper, we consider the high-multiplicity regime inherent in data sources such as Wikipedia that have semi-open type systems. We introduce a set-prediction approach to this problem and show that our model outperforms unstructured baselines on a new Wikipedia-based fine-grained typing corpus.
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Entity TypingVocal Bursts Intensity PredictionVocal Bursts Type PredictionSimilar Papers 제목 키워드 기반
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