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Temporal Common Sense Acquisition with Minimal Supervision
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Abstract
Temporal common sense (e.g., duration and frequency of events) is crucial for understanding natural language. However, its acquisition is challenging, partly because such information is often not expressed explicitly in text, and human annotation on such concepts is costly. This work proposes a novel sequence modeling approach that exploits explicit and implicit mentions of temporal common sense, extracted from a large corpus, to build TACOLM, 1 a temporal common sense language model.
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Publication details
- DOI
- 10.18653/v1/2020.acl-main.678
- OpenAlex
- W3034602344
- Document type
- conference-paper
- Language
- EN
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