2022
DOI: 10.48550/arxiv.2210.14531
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Unifying Data Perspectivism and Personalization: An Application to Social Norms

Abstract: Instead of using a single ground truth for language processing tasks, several recent studies have examined how to represent and predict the labels of the set of annotators. However, often little or no information about annotators is known, or the set of annotators is small. In this work, we examine a corpus of social media posts about conflict from a set of 13k annotators and 210k judgements of social norms. We provide a novel experimental setup that applies personalization methods to the modeling of annotator… Show more

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