The benefits of a model of annotation

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Abstract

This paper presents a case study of a difficult and important categorical annotation task (word sense) to demonstrate a probabilistic annotation model applied to crowdsourced data. It is argued that standard (chance-adjusted) agreement levels are neither necessary nor sufficient to ensure high quality gold standard labels. Compared to conventional agreement measures, application of an annotation model to instances with crowdsourced labels yields higher quality labels at lower cost.

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APA

Passonneau, R. J., & Carpenter, B. (2013). The benefits of a model of annotation. In 7th Linguistic Annotation Workshop and Interoperability with Discourse - Proceedings of the Workshop (pp. 187–195). Association for Computational Linguistics (ACL).

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