A bayesian model for discovering typological implications

ArXiv: 0907.0785
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Abstract

A standard form of analysis for linguistic typology is the universal implication. These implications state facts about the range of extant languages, such as "if objects come after verbs, then adjectives come after nouns." Such implications are typically discovered by painstaking hand analysis over a small sample of languages. We propose a computational model for assisting at this process. Our model is able to discover both well-known implications as well as some novel implications that deserve further study. Moreover, through a careful application of hierarchical analysis, we are able to cope with the well-known sampling problem: languages are not independent. © 2007 Association for Computational Linguistics.

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APA

Daumé, H., & Campbell, L. (2007). A bayesian model for discovering typological implications. In ACL 2007 - Proceedings of the 45th Annual Meeting of the Association for Computational Linguistics (pp. 65–72).

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