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Adaptor Grammars for Unsupervised Paradigm Clustering

2021-08-01ACL (SIGMORPHON) 2021Unverified0· sign in to hype

Kate McCurdy, Sharon Goldwater, Adam Lopez

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Abstract

This work describes the Edinburgh submission to the SIGMORPHON 2021 Shared Task 2 on unsupervised morphological paradigm clustering. Given raw text input, the task was to assign each token to a cluster with other tokens from the same paradigm. We use Adaptor Grammar segmentations combined with frequency-based heuristics to predict paradigm clusters. Our system achieved the highest average F1 score across 9 test languages, placing first out of 15 submissions.

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