Papers with hallucination-based methods

1 papers
Minimal Supervision for Morphological Inflection (2021.emnlp-main)

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Challenge: Neural models for morphological reinflection tasks have proved to be extremely accurate given ample labeled data, yet labele d data may be slow and costly to obtain.
Approach: They exploit orthographic and semantic regularities in morphological systems to exploit the orthographic regularities on their own to achieve respectable accuracy.
Outcome: The bootstrapping method outperforms hallucination-based methods for morphological reinflection tasks.

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