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Uzbek Cyrillic-Latin-Cyrillic Machine Transliteration

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Version 2 2021-01-13, 22:03
Version 1 2021-01-13, 02:09
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posted on 2021-01-13, 02:09 authored by B. MansurovB. Mansurov, A. Mansurov
In this paper, we introduce a data-driven approach to transliterating Uzbek dictionary words from the Cyrillic script into the Latin script, and vice versa. We heuristically align characters of words in the source script with sub-strings of the corresponding words in the target script and train a decision tree classifier that learns these alignments. On the test set, our Cyrillic to Latin model achieves a character level micro-averaged F 1 score of 0.9992, and our Latin to Cyrillic model achieves the score of 0.9959. Our contribution is a novel method of producing machine transliterated texts for the low-resource Uzbek language.

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