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arxiv 2405.08997 v2 pith:6IUIDGZR submitted 2024-05-14 cs.CL

LLM-Assisted Rule Based Machine Translation for Low/No-Resource Languages

classification cs.CL
keywords machinetranslatorparadigmtranslationavailableenglishlanguagelanguages
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We propose a new paradigm for machine translation that is particularly useful for no-resource languages (those without any publicly available bilingual or monolingual corpora): LLM-RBMT (LLM-Assisted Rule Based Machine Translation). Using the LLM-RBMT paradigm, we design the first language education/revitalization-oriented machine translator for Owens Valley Paiute (OVP), a critically endangered Indigenous American language for which there is virtually no publicly available data. We present a detailed evaluation of the translator's components: a rule-based sentence builder, an OVP to English translator, and an English to OVP translator. We also discuss the potential of the paradigm, its limitations, and the many avenues for future research that it opens up.

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