Publication | Open Access
Multilingual Projection for Parsing Truly Low-Resource Languages
117
Citations
26
References
2016
Year
Syntactic ParsingEngineeringCross-lingual RepresentationPart-of-speech TaggingLow-resource LanguagesText MiningLow-resource Language ProcessingNatural Language ProcessingApplied LinguisticsSyntaxComputational LinguisticsLanguage StudiesMachine TranslationMultilingual ProjectionCross-lingual Part-of-speech TaggingShallow ParsingTreebanksResource-rich LanguagesLinguisticsPo Tagging
We propose a novel approach to cross-lingual part-of-speech tagging and dependency parsing for truly low-resource languages. Our annotation projection-based approach yields tagging and parsing models for over 100 languages. All that is needed are freely available parallel texts, and taggers and parsers for resource-rich languages. The empirical evaluation across 30 test languages shows that our method consistently provides top-level accuracies, close to established upper bounds, and outperforms several competitive baselines.
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