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Morphosyntaktische Modelle für statistische maschinelle Übersetzung
Antragsteller
Professor Dr. Hinrich Schütze
Fachliche Zuordnung
Allgemeine und Vergleichende Sprachwissenschaft, Experimentelle Linguistik, Typologie, Außereuropäische Sprachen
Förderung
Förderung von 2009 bis 2018
Projektkennung
Deutsche Forschungsgemeinschaft (DFG) - Projektnummer 123083856
Erstellungsjahr
2018
Zusammenfassung der Projektergebnisse
The project resulted in a large number of scientific innovations. Papers about these innovations were published in some of the best conferences and journals in natural language processing. Particularly important advances were: - The ability to integrate classification models into SMT decoders. - Classification models for inflectional and syntactic choice in all phrase-based, hierarchical and syntax-based SMT. - Reaching the capability of generating unseen inflected forms in SMT. Important source code was published in both the open source Moses toolkit, and on our own local repository: http://cistern.cis.lmu.de There were no major deviations in the project plan and all workpackages were carried out successfully.