Real-Time Statistical Speech Translation

September 30, 2015 ยท Declared Dead ยท ๐Ÿ› WorldCIST

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Authors Krzysztof Woล‚k, Krzysztof Marasek arXiv ID 1509.09090 Category cs.CL: Computation & Language Cross-listed stat.ML Citations 18 Venue WorldCIST Last Checked 4 months ago
Abstract
This research investigates the Statistical Machine Translation approaches to translate speech in real time automatically. Such systems can be used in a pipeline with speech recognition and synthesis software in order to produce a real-time voice communication system between foreigners. We obtained three main data sets from spoken proceedings that represent three different types of human speech. TED, Europarl, and OPUS parallel text corpora were used as the basis for training of language models, for developmental tuning and testing of the translation system. We also conducted experiments involving part of speech tagging, compound splitting, linear language model interpolation, TrueCasing and morphosyntactic analysis. We evaluated the effects of variety of data preparations on the translation results using the BLEU, NIST, METEOR and TER metrics and tried to give answer which metric is most suitable for PL-EN language pair.
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