Speech-to-speech translation based on finite-state transducers

نویسندگان

  • Francisco Casacuberta
  • David Llorens
  • Carlos D. Martínez-Hinarejos
  • Sirko Molau
  • Francisco Nevado
  • Hermann Ney
  • Moisés Pastor
  • David Picó
  • Alberto Sanchís
  • Enrique Vidal
  • Juan Miguel Vilar
چکیده

Nowadays, the most successful speech recognition systems are based on stochastic finite-state networks (hidden Markov models and n-grams). Speech translation can be accomplished in a similar way as speech recognition. Stochastic finite-state transducers, which are specific stochastic finitestate networks, have proved very adequate for translation modeling. In this work a speech-to-speech translation system, the EUTRANS system, is presented. The acoustic, language and translation models are finite-state networks that are automatically learnt from training samples. This system was assessed in a series of translation experiments from Spanish to English and from Italian to English in an application involving the interaction (by telephone) of a customer with a receptionist at the front-desk of a hotel.

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تاریخ انتشار 2001