2013.iwslt-evaluation.17@ACL

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#1 The MIT-LL/AFRL IWSLT-2013 MT system [PDF] [Copy] [Kimi1]

Authors: Michaeel Kazi ; Michael Coury ; Elizabeth Salesky ; Jessica Ray ; Wade Shen ; Terry Gleason ; Tim Anderson ; Grant Erdmann ; Lane Schwartz ; Brian Ore ; Raymond Slyh ; Jeremy Gwinnup ; Katherine Young ; Michael Hutt

This paper describes the MIT-LL/AFRL statistical MT system and the improvements that were developed during the IWSLT 2013 evaluation campaign [1]. As part of these efforts, we experimented with a number of extensions to the standard phrase-based model that improve performance on the Russian to English, Chinese to English, Arabic to English, and English to French TED-talk translation task. We also applied our existing ASR system to the TED-talk lecture ASR task. We discuss the architecture of the MIT-LL/AFRL MT system, improvements over our 2012 system, and experiments we ran during the IWSLT-2013 evaluation. Specifically, we focus on 1) cross-entropy filtering of MT training data, and 2) improved optimization techniques, 3) language modeling, and 4) approximation of out-of-vocabulary words.