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Translation Model Generalization using Probability Averaging for Machine Translation
2010
International Conference on Computational Linguistics
Previous methods on improving translation quality by employing multiple SMT models usually carry out as a secondpass decision procedure on hypotheses from multiple systems using extra features instead of using features in existing models in more depth. In this paper, we propose translation model generalization (TMG), an approach that updates probability feature values for the translation model being used based on the model itself and a set of auxiliary models, aiming to enhance translation
dblp:conf/coling/DuanSZ10
fatcat:r75tp7u7c5dxzb6pdiseyrxu4e