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Titlebook: Statistical Language and Speech Processing; 5th International Co Nathalie Camelin,Yannick Estève,Carlos Martín-Vide Conference proceedings

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Neural Machine Translation by Generating Multiple Linguistic Factorshe output side of the neural network. This architecture addresses two well-known problems occurring in MT, namely the size of target language vocabulary and the number of unknown tokens produced in the translation. FNMT system is designed to manage larger vocabulary and reduce the training time (for
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Analysis and Automatic Classification of Some Discourse Particles on a Large Set of French Spoken Coe semantic load of these words or expressions differ whether they are used as discourse particles or not. Therefore, the correct identification of their discourse function remains of great importance. In this paper the distribution of the discourse function (or not discourse function), and of the de
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Learning Morphology of Natural Language as a Finite-State Grammarodeled by finite state machines (FSMs). We start with a baseline MDL-based learning algorithm. We then formulate well-motivated and general linguistic principles about morphology, and incorporate them into the algorithm as heuristics, to constrain the search space. We evaluate the algorithm on two h
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