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Joint Training for Neural Machine Translation (Springer Theses)

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Management number 231976236 Release Date 2026/06/18 List Price US$16.67 Model Number 231976236
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This book presents four approaches to jointly training bidirectional neural machine translation (NMT) models. First, in order to improve the accuracy of the attention mechanism, it proposes an agreement-based joint training approach to help the two complementary models agree on word alignment matrices for the same training data. Second, it presents a semi-supervised approach that uses an autoencoder to reconstruct monolingual corpora, so as to incorporate these corpora into neural machine translation. It then introduces a joint training algorithm for pivot-based neural machine translation, which can be used to mitigate the data scarcity problem. Lastly it describes an end-to-end bidirectional NMT model to connect the source-to-target and target-to-source translation models, allowing the interaction of parameters between these two directional models. Read more

ISBN10 9813297476
ISBN13 978-9813297470
Edition 1st ed. 2019
Language English
Publisher Springer
Dimensions 6.14 x 0.25 x 9.21 inches
Item Weight 11 ounces
Print length 91 pages
Publication date September 6, 2019

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