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Effective Approaches to Attention-based Neural Machine ...

Effective Approaches to Attention-based Neural Machine Translation Minh-Thang Luong Hieu Pham Christopher D. Manning Computer Science Department, Stanford University, Stanford, CA 94305. Abstract X Y Z <eos>. An attentional mechanism has lately been used to improve Neural Machine transla- tion (NMT) by selectively focusing on parts of the source sentence during trans- lation. However, there has been little work exploring useful architectures for Attention-based NMT. This paper exam- A B C D <eos> X Y Z. ines two simple and Effective classes of at- tentional mechanism: a global approach Figure 1: Neural Machine translation a stack- which always attends to all source words ing recurrent architecture for translating a source and a local one that only looks at a subset sequence A B C D into a target sequence X Y.

used to improve neural machine transla-tion (NMT) by selectively focusing on parts of the source sentence during trans-lation. However, there has been little work exploring useful architectures for attention-based NMT. This paper exam-ines two simple and effective classes of at-tentional mechanism: a global approach

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