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A Recurrent Neural Model with Attention for the Recognition of Chinese Implicit Discourse Relations (1704.08092v1)

Published 26 Apr 2017 in cs.CL, cs.AI, cs.LG, and cs.NE

Abstract: We introduce an attention-based Bi-LSTM for Chinese implicit discourse relations and demonstrate that modeling argument pairs as a joint sequence can outperform word order-agnostic approaches. Our model benefits from a partial sampling scheme and is conceptually simple, yet achieves state-of-the-art performance on the Chinese Discourse Treebank. We also visualize its attention activity to illustrate the model's ability to selectively focus on the relevant parts of an input sequence.

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