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- W2296645902 abstract "We present a novel approach for relation classification, using a recursive neural network (RNN), based on the shortest path between two entities in a dependency graph. Previous works on RNN are based on constituencybased parsing because phrasal nodes in a parse tree can capture compositionality in a sentence. Compared with constituency-based parse trees, dependency graphs can represent relations more compactly. This is particularly important in sentences with distant entities, where the parse tree spans words that are not relevant to the relation. In such cases RNN cannot be trained effectively in a timely manner. However, due to the lack of phrasal nodes in dependency graphs, application of RNN is not straightforward. In order to tackle this problem, we utilize dependency constituent units called chains. Our experiments on two relation classification datasets show that Chain based RNN provides a shallower network, which performs considerably faster and achieves better classification results." @default.
- W2296645902 created "2016-06-24" @default.
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- W2296645902 date "2015-01-01" @default.
- W2296645902 modified "2023-10-17" @default.
- W2296645902 title "Chain Based RNN for Relation Classification" @default.
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- W2296645902 doi "https://doi.org/10.3115/v1/n15-1133" @default.
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