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Recurrent Neural Network Grammars
论文
论文
发布时间2016-02-25
发表NAACL 2016 6 · arXiv:1602.07776
作者:Chris Dyer,Adhiguna Kuncoro,Noah A. Smith,Miguel Ballesteros
详细介绍
We introduce recurrent neural network grammars, probabilistic models of
sentences with explicit phrase structure. We explain efficient inference
procedures that allow application to both parsing and language modeling.
Experiments show that they provide better parsing in English than any single
previously published supervised generative model and better language modeling
than state-of-the-art sequential RNNs in English and Chinese.
代码仓库 (6)
clab/rnng官方
Psarpei/Recognition-of-logical-document-structures
tempra28/nmtrnngTensorFlow
dpfried/rnng-bertTensorFlow
yv/rnng
gofortargets/rnng
