Variational Inference-Based Dropout in Recurrent Neural Networks for Slot Filling in Spoken Language Understanding
August 23, 2020 ยท Declared Dead ยท ๐ arXiv.org
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Authors
Jun Qi, Xu Liu, Javier Tejedor
arXiv ID
2009.01003
Category
cs.CL: Computation & Language
Cross-listed
cs.SD,
eess.AS
Citations
2
Venue
arXiv.org
Last Checked
5 months ago
Abstract
This paper proposes to generalize the variational recurrent neural network (RNN) with variational inference (VI)-based dropout regularization employed for the long short-term memory (LSTM) cells to more advanced RNN architectures like gated recurrent unit (GRU) and bi-directional LSTM/GRU. The new variational RNNs are employed for slot filling, which is an intriguing but challenging task in spoken language understanding. The experiments on the ATIS dataset suggest that the variational RNNs with the VI-based dropout regularization can significantly improve the naive dropout regularization RNNs-based baseline systems in terms of F-measure. Particularly, the variational RNN with bi-directional LSTM/GRU obtains the best F-measure score.
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