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Hybrid Dialog State Tracker (1510.03710v3)
Published 13 Oct 2015 in cs.CL
Abstract: This paper presents a hybrid dialog state tracker that combines a rule based and a machine learning based approach to belief state tracking. Therefore, we call it a hybrid tracker. The machine learning in our tracker is realized by a Long Short Term Memory (LSTM) network. To our knowledge, our hybrid tracker sets a new state-of-the-art result for the Dialog State Tracking Challenge (DSTC) 2 dataset when the system uses only live SLU as its input.
- Rudolf Kadlec (9 papers)
- Jan Kleindienst (7 papers)
- Miroslav Vodolán (4 papers)