Allen Lu
2017
Generative Encoder-Decoder Models for Task-Oriented Spoken Dialog Systems with Chatting Capability
Tiancheng Zhao
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Allen Lu
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Kyusong Lee
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Maxine Eskenazi
Proceedings of the 18th Annual SIGdial Meeting on Discourse and Dialogue
Generative encoder-decoder models offer great promise in developing domain-general dialog systems. However, they have mainly been applied to open-domain conversations. This paper presents a practical and novel framework for building task-oriented dialog systems based on encoder-decoder models. This framework enables encoder-decoder models to accomplish slot-value independent decision-making and interact with external databases. Moreover, this paper shows the flexibility of the proposed method by interleaving chatting capability with a slot-filling system for better out-of-domain recovery. The models were trained on both real-user data from a bus information system and human-human chat data. Results show that the proposed framework achieves good performance in both offline evaluation metrics and in task success rate with human users.
DialPort, Gone Live: An Update After A Year of Development
Kyusong Lee
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Tiancheng Zhao
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Yulun Du
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Edward Cai
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Allen Lu
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Eli Pincus
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David Traum
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Stefan Ultes
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Lina M. Rojas-Barahona
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Milica Gasic
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Steve Young
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Maxine Eskenazi
Proceedings of the 18th Annual SIGdial Meeting on Discourse and Dialogue
DialPort collects user data for connected spoken dialog systems. At present six systems are linked to a central portal that directs the user to the applicable system and suggests systems that the user may be interested in. User data has started to flow into the system.
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Co-authors
- Tiancheng Zhao 2
- Kyusong Lee 2
- Maxine Eskenazi 2
- Yulun Du 1
- Edward Cai 1
- show all...