Conversational troubleshooting is an increasingly popular technology that consists in utilising dialogue agents to support users of a system through a conversation-based question-answering process, typically through a chatbot. Despite their widespread use, current troubleshooting technologies lack a thorough integration with the applications on which they are overlaid, as they rely only on text to help the users. In this paper, we present TINI, an open-source conversational troubleshooting tool that is multi-modal and multilingual, relies on simple configuration files, and is ready to be deployed in web applications. Users can ask questions to the conversational agent explaining the issue faced; the system analyses it together with the interaction’s context to locate the root problem. Finally, it proposes a solution which engages the user multi-modally: with text in the chat and hints in the graphical interface. A table-based configuration improves system maintainability and enables dialogue designers and field experts to work on the conversation without any coding experience required.

Enhancing Conversational Troubleshooting with Multi-modality: Design and Implementation

Abbo G. A.;Crovari P.;Garzotto F.
2023-01-01

Abstract

Conversational troubleshooting is an increasingly popular technology that consists in utilising dialogue agents to support users of a system through a conversation-based question-answering process, typically through a chatbot. Despite their widespread use, current troubleshooting technologies lack a thorough integration with the applications on which they are overlaid, as they rely only on text to help the users. In this paper, we present TINI, an open-source conversational troubleshooting tool that is multi-modal and multilingual, relies on simple configuration files, and is ready to be deployed in web applications. Users can ask questions to the conversational agent explaining the issue faced; the system analyses it together with the interaction’s context to locate the root problem. Finally, it proposes a solution which engages the user multi-modally: with text in the chat and hints in the graphical interface. A table-based configuration improves system maintainability and enables dialogue designers and field experts to work on the conversation without any coding experience required.
2023
Chatbot Research and Design
978-3-031-25580-9
978-3-031-25581-6
Multi-modal, Conversational agent, Troubleshooting
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11311/1233696
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