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Conversation-based natural language interface to relational databases

Authors: 
Majdi Owda
Zuhair Bandar
Keeley Crockett
Conference: 
2007 IEEE/WIC/ACM International Conferences on Web Intelligence and Intelligent Agent Technology-Workshops
Location: 
California, USA
Date: 
Thursday, November 15, 2007
Abstract: 
This paper proposes a new approach for creating conversation-based natural language interfaces to relational databases by combining goal oriented conversational agents and knowledge trees. Goal oriented conversational agents have proven their capability to disambiguate the user's needs and to converse within a context (i.e. specific domain). Knowledge trees used to overcome the lacking of connectivity between the conversational agent and the relational database, through organizing the domain knowledge in knowledge trees. Knowledge trees also work as a road map for the conversational agent dialogue flow. The proposed framework makes it easier for knowledge engineers to develop a reliable conversation-based NLI-RDB. The developed prototype system shows excellent performance on common queries (i. e. queries extracted from expert by a knowledge engineer). The user will have a friendly interface that can converse with the relational database.