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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/26779
Title: Constructing Chatbots using Generative AI and Domain Knowledge
Authors: Lin, Chih-Ying
Lin, Han-Yi
Ilang, Yan-Cih
Ma, Hang-Pin 
Keywords: generative AI;chatbots;domain adaptation;intent bridge;knowledge weaver
Issue Date: 2026
Publisher: INST INFORMATION SCIENCE
Journal Volume: 42
Journal Issue: 4
Start page/Pages: 17
Source: JOURNAL OF INFORMATION SCIENCE AND ENGINEERING
Abstract: 
Generative AI powered by large language models has made it possible for chatbots to generate human-like responses; however, major challenges remain in intent recognition, knowledge enrichment, dynamic functionality, and knowledge integration. This paper proposes three design patterns to address these issues: domain adaptation for the retrieval of external information, Intent Bridge for dynamic intent execution, and Knowledge Weaver for the seamless integration of external knowledge. Together, these patterns bridge the gap between theoretical and practical deployment, providing a framework for enhancing chatbot performance in complex tasks. This framework provides developers with systematic methods to improve accuracy, functionality, and contextual relevance in generative AI-powered chatbot systems.
URI: http://scholars.ntou.edu.tw/handle/123456789/26779
ISSN: 1016-2364
DOI: 10.6688/JISE.202607_42(4).0006
Appears in Collections:資訊工程學系

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