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Dynamic causality knowledge graph generation for supporting the chatbot healthcare system

  • Hong Qing Yu

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

6 Citations (Scopus)

Abstract

With recent viruses across the world affecting millions and millions of people, the self-healthcare information systems show an important role in helping individuals to understand the risks, self-assessment, and self-educating to avoid being affected. In addition, self-healthcare information systems can perform more interactive tasks to effectively assist the treatment process and health condition management. Currently, the technologies used in such kind of systems are mostly based on text crawling from website resources such as text-searching and blog-based crowdsourcing applications. In this research paper, we introduce a novel Artificial Intelligence (AI) framework to support interactive and causality reasoning for a Chatbot application. The Chatbot will interact with the user to provide self-healthcare education and self-assessment (condition prediction). The framework is a combination of Natural Language Processing (NLP) and Knowledge Graph (KG) technologies with added causality and probability (uncertainty) properties to original Description Logic. This novel framework can generate causal knowledge probability neural networks to perform question answering and condition prediction tasks. The experimental results from a prototype showed strong positive feedback. The paper also identified remaining limitations and future research directions.
Original languageEnglish
Title of host publicationProceedings of the Future Technologies Conference (FTC) 2020, Volume 3
PublisherSpringer
Pages30-45
Volume1290
ISBN (Electronic)9783030630928
ISBN (Print)9783030630911
DOIs
Publication statusPublished - 31 Oct 2020
EventFuture Technologies Conference - Online
Duration: 5 Nov 20206 Nov 2020

Conference

ConferenceFuture Technologies Conference
CityOnline
Period5/11/206/11/20
OtherFuture Technologies Conference (05/11/2020-06/11/2020, Online)

Keywords

  • Artificial intelligent
  • Causality analysis
  • Chatbot
  • Knowledge graph
  • Natural language processing
  • healthcare

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