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Evidence-based Knowledge Synthesis and Hypothesis Validation: Navigating Biomedical Knowledge Bases via Explainable AI and Agentic Systems
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Knowledge Graph and Deep Learning-based Text-to-GQL Model for Intelligent Medical Consultation Chatbot.

Pin Ni1, Ramin Okhrati1, Steven Guan2

  • 1Institute of Finance and Technology, University College London, London, UK.

Information Systems Frontiers : a Journal of Research and Innovation
|July 11, 2022
PubMed
Summary
This summary is machine-generated.

We introduce Text-to-GQL (Text2GQL), a new semantic parsing task for graph databases, enabling better human-machine communication. Our pipeline solution, using a pre-trained adapter, shows competitiveness in converting natural language questions into GQL statements.

Keywords:
Deep learningHealth informaticsKnowledge graphNatural language processingSemantic parsingText-to-GQL

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Area of Science:

  • Natural Language Processing
  • Graph Databases
  • Human-Robot Interaction

Background:

  • Existing semantic parsing methods primarily focus on Text-to-SQL, leaving a gap for graph databases.
  • Efficient human-machine communication requires translating natural language into structured queries.
  • Medical Human-Robot Interactions (HRI) can benefit from improved natural language understanding for graph data.

Purpose of the Study:

  • To propose the Text-to-GQL (Text2GQL) task for semantic parsing in graph databases.
  • To develop a pipeline solution for the Text2GQL task to bridge the gap in existing research.
  • To enhance medical HRI by enabling more direct human-machine communication with graph data.

Main Methods:

  • A novel pipeline integrating a Language Model, a Pre-trained Adapter plug-in, and a Pointer Network.
  • The Adapter is pre-trained on linking GQL schemas with utterances for knowledge introduction.
  • The model copies tokens from utterances and generates GQL statements, with an adjustment mechanism for improved output.

Main Results:

  • The proposed Text2GQL model demonstrates competitiveness on converted Text-to-SQL datasets (Spider, ATIS, GeoQuery, 39.net).
  • The method proves practical for applications in medical scenarios.
  • The pipeline effectively translates natural language questions into executable GQL statements.

Conclusions:

  • The developed Text2GQL pipeline offers a viable solution for semantic parsing in graph databases.
  • The approach enhances the directness and efficiency of human-machine communication.
  • This work lays the foundation for advanced applications in fields like medical HRI.