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A Depth Evidence Score Fusion Algorithm for Chinese Medical Intelligence Question Answering System.

Xiabing Zhou1, Binglin Wu2, Qinglei Zhou2

  • 1School of Computer Science and Technology, Soochow University, Suzhou, China.

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|August 21, 2018
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Summary
This summary is machine-generated.

This study introduces a novel depth evidence score fusion algorithm for Chinese Medical Intelligent Question Answering Systems. The algorithm enhances accuracy for complex medical queries by improving semantic similarity calculations.

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Area of Science:

  • Medical Informatics
  • Artificial Intelligence
  • Natural Language Processing

Background:

  • Medical question answering (QA) systems are crucial for efficient healthcare information retrieval.
  • Traditional QA systems struggle with complex medical questions, limiting their diagnostic and treatment support capabilities.

Purpose of the Study:

  • To develop an intelligent QA system for disease diagnosis and treatment in medical informationization.
  • To propose a depth evidence score fusion algorithm to improve the accuracy of medical QA systems.

Main Methods:

  • A novel text semantic evidence score based on Word2vec was developed to calculate semantic similarity.
  • A depth evidence score fusion algorithm was proposed to measure text information through multiple algorithmic approaches.
  • The algorithm was evaluated on a medical text corpus.

Main Results:

  • The proposed depth evidence score fusion algorithm demonstrated superior performance in the evidence-scoring module of the intelligent QA system.
  • The algorithm effectively measures text information and ensures accurate output of optimal candidate answers.
  • Word2vec-based semantic evidence scores enhance the system's ability to handle complex medical queries.

Conclusions:

  • The depth evidence score fusion algorithm significantly improves the accuracy and efficiency of Chinese Medical Intelligent Question Answering Systems.
  • This approach offers a promising solution for intelligent disease diagnosis and treatment support.
  • Further research can explore integrating this algorithm into broader medical informationization platforms.