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Decision support for personalized hospital choice using the DEX hierarchical model with SMAA

  • Yi Chen
  • , Shuai Ding
  • , Handong Zheng
  • , Yanchun Zhang
  • , Shanlin Yang
  • Anhui University
  • Hefei University of Technology
  • Victoria University

科研成果: 期刊稿件文章同行评审

3 引用 (Scopus)

摘要

Despite an ever-growing personalized demand for patients’ hospital choice, little systematic work has examined the decision process that considers the diversity of medical service demand. In this paper, we develop an intelligence decision framework to explore multi-source uncertain information in hospital choice. The framework employs a novel SMAA-DEX method to generate a ranking list of hospital alternatives based on Decision EXpert (DEX) hierarchical model and stochastic multicriteria acceptability analysis (SMAA) in personalized hospital choice.To conduct the multi-source information fusion under uncertainty, the SMAA-DEX method produces the central weight vector considering the ordinal weight and random weight and estimates the holistic acceptability indices for each alternative. By collecting hospital statistics, third-party evaluations and personal patient information in the real world, we verify our method for personalized hospital choice in terms of different preferences such as distance, ranking and income. The results of the experiments demonstrate the effectiveness of the proposed approach, which not only effectively processes various types of hospital choice, but also accomplishes uncertain reasoning of multi-source online information.

源语言英语
页(从-至)3059-3082
页数24
期刊Knowledge and Information Systems
62
8
DOI
出版状态已出版 - 1 8月 2020
已对外发布

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