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A Bayesian network model to predict neoplastic risk for patients with gallbladder polyps larger than 10 mm based on preoperative ultrasound features

  • Qi Li
  • , Minghui Dou
  • , Jingwei Zhang
  • , Pengbo Jia
  • , Xintuan Wang
  • , Da Lei
  • , Junhui Li
  • , Wenbin Yang
  • , Rui Yang
  • , Chenglin Yang
  • , Xiaodi Zhang
  • , Qiwei Hao
  • , Xilin Geng
  • , Yu Zhang
  • , Yimin Liu
  • , Zhihua Guo
  • , Chunhe Yao
  • , Zhiqiang Cai
  • , Shubin Si
  • , Zhimin Geng
  • Dong Zhang
  • The First Affiliated Hospital of Xi’an Jiaotong University
  • Northwestern Polytechnical University Xian
  • The First People’s Hospital of Xianyang City
  • Central Hospital of Baoji City
  • The Second Affiliated Hospital of Xi’an Jiaotong University
  • Central Hospital of Hanzhong City
  • Central Hospital of Ankang City
  • No. 215 Hospital of Shaanxi Nuclear Industry
  • The Second Hospital of Yulin City
  • Shaanxi Provincial People’s Hospital
  • People’s Hospital of Baoji City
  • Xianyang Hospital of Yan’an University

科研成果: 期刊稿件文章同行评审

4 引用 (Scopus)

摘要

Background: Polyp size of 10 mm is insufficient to discriminate neoplastic and non-neoplastic risk in patients with gallbladder polyps (GPs). The aim of the study is to develop a Bayesian network (BN) prediction model to identify neoplastic polyps and create more precise criteria for surgical indications in patients with GPs lager than 10 mm based on preoperative ultrasound features. Methods: A BN prediction model was established and validated based on the independent risk variables using data from 759 patients with GPs who underwent cholecystectomy from January 2015 to August 2022 at 11 tertiary hospitals in China. The area under receiver operating characteristic curves (AUCs) were used to evaluate the predictive ability of the BN model and current guidelines, and Delong test was used to compare the AUCs. Results: The mean values of polyp cross-sectional area (CSA), long, and short diameter of neoplastic polyps were higher than those of non-neoplastic polyps (P < 0.0001). Independent neoplastic risk factors for GPs included single polyp, polyp CSA ≥ 85 mm 2, fundus with broad base, and medium echogenicity. The accuracy of the BN model established based on the above independent variables was 81.88% and 82.35% in the training and testing sets, respectively. Delong test also showed that the AUCs of the BN model was better than that of JSHBPS, ESGAR, US-reported, and CCBS in training and testing sets, respectively (P < 0.05). Conclusion: A Bayesian network model was accurate and practical for predicting neoplastic risk in patients with gallbladder polyps larger than 10 mm based on preoperative ultrasound features. Graphical abstract: [Figure not available: see fulltext.]

源语言英语
页(从-至)5453-5463
页数11
期刊Surgical Endoscopy
37
7
DOI
出版状态已出版 - 7月 2023

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