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A Deep Learning-Based Framework for Predicting Intracerebral Hematoma Expansion Using Head Non-contrast CT Scan

  • Na Li
  • , Shaodong Ding
  • , Ziyang Liu
  • , Wanxing Ye
  • , Pan Liu
  • , Jing Jing
  • , Yong Jiang
  • , Xingquan Zhao
  • , Tao Liu*
  • *此作品的通讯作者
  • Capital Medical University
  • Beihang University
  • General Hospital of People's Liberation Army

科研成果: 期刊稿件文章同行评审

摘要

Rationale and Objectives: Hematoma expansion (HE) in intracerebral hemorrhage (ICH) is a critical factor affecting patient outcomes, yet effective clinical tools for predicting HE are currently lacking. We aim to develop a fully automated framework based on deep learning for predicting HE using only clinical non-contrast CT (NCCT) scans. Materials and Methods: A large retrospective dataset (n = 2484) was collected from 84 centers, while a prospective dataset (n = 500) was obtained from 26 additional centers. Baseline NCCT scans and follow-up NCCT scans were conducted within 6 h and 48 h from symptom onset, respectively. HE was defined as a volume increase of more than 6 mL on the follow-up NCCT. The retrospective dataset was divided into a training set (n = 1876) and a validation set (n = 608) by patient inclusion time. A two-stage framework was trained to predict HE, and its performance was evaluated on both the validation and prospective sets. Receiver operating characteristics area under the curve (AUC), sensitivity, and specificity were leveraged. Results: Our two-stage framework achieved an AUC of 0.760 (95% CI 0.724–0.799) on the retrospective validation set and 0.806 (95% CI 0.750–0.859) on the prospective set, outperforming the commonly used BAT score, which had AUCs of 0.582 and 0.699, respectively. Conclusion: Our framework can automatically and robustly identify ICH patients at high risk of HE using admission head NCCT scans, providing more accurate predictions than the BAT score.

源语言英语
页(从-至)347-358
页数12
期刊Academic Radiology
32
1
DOI
出版状态已出版 - 1月 2025

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