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Radiomics model of contrast-enhanced computed tomography for predicting the recurrence of acute pancreatitis

无线电技术 医学 神经组阅片室 计算机断层摄影术 介入放射学 急性胰腺炎 放射科 胰腺炎 对比度(视觉) 超声波 内科学 神经学 计算机科学 精神科 人工智能
作者
Yong Chen,Tian‐wu Chen,Changqiang Wu,Qiao Lin,Ran Hu,Chao-Lian Xie,Hou-Dong Zuo,Jialong Wu,Qiwen Mu,Quanshui Fu,Guoqing Yang,Xiao Ming Zhang
出处
期刊:European Radiology [Springer Nature]
卷期号:29 (8): 4408-4417 被引量:88
标识
DOI:10.1007/s00330-018-5824-1
摘要

To predict the recurrence of acute pancreatitis (AP) by constructing a radiomics model of contrast-enhanced computed tomography (CECT) at AP first attack. We retrospectively enrolled 389 first-attack AP patients (271 in the primary cohort and 118 in the validation cohort) from three tertiary referral centers; 126 and 55 patients endured recurrent attacks in each cohort. Four hundred twelve radiomics features were extracted from arterial and venous phase CECT images, and clinical characteristics were gathered to develop a clinical model. An optimal radiomics signature was chosen using a multivariable logistic regression or support vector machine. The radiomics model was developed and validated by incorporating the optimal radiomics signature and clinical characteristics. The performance of the radiomics model was assessed based on its calibration and classification metrics. The optimal radiomics signature was developed based on a multivariable logistic regression with 10 radiomics features. The classification accuracy of the radiomics model well predicted the recurrence of AP for both the primary and validation cohorts (87.1% and 89.0%, respectively). The area under the receiver operating characteristic curve (AUC) of the radiomics model was significantly better than that of the clinical model for both the primary (0.941 vs. 0.712, p = 0.000) and validation (0.929 vs. 0.671, p = 0.000) cohorts. Good calibration was observed for all the models (p > 0.05). The radiomics model based on CECT performed well in predicting AP recurrence. As a quantitative method, radiomics exhibits promising performance in terms of alerting recurrent patients to potential precautions. • The incidence of recurrence after an initial episode of acute pancreatitis is high, and quantitative methods for predicting recurrence are lacking. • The radiomics model based on contrast-enhanced computed tomography performed well in predicting the recurrence of acute pancreatitis. • As a quantitative method, radiomics exhibits promising performance in terms of alerting recurrent patients to the potential need to take precautions.
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