A triple-classification radiomics model for the differentiation of pleomorphic adenoma, Warthin tumour, and malignant salivary gland tumours on the basis of diffusion-weighted imaging

被引:17
|
作者
Shao, S. [1 ]
Zheng, N. [1 ]
Mao, N. [2 ]
Xue, X. [1 ]
Cui, J. [3 ]
Gao, P. [1 ]
Wang, B. [4 ]
机构
[1] Jining 1 Peoples Hosp, Dept Radiol, 6 Jiankang Rd, Jining 272011, Shandong, Peoples R China
[2] Qingdao Univ, Yantai Yuhuangding Hosp, Dept Radiol, Affiliated Hosp, Yantai 264000, Shandong, Peoples R China
[3] Huiying Med Technol Co Ltd, Beijing 100192, Peoples R China
[4] Binzhou Med Univ, Med Imaging Res Inst, 346 Guanhai Rd, Yantai 264003, Shandong, Peoples R China
关键词
PAROTID TUMORS; BENIGN; CANCER; PREDICTION; REGRESSION; SIGNATURE; HEAD; MRI;
D O I
10.1016/j.crad.2020.10.019
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
AIM: To develop and validate a triple-classification radiomics model for the preoperative differentiation of pleomorphic adenoma (PA), Warthin tumour (WT), and malignant salivary gland tumour (MSGT) based on diffusion-weighted imaging (DWI). MATERIALS AND METHODS: Data from 217 patients with histopathologically confirmed salivary gland tumours (100 PAs, 68 WTs, and 49 MSGTs) from January 2015 to March 2019 were analysed retrospectively and divided into a training set (n=173), and a validation set (n=44). A total of 396 radiomic features were extracted from the DWI of all patients. Analysis of variance (ANOVA) and least absolute shrinkage and selection operator (LASSO) regression were used to select radiomic features, which were then constructed using three classification models, namely, logistic regression method (LR), support vector machine (SVM), and K-nearest neighbor (KNN). The diagnostic performance of the radiomics model was quantified by the receiver operating characteristic (ROC) curve and area under the ROC curve (AUC) of the training and validation data sets. RESULTS: The 20 most valuable features were investigated based on the LASSO regression. LR and SVM methods exhibited better diagnostic ability than KNN for multiclass classification. LR and SVM had the best performance and yielded the AUC values of 0.857 and 0.824, respectively, in the training data set and the AUC values of 0.932 and 0.912, respectively, in the validation data set of MSGT diagnosis. CONCLUSION: DWI-based triple-classification radiomics model has predictive value in distinguishing PA, WT, and MSGT, which can be used for preoperative auxiliary diagnosis in clinical practice. (C) 2021 The Royal College of Radiologists. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:472.e11 / 472.e18
页数:8
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