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Erschienen in: International Journal of Computer Assisted Radiology and Surgery 10/2019

02.05.2019 | Original Article

Computer-aided diagnosis of gastrointestinal stromal tumors: a radiomics method on endoscopic ultrasound image

verfasst von: Xinyi Li, Fei Jiang, Yi Guo, Zhendong Jin, Yuanyuan Wang

Erschienen in: International Journal of Computer Assisted Radiology and Surgery | Ausgabe 10/2019

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Abstract

Purpose

The purpose of our study is to propose a preoperative computer-aided diagnosis system based on a radiomics method to differentiate gastrointestinal stromal tumors (GISTs) of the higher-risk group (HRG) from those of the lower-risk group (LRG) on endoscopic ultrasound (EUS) images.

Materials and method

Gastro-EUS (G-EUS) images of four different risk level GISTs were collected from 19 hospitals. The datasheet included 168 case HRG GISTs and 747 case LRG GISTs. A radiomics method with image segmentation, feature extraction, feature selection and classification was developed. Here 439 radiomics features were firstly extracted, and then, the least absolute shrinkage selection operator (lasso) model with a tenfold cross-validation and 31 bootstraps was used to reduce the dimension of feature sets. Finally, random forest was applied to establish the classification model.

Results

The proposed model differentiated 32 case HRG GISTs from 149 case LRG GISTs. Result for the testing set achieved the area under the receiver operating characteristic curve of 0.839, the accuracy of 0.823, the sensitivity of 0.813 and the specificity of 0.826.

Conclusion

The model could increase preoperative diagnostic accuracy and provide a valuable reference for the doctors.
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Metadaten
Titel
Computer-aided diagnosis of gastrointestinal stromal tumors: a radiomics method on endoscopic ultrasound image
verfasst von
Xinyi Li
Fei Jiang
Yi Guo
Zhendong Jin
Yuanyuan Wang
Publikationsdatum
02.05.2019
Verlag
Springer International Publishing
Erschienen in
International Journal of Computer Assisted Radiology and Surgery / Ausgabe 10/2019
Print ISSN: 1861-6410
Elektronische ISSN: 1861-6429
DOI
https://doi.org/10.1007/s11548-019-01993-3

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