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2D 전립선 단면 영상에서 영역 분류를 위한 라디오믹스 기반 바이오마커 검증 연구Radiomics-based Biomarker Validation Study for Region Classification in 2D Prostate Cross-sectional Images

Other Titles
Radiomics-based Biomarker Validation Study for Region Classification in 2D Prostate Cross-sectional Images
Authors
박준영김영재김지섭김광기
Issue Date
Feb-2023
Publisher
대한의용생체공학회
Keywords
Prostate cancer; Radiomics; Machine learning; Feature selection
Citation
의공학회지, v.44, no.1, pp.25 - 32
Journal Title
의공학회지
Volume
44
Number
1
Start Page
25
End Page
32
URI
https://scholarworks.bwise.kr/gachon/handle/2020.sw.gachon/87263
DOI
10.9718/JBER.2023.44.1.25
ISSN
1229-0807
Abstract
Recognizing the size and location of prostate cancer is critical for prostate cancer diagnosis, treatment, and predicting prognosis. This paper proposes a model to classify the tumor region and normal tissue with cross- sectional visual images of prostatectomy tissue. We used specimen images of 44 prostate cancer patients who received prostatectomy at Gachon University Gil Hospital. A total of 289 prostate slice images consist of 200 slices including tumor region and 89 slices not including tumor region. Images were divided based on the presence or absence of tumor, and a total of 93 features from each slice image were extracted using Radiomics: 18 first order, 24 GLCM, 16 GLRLM, 16 GLSZM, 5 NGTDM, and 14 GLDM. We compared feature selection techniques such as LASSO, ANOVA, SFS, Ridge and RF, LR, SVM classifiers for the model's high performances. We evaluated the model's performance with AUC of the ROC curve. The results showed that the combination of feature selection techniques LASSO, Ridge, and classifier RF could be best with an AUC of 0.99±0.005.
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