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3D texture analysis in renal cell carcinoma tissue image grading

Authors
 Tae Yun Kim  ;  Nam Hoon Cho  ;  Goo Bo Jeong  ;  Ewert Bengtsson  ;  Heung Kook Choi 
Citation
 COMPUTATIONAL AND MATHEMATICAL METHODS IN MEDICINE, Vol.2014 : 536217, 2014 
Journal Title
COMPUTATIONAL AND MATHEMATICAL METHODS IN MEDICINE
ISSN
 1748-670X 
Issue Date
2014
MeSH
Algorithms ; Carcinoma, Renal Cell/pathology* ; Diagnostic Imaging/methods ; Humans ; Imaging, Three-Dimensional/methods* ; Liver Neoplasms/pathology* ; Microscopy, Confocal/methods* ; Models, Statistical ; Principal Component Analysis ; Reproducibility of Results ; Wavelet Analysis
Abstract
One of the most significant processes in cancer cell and tissue image analysis is the efficient extraction of features for grading purposes. This research applied two types of three-dimensional texture analysis methods to the extraction of feature values from renal cell carcinoma tissue images, and then evaluated the validity of the methods statistically through grade classification. First, we used a confocal laser scanning microscope to obtain image slices of four grades of renal cell carcinoma, which were then reconstructed into 3D volumes. Next, we extracted quantitative values using a 3D gray level cooccurrence matrix (GLCM) and a 3D wavelet based on two types of basis functions. To evaluate their validity, we predefined 6 different statistical classifiers and applied these to the extracted feature sets. In the grade classification results, 3D Haar wavelet texture features combined with principal component analysis showed the best discrimination results. Classification using 3D wavelet texture features was significantly better than 3D GLCM, suggesting that the former has potential for use in a computer-based grading system.
Files in This Item:
T201404522.pdf Download
DOI
10.1155/2014/536217
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Pathology (병리학교실) > 1. Journal Papers
Yonsei Authors
Cho, Nam Hoon(조남훈) ORCID logo https://orcid.org/0000-0002-0045-6441
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/138399
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