作者
Takashi Kanesaka, Tsung-Chun Lee, Noriya Uedo, Kun-Pei Lin, Huai-Zhe Chen, Ji-Yuh Lee, Hsiu-Po Wang, Hsuan-Ting Chang
发表日期
2018/5/1
期刊
Gastrointestinal endoscopy
卷号
87
期号
5
页码范围
1339-1344
出版商
Mosby
简介
Background and Aims
Magnifying narrow-band imaging (M-NBI) is important in the diagnosis of early gastric cancers (EGCs) but requires expertise to master. We developed a computer-aided diagnosis (CADx) system to assist endoscopists in identifying and delineating EGCs.
Methods
We retrospectively collected and randomly selected 66 EGC M-NBI images and 60 non-cancer M-NBI images into a training set and 61 EGC M-NBI images and 20 non-cancer M-NBI images into a test set. After preprocessing and partition, we determined 8 gray-level co-occurrence matrix (GLCM) features for each partitioned 40 × 40 pixel block and calculated a coefficient of variation of 8 GLCM feature vectors. We then trained a support vector machine (SVMLv1) based on variation vectors from the training set and examined in the test set. Furthermore, we collected 2 determined P and Q GLCM feature vectors from cancerous image …
引用总数
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