Value of artificial intelligence with novel tumor tracking technology in the diagnosis of gastric submucosal tumors by contrast-enhanced harmonic endoscopic ultrasonography

被引:19
|
作者
Tanaka, Hidekazu [1 ]
Kamata, Ken [1 ]
Ishihara, Rika [2 ]
Handa, Hisashi [2 ,3 ,4 ]
Otsuka, Yasuo [1 ]
Yoshida, Akihiro [1 ]
Yoshikawa, Tomoe [1 ]
Ishikawa, Rei [1 ]
Okamoto, Ayana [1 ]
Yamazaki, Tomohiro [1 ]
Nakai, Atsushi [1 ]
Omoto, Shunsuke [1 ]
Minaga, Kosuke [1 ]
Yamao, Kentaro [1 ]
Takenaka, Mamoru [1 ]
Watanabe, Tomohiro [1 ]
Nishida, Naoshi [1 ]
Kudo, Masatoshi [1 ]
机构
[1] Kindai Univ, Kindai Univ Hosp, Dept Gastroenterol & Hepatol, Osaka, Japan
[2] Kindai Univ, Dept Informat, Osaka, Japan
[3] Kindai Univ, Cyber Informat Res Inst, Osaka, Japan
[4] Kindai Univ, Res Inst Sci & Technol, Osaka, Japan
关键词
artificial intelligences; contrast-enhanced harmonic; endoscopic ultrasonography; gastrointestinal stromal tumor; neural network; submucosal tumor; CONVOLUTIONAL NEURAL-NETWORK; STROMAL TUMORS; ULTRASOUND; LESIONS; NEEDLE;
D O I
10.1111/jgh.15780
中图分类号
R57 [消化系及腹部疾病];
学科分类号
摘要
Background and Aim: Contrast-enhanced harmonic endoscopic ultrasonography (CH-EUS) is useful for the diagnosis of lesions inside and outside the digestive tract. This study evaluated the value of artificial intelligence (AI) in the diagnosis of gastric submucosal tumors by CH-EUS. Methods: This retrospective study included 53 patients with gastrointestinal stromal tumors (GISTs) and leiomyomas, all of whom underwent CH-EUS between June 2015 and February 2020. A novel technology, SiamMask, was used to track and trim the lesions in CH-EUS videos. CH-EUS was evaluated by AI using deep learning involving a residual neural network and leave-one-out cross-validation. The diagnostic accuracy of AI in discriminating between GISTs and leiomyomas was assessed and compared with that of blind reading by two expert endosonographers. Results: Of the 53 patients, 42 had GISTs and 11 had leiomyomas. Mean tumor size was 26.4 mm. The consistency rate of the segment range of the tumor image extracted by SiamMask and marked by the endosonographer was 96% with a Dice coefficient. The sensitivity, specificity, and accuracy of AI in diagnosing GIST were 90.5%, 90.9%, and 90.6%, respectively, whereas those of blind reading were 90.5%, 81.8%, and 88.7%, respectively (P = 0.683). The kappa coefficient between the two reviewers was 0.713. Conclusions: The diagnostic ability of CH-EUS results evaluated by AI to distinguish between GISTs and leiomyomas was comparable with that of blind reading by expert endosonographers.
引用
收藏
页码:841 / 846
页数:6
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