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人工智能从内镜视频中检测 T1 食管鳞癌的能力及实时辅助的效果。

Ability of artificial intelligence to detect T1 esophageal squamous cell carcinoma from endoscopic videos and the effects of real-time assistance.

机构信息

Department of Gastroenterology, Cancer Institute Hospital, Japanese Foundation for Cancer Research, 3-8-31, Ariake, Koto-ku, Tokyo, 135-8550, Japan.

Tada Tomohiro Institute of Gastroenterology and Proctology, Saitama, Japan.

出版信息

Sci Rep. 2021 Apr 8;11(1):7759. doi: 10.1038/s41598-021-87405-6.

Abstract

Diagnosis using artificial intelligence (AI) with deep learning could be useful in endoscopic examinations. We investigated the ability of AI to detect superficial esophageal squamous cell carcinoma (ESCC) from esophagogastroduodenoscopy (EGD) videos. We retrospectively collected 8428 EGD images of esophageal cancer to develop a convolutional neural network through deep learning. We evaluated the detection accuracy of the AI diagnosing system compared with that of 18 endoscopists. We used 144 EGD videos for the two validation sets. First, we used 64 EGD observation videos of ESCCs using both white light imaging (WLI) and narrow-band imaging (NBI). We then evaluated the system using 80 EGD videos from 40 patients (20 with superficial ESCC and 20 with non-ESCC). In the first set, the AI system correctly diagnosed 100% ESCCs. In the second set, it correctly detected 85% (17/20) ESCCs. Of these, 75% (15/20) and 55% (11/22) were detected by WLI and NBI, respectively, and the positive predictive value was 36.7%. The endoscopists correctly detected 45% (25-70%) ESCCs. With AI real-time assistance, the sensitivities of the endoscopists were significantly improved without AI assistance (p < 0.05). AI can detect superficial ESCCs from EGD videos with high sensitivity and the sensitivity of the endoscopist was improved with AI real-time support.

摘要

基于深度学习的人工智能(AI)诊断在内镜检查中可能具有一定的应用价值。我们研究了 AI 从食管胃十二指肠镜(EGD)视频中检测食管浅表鳞癌(ESCC)的能力。我们通过深度学习,回顾性地收集了 8428 例食管癌 EGD 图像,开发了一个卷积神经网络。我们评估了 AI 诊断系统与 18 名内镜医生的检测准确率。我们使用了 144 个 EGD 视频进行了两个验证集。首先,我们使用了白光成像(WLI)和窄带成像(NBI)观察到的 64 个 ESCC 的 EGD 观察视频。然后,我们使用了来自 40 名患者(20 名浅表 ESCC 和 20 名非 ESCC)的 80 个 EGD 视频评估系统。在第一个数据集,AI 系统正确诊断了 100%的 ESCC。在第二个数据集,它正确检测到 85%(17/20)的 ESCC。其中,75%(15/20)和 55%(11/22)分别通过 WLI 和 NBI 检测到,阳性预测值为 36.7%。内镜医生正确检测到 45%(25-70%)的 ESCC。有了 AI 的实时辅助,内镜医生的敏感性显著提高(无 AI 辅助时为 45%,有 AI 辅助时为 70%)(p<0.05)。AI 可以从 EGD 视频中以较高的敏感性检测到食管浅表鳞癌,并且 AI 实时支持可以提高内镜医生的敏感性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5902/8032773/1c0abe9c6e03/41598_2021_87405_Fig1_HTML.jpg

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