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人工智能驱动的软件在增强对比度 CT 上检测到放射科医生遗漏的一半以上肝转移。

Artificial intelligence-powered software detected more than half of the liver metastases overlooked by radiologists on contrast-enhanced CT.

机构信息

Department of Diagnostic Imaging and Nuclear Medicine, Kyoto University Graduate School of Medicine, 54 Kawahara-cho, Shogoin, Sakyo-ku, Kyoto 606-8507, Japan.

Department of Diagnostic Imaging and Nuclear Medicine, Kyoto University Graduate School of Medicine, 54 Kawahara-cho, Shogoin, Sakyo-ku, Kyoto 606-8507, Japan; Preemptive Medicine and Lifestyle Disease Research Center, Kyoto University Hospital, 53 Kawahara-cho, Shogoin, Sakyo-ku, Kyoto 606-8507, Japan.

出版信息

Eur J Radiol. 2023 Jun;163:110823. doi: 10.1016/j.ejrad.2023.110823. Epub 2023 Apr 7.

Abstract

PURPOSE

To evaluate the sensitivity of artificial intelligence (AI)-powered software in detecting liver metastases, especially those overlooked by radiologists.

METHODS

Records of 746 patients diagnosed with liver metastases (November 2010-September 2017) were reviewed. Images from when radiologists first diagnosed liver metastases were reviewed, and prior contrast-enhanced CT (CECT) images were checked for availability. Two abdominal radiologists classified the lesions into overlooked lesions (all metastases missed by radiologists on prior CECT) and detected lesions (all metastases if any of them were correctly identified and invisible on prior CECT or those with no prior CECT). Finally, images from 137 patients were identified, 68 of which were classified as "overlooked cases." The same radiologists created the ground truth for these lesions and compared them with the software's output at 2-month intervals. The primary endpoint was the sensitivity in detecting all liver lesion types, liver metastases, and liver metastases overlooked by radiologists.

RESULTS

The software successfully processed images from 135 patients. The per-lesion sensitivity for all liver lesion types, liver metastases, and liver metastases overlooked by radiologists was 70.1%, 70.8%, and 55.0%, respectively. The software detected liver metastases in 92.7% and 53.7% of patients in detected and overlooked cases, respectively. The average number of false positives was 0.48 per patient.

CONCLUSION

The AI-powered software detected more than half of liver metastases overlooked by radiologists while maintaining a relatively low number of false positives. Our results suggest the potential of AI-powered software in reducing the frequency of overlooked liver metastases when used in conjunction with the radiologists' clinical interpretation.

摘要

目的

评估人工智能 (AI) 软件在检测肝转移方面的敏感性,特别是检测那些被放射科医生忽视的肝转移。

方法

回顾了 746 例诊断为肝转移的患者记录(2010 年 11 月至 2017 年 9 月)。对放射科医生首次诊断肝转移时的图像进行了回顾,并检查了之前的增强 CT(CECT)图像是否可用。两名腹部放射科医生将病变分为被忽视的病变(所有被放射科医生在之前的 CECT 上漏诊的转移灶)和检测到的病变(如果任何病变在之前的 CECT 上可见或没有之前的 CECT 但可见,则为所有转移灶)。最后,确定了 137 例患者的图像,其中 68 例被归类为“被忽视的病例”。同两名放射科医生为这些病变创建了真实情况,并在 2 个月的间隔时间内与软件的输出进行了比较。主要终点是检测所有肝病变类型、肝转移和放射科医生忽视的肝转移的敏感性。

结果

软件成功处理了 135 名患者的图像。对于所有肝病变类型、肝转移和放射科医生忽视的肝转移,软件检测病变的敏感性分别为 70.1%、70.8%和 55.0%。在检测到的和被忽视的病例中,软件分别检测到 92.7%和 53.7%的患者有肝转移。平均每位患者的假阳性数量为 0.48。

结论

该 AI 软件在保持相对较低的假阳性数量的同时,检测到了超过一半的放射科医生忽视的肝转移。我们的结果表明,当与放射科医生的临床解释结合使用时,AI 软件在减少被忽视的肝转移的频率方面具有潜力。

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