深度学习在微创手术中的应用:手术系统进化之旅

Venkata dinesh Reddy kalli
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引用次数: 1

摘要

人工智能(AI)在各个领域的应用激增,在很大程度上归功于深度学习和计算处理速度的进步。在医学领域,人工智能的应用范围扩展到医学图像分析和基因组数据解读。最近,人工智能在分析微创手术(MIS)视频方面的作用越来越受到重视,越来越多的研究集中在器官和解剖结构识别、仪器识别、手术识别、手术阶段划分、手术持续时间预测、最佳切口线识别和手术教育等方面。与此同时,以智能组织自主机器人(STAR)和 RAVEN 系统为代表的自主手术机器人的开发也取得了可喜的进展。值得注意的是,STAR 目前已用于腹腔镜成像,从腹腔镜图像中辨别手术部位,并正在进行自动缝合系统的试验,尽管是在动物模型中。本综述展望了未来完全自主手术机器人的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Advancements in Deep Learning for Minimally Invasive Surgery: A Journey through Surgical System Evolution
The surge in artificial intelligence (AI) applications across diverse fields owes much to advancements in deep learning and computational processing speed. In medicine, AI's reach extends to medical image analysis and genomic data interpretation. More recently, AI's role in analyzing minimally invasive surgery (MIS) videos has gained traction, with a growing body of research focusing on organ and anatomy identification, instrument recognition, procedure recognition, surgical phase delineation, surgery duration prediction, optimal incision line identification, and surgical education. Concurrently, the development of autonomous surgical robots, exemplified by the Smart Tissue Autonomous Robot (STAR) and RAVEN systems, has shown promising strides. Notably, STAR is currently employed in laparoscopic imaging to discern the surgical site from laparoscopic images and is undergoing trials for an automated suturing system, albeit in animal models. This review contemplates the prospect of fully autonomous surgical robots in the future.
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