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使用多线程视频处理中的级联模糊监督器评估 3D 自主外科医生手部运动

3D Autonomous Surgeon's Hand Movement Assessment Using a Cascaded Fuzzy Supervisor in Multi-Thread Video Processing.

机构信息

Electrical & Computer Engineering Department, Western Michigan University, Kalamazoo, MI 49008, USA.

Department of Surgery, Homer Stryker MD School of Medicine, Western Michigan University, Kalamazoo, MI 49008, USA.

出版信息

Sensors (Basel). 2023 Feb 27;23(5):2623. doi: 10.3390/s23052623.

Abstract

The purpose of the Fundamentals of Laparoscopic Surgery (FLS) training is to develop laparoscopic surgery skills by using simulation experiences. Several advanced training methods based on simulation have been created to enable training in a non-patient environment. Laparoscopic box trainers-cheap, portable devices-have been deployed for a while to offer training opportunities, competence evaluations, and performance reviews. However, the trainees must be under the supervision of medical experts who can evaluate their abilities, which is an expensive and time-consuming operation. Thus, a high level of surgical skill, determined by assessment, is necessary to prevent any intraoperative issues and malfunctions during a real laparoscopic procedure and during human intervention. To guarantee that the use of laparoscopic surgical training methods results in surgical skill improvement, it is necessary to measure and assess surgeons' skills during tests. We used our intelligent box-trainer system (IBTS) as a platform for skill training. The main aim of this study was to monitor the surgeon's hands' movement within a predefined field of interest. To evaluate the surgeons' hands' movement in 3D space, an autonomous evaluation system using two cameras and multi-thread video processing is proposed. This method works by detecting laparoscopic instruments and using a cascaded fuzzy logic assessment system. It is composed of two fuzzy logic systems executing in parallel. The first level assesses the left and right-hand movements simultaneously. Its outputs are cascaded by the final fuzzy logic assessment at the second level. This algorithm is completely autonomous and removes the need for any human monitoring or intervention. The experimental work included nine physicians (surgeons and residents) from the surgery and obstetrics/gynecology (OB/GYN) residency programs at WMU Homer Stryker MD School of Medicine (WMed) with different levels of laparoscopic skills and experience. They were recruited to participate in the peg-transfer task. The participants' performances were assessed, and the videos were recorded throughout the exercises. The results were delivered autonomously about 10 s after the experiments were concluded. In the future, we plan to increase the computing power of the IBTS to achieve real-time performance assessment.

摘要

腹腔镜手术基础(FLS)培训的目的是通过模拟经验来发展腹腔镜手术技能。已经创建了几种基于模拟的高级培训方法,以实现非患者环境下的培训。腹腔镜箱式训练器——便宜、便携式设备——已经使用了一段时间,可以提供培训机会、能力评估和绩效评估。然而,受训者必须在能够评估他们能力的医学专家的监督下进行,这是一项昂贵且耗时的操作。因此,需要通过评估来确定高水平的手术技能,以防止在真正的腹腔镜手术过程中以及在人类干预期间出现任何术中问题和故障。为了保证腹腔镜手术训练方法的使用能够提高手术技能,有必要在测试中测量和评估外科医生的技能。我们使用智能箱式训练器系统(IBTS)作为技能训练平台。本研究的主要目的是监测外科医生在预定义感兴趣区域内的手部运动。为了评估外科医生在 3D 空间中的手部运动,提出了一种使用两个摄像机和多线程视频处理的自主评估系统。该方法通过检测腹腔镜器械并使用级联模糊逻辑评估系统来工作。它由两个并行执行的模糊逻辑系统组成。第一级同时评估左手和右手的运动。其输出由第二级的最终模糊逻辑评估级联。该算法完全自主,无需任何人工监控或干预。实验工作包括来自 WMU Homer Stryker MD 医学院(WMed)手术和妇产科(OB/GYN)住院医师项目的九名医生(外科医生和住院医师),他们具有不同的腹腔镜技能和经验水平。他们被招募来参加销钉转移任务。评估参与者的表现,并在整个练习过程中记录视频。实验结束后约 10 秒自动提供结果。未来,我们计划增加 IBTS 的计算能力,以实现实时性能评估。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9e0/10007173/173c9d19ee0a/sensors-23-02623-g001.jpg

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