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Automated Objective Basic Surgical Skills Assessment: Overall Kinematic Performance Assessment Method

机译:自动目标基本外科技能评估:总体运动学性能评估方法

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摘要

As an essential part of medical training, assessment surgical skill is a time consuming, subjective, and complicated process. This paper adopted overall kinematic performance assessment method to identify the skill level of a subjective given motion data from three benchtop surgical tasks performed on robotic surgical devices. Firstly, we extracted global movement features by computing from the raw data of 39 (Suturing), 36 (Knot Tying) and 28 (Needle Passing) trials collected on da Vinci surgical system, respectively. Then, the discrimination ability of single feature with optimizing threshold were calculated. In following classification process, we applied support Vector Machine (SVM) to distinguish expert from novice on the basis of selected global movement features. The results showed that global movement features (GMFs) such as task completion time, velocity, and motion smoothness have superior discrimination ability between novice and expert performance for suturing, knot tying and needle passing task. SVM could classify surgeons' expertise as novice or expert with an accuracy of 77.99% for suturing, 83.71% for knot tying and 74.66% for needle passing, respectively. This study clearly demonstrated the ability of overall kinematic performance assessment method to distinguish between novice and expert performance in the performance of robotic surgical devices.
机译:作为医学培训的重要组成部分,评估外科技能是耗时,主观和复杂的过程。本文采用了整体运动学性能评估方法,以识别来自在机器人外科手术装置的三个台式手术任务中的主观给定运动数据的技能水平。首先,我们分别通过从39(缝合),36(结绑定)和28(针传递)试验的计算来提取全局运动特征,分别在Da Vinci手术系统上收集的28(针传递)试验。然后,计算单个特征具有优化阈值的单一特征的辨别能力。在以下分类过程中,我们应用了支持向量机(SVM)以在所选的全局运动功能的基础上区分新手的专家。结果表明,全局运动特征(GMF)如任务完成时间,速度和运动平滑度具有卓越的辨别能力,用于缝合,结捆绑和针传递任务的缝合,结捆绑和针对性任务。 SVM可以将外科医生的专业知识分类为新手或专家,精度为77.99%,用于缝合,结83.71%,针刺通过74.66%。本研究清楚地表明了整体运动学性能评估方法的能力,区分新手和专家性能在机器人外科手术装置的表现中。

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