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跟踪针干预的实时工作流程分割的可行性

Feasibility of real-time workflow segmentation for tracked needle interventions.

作者信息

Holden Matthew Stephen, Ungi Tamas, Sargent Derek, McGraw Robert C, Chen Elvis C S, Ganapathy Sugantha, Peters Terry M, Fichtinger Gabor

出版信息

IEEE Trans Biomed Eng. 2014 Jun;61(6):1720-8. doi: 10.1109/TBME.2014.2301635.

Abstract

Computer-assisted training systems promote both training efficacy and patient health. An important component for providing automatic feedback in computer-assisted training systems is workflow segmentation: the determination of what task in the workflow is being performed. Our objective was to develop a workflow segmentation algorithm for needle interventions using needle tracking data. Needle tracking data were collected from ultrasound-guided epidural injections and lumbar punctures, performed by medical personnel. The workflow segmentation algorithm was tested in a simulated real-time scenario: the algorithm was only allowed access to data recorded at, or prior to, the time being segmented. Segmentation output was compared to the ground-truth segmentations produced by independent blinded observers. Overall, the algorithm was 93% accurate. It automatically segmented the ultrasound-guided epidural procedures with 81% accuracy and the lumbar punctures with 82% accuracy. Given that the manual segmentation consistency was only 84%, the algorithm's accuracy was 93%. Using Cohen's d statistic, a medium effect size (0.5) was calculated. Because the algorithm segments needle-based procedures with such high accuracy, expert observers can be augmented by this algorithm without a large decrease in ability to follow trainees in a workflow. The proposed algorithm is feasible for use in a computer-assisted needle placement training system.

摘要

计算机辅助训练系统既能提高训练效果,又能促进患者健康。在计算机辅助训练系统中提供自动反馈的一个重要组成部分是工作流程分割:确定工作流程中正在执行的任务。我们的目标是开发一种利用针跟踪数据进行针干预的工作流程分割算法。针跟踪数据是从医疗人员进行的超声引导硬膜外注射和腰椎穿刺中收集的。工作流程分割算法在模拟实时场景中进行了测试:该算法仅允许访问在被分割时间或之前记录的数据。将分割输出与独立的盲法观察者生成的真实分割结果进行比较。总体而言,该算法的准确率为93%。它对超声引导硬膜外手术的自动分割准确率为81%,对腰椎穿刺的自动分割准确率为82%。鉴于手动分割的一致性仅为84%,该算法的准确率为93%。使用科恩d统计量,计算出中等效应大小(0.5)。由于该算法对基于针的手术分割具有如此高的准确性,因此在不显著降低在工作流程中跟踪学员能力的情况下,专家观察者可以借助该算法。所提出的算法可用于计算机辅助针放置训练系统。

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