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手术中认知工作量的瞳孔测量:系统评价和叙述性分析。

The Measurement of Cognitive Workload in Surgery Using Pupil Metrics: A Systematic Review and Narrative Analysis.

机构信息

Department of Surgery and Cancer, St Mary's Hospital, Imperial College London, London, UK; Hamlyn Centre for Robotic Surgery, Institute of Global Health Innovation, Imperial College London, London, UK.

Department of Surgery and Cancer, St Mary's Hospital, Imperial College London, London, UK; Hamlyn Centre for Robotic Surgery, Institute of Global Health Innovation, Imperial College London, London, UK.

出版信息

J Surg Res. 2022 Dec;280:258-272. doi: 10.1016/j.jss.2022.07.010. Epub 2022 Aug 26.

Abstract

INTRODUCTION

Increased cognitive workload (CWL) is a well-established entity that can impair surgical performance and increase the likelihood of surgical error. The use of pupil and gaze tracking data is increasingly being used to measure CWL objectively in surgery. The aim of this review is to summarize and synthesize the existing evidence that surrounds this.

METHODS

A systematic review was undertaken in accordance with Preferred Reporting Items for Systematic Reviews and Meta-Analyses guidelines. A search of OVID MEDLINE, IEEE Xplore, Web of Science, Google Scholar, APA PsychINFO, and EMBASE was conducted for articles published in English between 1990 and January 2021. In total, 6791 articles were screened and 32 full-text articles were selected based on the inclusion criteria. A narrative analysis was undertaken in view of the heterogeneity of studies.

RESULTS

Seventy-eight percent of selected studies were deemed high quality. The most frequent surgical environment and task studied was surgical simulation (75%) and performance of laparoscopic skills (56%) respectively. The results demonstrated that the current literature can be broadly categorized into pupil, blink, and gaze metrics used in the assessment of CWL. These can be further categorized according to their use in the context of CWL: (1) direct measurement of CWL (n = 16), (2) determination of expertise level (n = 14), and (3) predictors of performance (n = 2).

CONCLUSIONS

Eye-tracking data provide a wealth of information; however, there is marked study heterogeneity. Pupil diameter and gaze entropy demonstrate promise in CWL assessment. Future work will entail the use of artificial intelligence in the form of deep learning and the use of a multisensor platform to accurately measure CWL.

摘要

简介

认知工作量(CWL)增加是一种已被充分证实的现象,它会损害手术表现并增加手术错误的可能性。使用瞳孔和注视追踪数据来客观测量手术中的 CWL 越来越普遍。本综述的目的是总结和综合现有的相关证据。

方法

根据系统评价和荟萃分析的首选报告项目进行系统评价。对 1990 年至 2021 年 1 月期间发表的英文文章,在 OVID MEDLINE、IEEE Xplore、Web of Science、Google Scholar、APA PsychINFO 和 EMBASE 上进行了检索。共筛选出 6791 篇文章,并根据纳入标准选择了 32 篇全文文章。鉴于研究的异质性,进行了叙述性分析。

结果

78%的选定研究被认为是高质量的。研究中最常见的手术环境和任务分别是手术模拟(75%)和腹腔镜技能操作(56%)。结果表明,目前的文献可以大致分为用于评估 CWL 的瞳孔、眨眼和注视指标。根据其在 CWL 背景下的使用情况,可以进一步分为三类:(1)CWL 的直接测量(n=16);(2)专业水平的确定(n=14);和(3)性能的预测(n=2)。

结论

眼动追踪数据提供了丰富的信息;然而,研究存在明显的异质性。瞳孔直径和注视熵在 CWL 评估中显示出一定的前景。未来的工作将涉及人工智能的使用,形式为深度学习,以及使用多传感器平台来准确测量 CWL。

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