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首页> 外文期刊>Journal of endourology >Crowdsourcing Assessment of Surgeon Dissection of Renal Artery and Vein During Robotic Partial Nephrectomy: A Novel Approach for Quantitative Assessment of Surgical Performance
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Crowdsourcing Assessment of Surgeon Dissection of Renal Artery and Vein During Robotic Partial Nephrectomy: A Novel Approach for Quantitative Assessment of Surgical Performance

机译:机器人部分肾切除术中肾动脉和静脉外科医生解剖的众包评估:定量评估手术性能的新方法

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摘要

Introduction: We sought to describe a methodology of crowdsourcing for obtaining quantitative performance ratings of surgeons performing renal artery and vein dissection of robotic partial nephrectomy (RPN). We sought to compare assessment of technical performance obtained from the crowdsourcers with that of surgical content experts (CE). Our hypothesis is that the crowd can score performances of renal hilar dissection comparably to surgical CE using the Global Evaluative Assessment of Robotic Skills (GEARS). Methods: A group of resident and attending robotic surgeons submitted a total of 14 video clips of RPN during hilar dissection. These videos were rated by both crowd and CE for technical skills performance using GEARS. A minimum of 3 CE and 30 Amazon Mechanical Turk crowdworkers evaluated each video with the GEARS scale. Results: Within 13 days, we received ratings of all videos from all CE, and within 11.5 hours, we received 548 GEARS ratings from crowdworkers. Even though CE were exposed to a training module, internal consistency across videos of CE GEARS ratings remained low (ICC=0.38). Despite this, we found that crowdworker GEARS ratings of videos were highly correlated with CE ratings at both the video level (R=0.82, p<0.001) and surgeon level (R=0.84, p<0.001). Similarly, crowdworker ratings of the renal artery dissection were highly correlated with expert assessments (R=0.83, p<0.001) for the unique surgery-specific assessment question. Conclusions: We conclude that crowdsourced assessment of qualitative performance ratings may be an alternative and/or adjunct to surgical experts' ratings and would provide a rapid scalable solution to triage technical skills.
机译:简介:我们试图描述一种众包方法,以获取对进行部分机器人肾切除术(RPN)的肾动脉和静脉进行解剖的外科医生的定量绩效评估。我们试图将从众包者获得的技术性能评估与外科内容专家(CE)进行比较。我们的假设是,使用机器人技术全球评估(GEARS),人群可以对肾门淋巴结清扫术的评分与手术CE相当。方法:一组住院医师和主治机器人外科医生在肺门解剖期间共提交了14个RPN视频片段。这些视频由人群和CE评定为使用GEARS的技术技能表现。至少有3位CE和30位Amazon Mechanical Turk众筹人员使用GEARS量表评估每个视频。结果:在13天内,我们收到了所有CE颁发的所有视频的评分,并在11.5小时内收到了来自众筹人员的548个GEARS评分。即使CE接受了培训模块,CE GEARS评级视频之间的内部一致性仍然很低(ICC = 0.38)。尽管如此,我们发现视频的众包GEARS评分与CE评分在视频级别(R = 0.82,p <0.001)和外科医生级别(R = 0.84,p <0.001)高度相关。同样,对于独特的手术特异性评估问题,肾动脉解剖的人群评估与专家评估高度相关(R = 0.83,p <0.001)。结论:我们得出的结论是,对质量性能等级的众包评估可能是外科专家等级的替代和/或补充,并且将为分类技术技能提供快速可扩展的解决方案。

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