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首页> 外文期刊>Academic radiology >A Review of Perceptual Expertise in Radiology-How it develops, How we can test it, and Why humans still matter in the era of Artificial Intelligence
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A Review of Perceptual Expertise in Radiology-How it develops, How we can test it, and Why humans still matter in the era of Artificial Intelligence

机译:对放射学的感知专业知识进行了审查 - 如何发展,我们如何测试它,为什么人类在人工智能时代仍然重要

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摘要

As the first step in image interpretation is detection, an error in perception can prematurely end the diagnostic process leading to missed diagnoses. Because perceptual errors of this sort-"failure to detect"-are the most common interpretive error (and cause of litigation) in radiology, understanding the nature of perceptual expertise is essential in decreasing radiology's long-standing error rates. In this article, we review what constitutes a perceptual error, the existing models of radiologic image perception, the development of perceptual expertise and how it can be tested, perceptual learning methods in training radiologists, and why understanding perceptual expertise is still relevant in the era of artificial intelligence. Adding targeted interventions, such as perceptual learning, to existing teaching practices, has the potential to enhance expertise and reduce medical error.
机译:由于图像解释的第一步是检测,感知的错误可以过早地结束导致错过诊断的诊断过程。 因为这种排序的感知错误 - “未能检测”的放射学中最常见的解释错误(和诉讼原因),了解感知专业知识的性质对于降低放射学的长期误差率至关重要。 在本文中,我们审查了什么构成了感性误差,现有的放射理学形象感知模型,感知专业知识的发展以及如何在培训放射科学家中进行测试,感知学习方法,以及理解感知专业知识在时代仍然相关 人工智能。 将有针对性的干预措施(例如感知学习)添加到现有的教学实践,有可能加强专业知识和减少医疗错误。

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