人类凝视的个性化建模:乳房x光片读数的探索性研究

S. Voisin, Hong-Jun Yoon, G. Tourassi, Garnetta Morin-Ducote, K. Hudson
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引用次数: 3

摘要

医学成像中的眼动追踪研究通常侧重于研究放射科医生的视觉搜索过程以及它与手头的临床解释任务的关系。在这项初步研究中,我们调查了凝视模式,以深入了解它们与放射科医生的专业水平以及个体差异的关系,从而促进放射科医生的个性化建模和识别。首先,我们收集了6位放射科医生的注视数据,他们每人观看了40张乳房x线照片。然后,使用两种不同的方法对收集到的凝视数据进行分析:1)使用多层感知器和2)使用隐马尔可夫模型。这两种方法都证实,放射科医生的经验水平可以通过简单地研究他们的注视模式来高精度地推断出来。个性化建模和放射科医生的识别都是成功的,准确率明显高于随机猜测。这项初步研究的结果证实,放射科医生的感知行为不仅与临床训练和经验水平有关,而且在医学图像解释中开发人类感知和认知模型时,还有一些个体方面可以作为个人生物标志物。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Personalized modeling of human gaze: Exploratory investigation on mammogram readings
Eye tracking studies in medical imaging typically focus on studying radiologists' visual search process and how it relates to the clinical interpretation task at hand. In this pilot study, we have investigated gaze patterns to gain insight into their association with radiologists' expertise level as well as the presence of individual differences to facilitate personalized modeling and recognition of radiologists. First, we collected gaze data from six radiologists viewing 40 mammographic images each. Then, the collected gaze data were analyzed with two different approaches: 1) using a multilayer perceptron and 2) using a hidden Markov model. Both approaches confirmed that the experience level of a radiologist can be inferred with high accuracy by simply studying their gaze pattern. Personalized modeling and identification of radiologists was successful with both approaches with accuracy significantly higher than random guessing. The results of this pilot study confirm that a radiologist's perceptual behavior is not only a function of clinical training and level of experience, but there are individual aspects that could serve as a personal biomarker when developing models of human perception and cognition in medical image interpretation.
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