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The impact of speed and bias on the cognitive processes of experts and novices in medical image decision-making

机译:速度和偏见对医学影像决策专家和新手认知过程的影响

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摘要

Training individuals to make accurate decisions from medical images is a critical component of education in diagnostic pathology. We describe a joint experimental and computational modeling approach to examine the similarities and differences in the cognitive processes of novice participants and experienced participants (pathology residents and pathology faculty) in cancer cell image identification. For this study we collected a bank of hundreds of digital images that were identified by cell type and classified by difficulty by a panel of expert hematopathologists. The key manipulations in our study included examining the speed-accuracy tradeoff as well as the impact of prior expectations on decisions. In addition, our study examined individual differences in decision-making by comparing task performance to domain general visual ability (as measured using the Novel Object Memory Test (NOMT) (Richler et al. Cognition 166:42–55, 2017). Using signal detection theory and the diffusion decision model (DDM), we found many similarities between experts and novices in our task. While experts tended to have better discriminability, the two groups responded similarly to time pressure (i.e., reduced caution under speed instructions in the DDM) and to the introduction of a probabilistic cue (i.e., increased response bias in the DDM). These results have important implications for training in this area as well as using novice participants in research on medical image perception and decision-making.
机译:培训个人从医学图像做出准确的决定是诊断病理学教育的重要组成部分。我们描述了一种联合实验和计算建模方法,以检查癌细胞图像识别中新手参与者和有经验的参与者(病理学居民和病理学系)在认知过程中的异同。在这项研究中,我们收集了数百张数字图像库,这些图像由细胞类型鉴定,并由一组专家血液病理学家按难度分类。我们研究中的关键操作包括检查速度准确性权衡以及先前期望对决策的影响。此外,我们的研究通过将任务执行能力与领域的一般视觉能力(使用新颖对象记忆测试(NOMT)进行了比较)来检查决策制定中的个体差异(Richler等人,Cognition 166:42-55,2017)。检测理论和扩散决策模型(DDM),我们发现专家和新手在任务中有许多相似之处。尽管专家倾向于更好的可分辨性,但两组对时间压力的响应相似(即,在DDM中的速度指令下谨慎性降低了) )以及引入概率提示(即DDM中的反应偏见增加),这些结果对于该领域的培训以及使用新手参加医学图像感知和决策研究均具有重要意义。

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