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Towards multimodal modeling of physicians' diagnostic confidence and self-awareness using medical narratives

机译:使用医学叙事对医生的诊断信心和自我意识进行多模式建模

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Misdiagnosis is a problem in the medical field, often related to physicians' cognitive errors. Overconfidence is considered a major cause of such errors. Intelligent diagnostic support systems could benefit from understanding how aware physicians are of their performance when they estimate their confidence in a diagnosis (i.e. a physician's diagnostic self-awareness). Shedding light on the cognitive processes related to such awareness could also help improve medical education. We use a multimodal dataset of medical narratives to computationally model diagnostic confidence and self-awareness based on physicians' linguistic and eye movement behaviors. Dermatologists viewed images of cutaneous conditions, providing a description, diagnosis, and certainty level for each image case, while their speech and eye movements were recorded. We define both a generalized and a personalized approach to binning confidence levels, used in classification experiments. We also introduce truly multimodal features, which focus on combining linguistic and eye movement data into multimodal attributes. Results indicate that combinations of multiple modalities can outperform their constituent modalities in isolation for these problems.
机译:误诊是医学领域中的一个问题,通常与医师的认知错误有关。过度自信被认为是造成此类错误的主要原因。智能诊断支持系统可以通过了解医师在估计自己对诊断的信心(即医师的诊断自我意识)时对自己的表现有多了解而受益。阐明与这种意识有关的认知过程也可能有助于改善医学教育。我们使用医学叙事的多模式数据集,根据医师的语言和眼球运动行为,对诊断置信度和自我意识进行计算模型化。皮肤科医生查看皮肤状况的图像,为每个图像病例提供描述,诊断和确定性水平,同时记录他们的言语和眼球运动。我们定义了分类实验中用于分类置信度的通用方法和个性化方法。我们还介绍了真正的多峰特征,重点在于将语言和眼动数据组合成多峰属性。结果表明,针对这些问题,多种形式的组合可以胜过它们的构成形式。

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