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Analysis of Underlying Causes of Inter-expert Disagreement in Retinopathy of Prematurity Diagnosis Application of Machine Learning Principles

机译:机器学习原理在视网膜病变早产诊断中专家间意见分歧的根本原因分析

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Objective: Inter-expert variability in image-based clinical diagnosis has been demonstrated in many diseases including retinopathy of prematurity (ROP), which is a disease affecting low birth weight infants and is a major cause of childhood blindness. In order to better understand the underlying causes of variability among experts, we propose a method to quantify the variability of expert decisions and analyze the relationship between expert diagnoses and features computed from the images. Identification of these features is relevant for development of computer-based decision support systems and educational systems in ROP, and these methods may be applicable to other diseases where inter-expert variability is observed.
机译:目的:已经在包括早产儿视网膜病变(ROP)在内的许多疾病中证实了基于图像的临床诊断的专家间差异,该疾病是影响低出生体重婴儿的疾病,并且是儿童失明的主要原因。为了更好地理解专家之间变异性的根本原因,我们提出了一种量化专家决策变异性并分析专家诊断与从图像计算出的特征之间的关系的方法。这些特征的识别与ROP中基于计算机的决策支持系统和教育系统的开发有关,并且这些方法可能适用于观察到专家间差异的其他疾病。

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