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AVRA: Automatic visual ratings of atrophy from MRI images using recurrent convolutional neural networks

机译:AVRA:使用循环卷积神经网络对MRI图像中的萎缩进行自动视觉评级

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摘要

Quantifying the degree of atrophy is done clinically by neuroradiologists following established visual rating scales. For these assessments to be reliable the rater requires substantial training and experience, and even then the rating agreement between two radiologists is not perfect. We have developed a model we call AVRA (Automatic Visual Ratings of Atrophy) based on machine learning methods and trained on 2350 visual ratings made by an experienced neuroradiologist. It provides fast and automatic ratings for Scheltens' scale of medial temporal atrophy (MTA), the frontal subscale of Pasquier's Global Cortical Atrophy (GCA-F) scale, and Koedam's scale of Posterior Atrophy (PA). We demonstrate substantial inter-rater agreement between AVRA's and a neuroradiologist ratings with Cohen's weighted kappa values of κw = 0.74/0.72 (MTA left/right), κw = 0.62 (GCA-F) and κw = 0.74 (PA). We conclude that automatic visual ratings of atrophy can potentially have great scientific value, and aim to present AVRA as a freely available toolbox.
机译:由神经放射科医生按照既定的视觉评定量表在临床上对萎缩程度进行量化。为了使这些评估可靠,评估者需要大量的培训和经验,即使如此,两位放射科医生之间的评估协议也不是完美的。我们已经基于机器学习方法开发了一个称为AVRA(萎缩症的自动视觉评级)的模型,并由经验丰富的神经放射科医生对2350的视觉评级进行了训练。它为Scheltens的内侧颞萎缩(MTA)评分,Pasquier的全球皮质萎缩(GCA-F)额度副评分和Koedam的后萎缩(PA)评分提供快速,自动的评分。我们证明了AVRA与神经放射科医生评分之间的实质性评分者之间的一致性,Cohen加权kappa值为κw= 0.74 / 0.72(MTA左/右),κw=(0.62(GCA-F)和κw= 0.74(PA)。我们得出结论,萎缩的自动视觉评级可能具有巨大的科学价值,并旨在将AVRA展示为可免费获得的工具箱。

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