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Identifying Personalized Autism Related Impairments Using Resting Functional MRI and ADOS Reports

机译:使用静息功能性MRI和ADOS报告确定与自闭症相关的个性化障碍

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In this study, a personalized computer aided diagnosis system for autism spectrum disorder is introduced. The proposed system uses resting state functional MRI data to build local classifiers, global classifier, and correlate the classification findings with ADOS behavioral reports. This system is composed of 3 main phases: (ⅰ) Data preprocessing to overcome the motion and timing artifacts and normalize the data to standard MNI152 space, (ⅱ) using a small subset (40 subjects) to extract significant activation components, and (ⅲ) utilize the extracted significant components to build a deep learning based diagnosis system for each component, combine the probabilities for global diagnosis and calculate the correlation with ADOS reports. The deep learning based classification system showed accuracies of more than 80% in the significant components, moreover, the global diagnosis accuracy is 93%. Out of the significant components, 2 components are found to be correlated with neuro-circuits involved in autism related impairments as reported in ADOS reports.
机译:在这项研究中,介绍了一种针对自闭症谱系障碍的个性化计算机辅助诊断系统。拟议的系统使用静止状态功能MRI数据来构建局部分类器,全局分类器,并将分类结果与ADOS行为报告相关联。该系统由3个主要阶段组成:(ⅰ)数据预处理以克服运动和定时伪像,并将数据归一化为标准MNI152空间;(ⅱ)使用一小部分子集(40个主题)提取重要的激活分量;以及(ⅲ )利用提取的重要组件为每个组件构建一个基于深度学习的诊断系统,结合全局诊断的可能性,并与ADOS报告计算相关性。基于深度学习的分类系统显示出重要组成部分的准确性超过80%,此外,全局诊断准确性为93%。在重要成分中,有2个成分与ADOS报告中报道的与自闭症相关损伤的神经回路相关。

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