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Autism Spectrum Disorders (ASD) Characterization in Children by Decomposing MRI Brain Regions with Zernike Moments

机译:儿童自闭症谱系障碍(ASD)的表征,通过Zernike矩分解MRI脑区域

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Autism Spectrum Disorder (ASD) is a complex neurological condition characterized by a triad of signs: stereotyped behaviors, verbal and non-verbal communication problems and troubles in social interaction. The scientific community has been interested on quantifying anatomical brain alterations of this disorder to correlate the clinical signs with brain tissue changes. This work presents a fully automatic method to find out brain differences between patients diagnosed with autism and control subjects. After pre-processing, a template (MNI152) is registered to each evaluated brain, obtaining a set of segmented regions. Each region is mapped into a 2D collage image which is decomposed by the Zernike Moments, obtaining magnitude and phase. These features are then used to train, region per region, a binary SVM classifier. The method was evaluated in a children population, aged from 6 to 12 years, from the public database Autism Brain Imaging Data Exchange. The AUC values for the most representative brain region were 77% for ABIDE I and 76% for ABIDE II, demonstrating the robustness of the method.
机译:自闭症谱系障碍(ASD)是一种复杂的神经系统疾病,其特征是三联征:刻板行为,口头和非语言沟通问题以及社交互动中的麻烦。科学界一直对量化这种疾病的解剖学大脑变化感兴趣,以将临床体征与脑组织变化相关联。这项工作提出了一种全自动方法,以找出诊断为自闭症的患者与对照组之间的大脑差异。预处理后,将模板(MNI152)注册到每个评估的大脑,以获得一组分段区域。将每个区域映射到2D拼贴图像中,该图像由Zernike矩分解,从而获得幅度和相位。这些功能然后用于按区域对每个区域训练二进制SVM分类器。通过公共数据库自闭症脑成像数据交换,对6至12岁的儿童人群进行了评估。最有代表性的大脑区域的AUC值对于ABIDE I是77%,对于ABIDE II是76%,证明了该方法的鲁棒性。

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