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Processing Magnetic Resonance Image Features with One-class Support Vector Machines: Investigation of the Autism Spectrum Disorder Heterogeneity

机译:用一流的支持向量机加工磁共振图像特征:对自闭症谱系异质性的调查

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Support Vector Machine (SVM) classifiers are widely used to analyse features extracted from brain MRI data to identify useful biomarkers of pathology in several disease conditions. They are trained to distinguish patients from healthy control subjects by making a binary classification of image features extracted by image processing algorithms. This task is particularly challenging when dealing with psychiatric disorders, as the reported neuroanatomical alterations are often very small and quite un-replicated within different studies. Subtle signs of pathology are difficult to catch especially in extremely heterogeneous conditions such as Autism Spectrum Disorders (ASD). We propose the use of the One-Class Classification (OCC) or Data Description method that, in contrast with two-class classification, is based on a description of one class of objects only. Then, new examples are tested for their similarity to the examples of this target class, end eventually considered as outliers. The application of the OCC to features extracted from brain MRI of children affected by ASD and control subjects demonstrated that a common pattern of features characterize the ASD population.
机译:支持向量机(SVM)分类器广泛用于分析从脑MRI数据提取的特征,以识别几种疾病条件下病理的有用生物标志物。他们训练以通过制定通过图像处理算法提取的图像特征的二进制分类来区分患者。在处理精神病疾病时,这项任务特别具有挑战性,因为报告的神经杀菌改变往往非常小,并且在不同的研究中非常不复用。病理学的微妙迹象难以捕获,特别是在极其异质的条件下,例如自闭症谱系统(ASD)。我们提出使用单级分类(OCC)或数据描述方法,与两级分类相比,基于仅对一类对象的描述。然后,测试新示例以测试它们与该目标类的示例的相似性,最终将其视为异常值。 OCC与受ASD和控制主体影响的儿童的脑MRI提取的特征的应用表明,常见的特征模式表征了ASD群体。

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