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Independent component analysis based assessment of linked gray and white matter in the initial stages of Alzheimer's disease using structural MRI phase images

机译:基于Alzheimer疾病初期与结构MRI相位图像的独立组分分析基于灰色和白质的评估

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Alzheimer's disease (AD) is a common form of dementia that is affecting the elderly population worldwide. We present here a novel approach based on independent component analysis (ICA) method to get useful features that are representative of the interrelationship among the structural magnetic resonance imaging (sMRI) brain voxels. ICA effectively considers the information inherent in the sMRI scans and provides information about the independent sources of brain that are affected during the course of progression of AD. Phase images summarize the complex relationship between gray and white matter in the brain. The results presented depicts interesting differences among the healthy elderly controls and elder patients belonging to early categories of AD with clinical dementia rating (CDR) of 0.5 and 1 for parahippocampus and other areas. The effects of socioeconomic factors on ICA features also shows the usefulness of sources that are preserved by ICA features. These interesting findings show the usefulness of ICA for feature extraction and analysis in AD research. In addition, the use of phase images for feature extraction have a clear advantage over other approaches that consider the relationship among gray and white matter intermittently.
机译:阿尔茨海默氏病(AD)是影响老年人口的全球老年痴呆症的一种常见形式。我们在这里提出基于独立成分分析(ICA)方法的新颖的方法来获得有用的功能,有代表性的结构的磁共振成像(SMRI)脑的体素之间的相互关系的。 ICA有效地认为在有关SMRI扫描固有的信息,并提供了有关AD进展的过程中受影响的脑的独立来源的信息。相图总结了大脑灰质和白质之间的复杂关系。结果呈现描绘了健康老人对照和老年患者属于与0.5和1个临床痴呆评级(CDR)的parahippocampus等领域的早期类AD中有趣的差异。社会经济因素对ICA的影响还具有显示由ICA功能保存资源的效用。这些有趣的调查结果显示ICA的对AD的研究特征提取和分析的有用性。此外,特征提取使用阶段图像有过间歇性考虑中灰质和白质的关系,其他的方法具有明显的优势。

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