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Confirming the Diversity of the Brain after Normalization: An Approach Based on Identity Authentication

机译:标准化后确认大脑的多样性:基于身份认证的方法

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摘要

During the development of neuroimaging, numerous analyses were performed to identify population differences, such as studies on age, gender, and diseases. Researchers first normalized the brain image and then identified features that represent key differences between groups. In these studies, the question of whether normalization (a pre-processing step widely used in neuroimaging studies) reduces the diversity of brains was largely ignored. There are a few studies that identify the differences between individuals after normalization. In the current study, we analyzed brain diversity on an individual level, both qualitatively and quantitatively. The main idea was to utilize brain images for identity authentication. First, the brain images were normalized and registered. Then, a pixel-level matching method was developed to compute the identity difference between different images for matching. Finally, by analyzing the performance of the proposed brain recognition strategy, the individual differences in brain images were evaluated. Experimental results on a 150-subject database showed that the proposed approach could achieve a 100% identification ratio, which indicated distinct differences between individuals after normalization. Thus, the results proved that after the normalization stage, brain images retain their main distinguishing information and features. Based on this result, we suggest that diversity (individual differences) should be considered when conducting group analysis, and that this approach may facilitate group pattern classification.
机译:在神经影像学发展过程中,进行了许多分析来确定人口差异,例如年龄,性别和疾病研究。研究人员首先对大脑图像进行归一化,然后确定代表各组之间关键差异的特征。在这些研究中,归一化(一种在神经影像研究中广泛使用的预处理步骤)是否会减少大脑的多样性这一问题在很大程度上被忽略了。有一些研究可以确定标准化后个体之间的差异。在当前的研究中,我们定性和定量地分析了个体水平上的大脑多样性。主要思想是利用大脑图像进行身份认证。首先,对脑图像进行归一化和配准。然后,开发了一种像素级匹配方法来计算不同图像之间的身份差异以进行匹配。最后,通过分析所提出的大脑识别策略的性能,评估了大脑图像中的个体差异。在150名受试者的数据库上进行的实验结果表明,该方法可以实现100%的识别率,这表明归一化后个体之间的明显差异。因此,结果证明,在归一化阶段之后,脑图像保留了它们的主要区别信息和特征。基于此结果,我们建议在进行组分析时应考虑多样性(个体差异),并且这种方法可能有助于组模式分类。

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