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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Ellipsoidal support vector clustering for functional MRI analysis
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Ellipsoidal support vector clustering for functional MRI analysis

机译:椭球支持向量聚类用于功能性MRI分析

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摘要

As an exploratory approach. the clustering of fMRI time series has proved its effectiveness in analyzing the functional MRI, especially in the detection of activated regions. Due to the arbitrary distribution of fMRI time series in the temporal domain, imposing simple assumption on the data structure Usually could be misleading and limit the detector's performance. Therefore, a true data-driven clustering algorithm that adapts to the data structure is preferred, and only high-level control over the clustering procedure is desired. Support vector clustering (SVC) is a suitable one in some extent because of its advantages, such as no cluster shape restriction, no need to explicitly specify the number of clusters, and the mechanism in outlier elimination. In this work, we propose an extension of the SVC to step further toward a data-sensitive detector. This approach is named as ellipsoidal support vector clustering (ESVC). To be robust to noise, the Clustering is performed on features extracted from the fMRI time series via Fourier transform. Experimental results on simulated and real data sets demonstrate the effectiveness of incorporating data structure in clustering fMRI time series. (c) 2007 Pattern Recognition Society. Published by Elsevier Ltd. All rights reserved.
机译:作为探索性方法。 fMRI时间序列的聚类证明了其在分析功能性MRI方面的有效性,特别是在激活区域的检测方面。由于fMRI时间序列在时域中的任意分布,因此对数据结构施加简单假设通常会产生误导,并限制检测器的性能。因此,首选适合数据结构的真正的数据驱动的聚类算法,并且只需要对聚类过程进行高级控制。支持向量聚类(SVC)在某种程度上是一种合适的方法,因为它具有无聚类形状限制,无需明确指定聚类数量以及离群值消除机制等优点。在这项工作中,我们提出了SVC的扩展,以进一步迈向数据敏感型检测器。这种方法称为椭圆支持向量聚类(ESVC)。为了增强抗噪能力,聚类是通过傅立叶变换对从fMRI时间序列中提取的特征执行的。在模拟和真实数据集上的实验结果证明了在聚类fMRI时间序列中合并数据结构的有效性。 (c)2007模式识别学会。由Elsevier Ltd.出版。保留所有权利。

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