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Incorporating spatial constraint in co-activation pattern analysis to explore the dynamics of resting-state networks: An application to Parkinson's disease

机译:在共激活模式分析中纳入空间约束,探讨休息状态网络的动态:帕金森病的应用

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摘要

The dynamics of the brain's intrinsic networks have been recently studied using co-activation pattern (CAP) analysis. The CAP method relies on few model assumptions and CAP-based measurements provide quantitative information of network temporal dynamics. One limitation of existing CAP-related methods is that the computed CAPs share considerable spatial overlap that may or may not be functionally distinct relative to specific network dynamics. To more accurately describe network dynamics with spatially distinct CAPs, and to compare network dynamics between different populations, a novel data-driven CAP group analysis method is proposed in this study. In the proposed method, a dominant-CAP (d-CAP) set is synthesized across CAPs from multiple clustering runs for each group with the constraint of low spatial similarities among d-CAPs. Alternating d-CAPs with less overlapping spatial patterns can better capture overall network dynamics. The number of d-CAPs, the temporal fraction and spatial consistency of each d-CAP, and the subject-specific switching probability among all d-CAPs are then calculated for each group and used to compare network dynamics between groups.
机译:大脑的内在网络的动态都使用共同激活模式(CAP)分析最近的研究。该CAP方法依赖于一些模型假设和基于CAP的测量提供网络时空动态的定量信息。的现有CAP-相关方法的一个限制是,所计算的CAP共享相当大的空间重叠,其可以是或可以不是相对于特定的网络动力学功能上不同的是。为了更准确地描述网络动力学与空间上不同的CAP和比较不同群体之间的网络动力学,一种新颖的数据驱动的CAP组分析方法在本研究中提出的。在所提出的方法中,显性CAP(d-CAP)组跨通行证合成来自多个聚类运行的每个组与d-CAPS中的低空间相似性的约束。交替的d-CAPS具有较少重叠的空间模式可以更好地捕捉整体网络动态。 d-CAPS的所有d-CAPS之间的数,所述时间部分和各d-CAP的空间一致性,和所述特定主题的切换概率,然后计算每组和用于组间比较网络动态。

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