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Including Signal Intensity Increases the Performance of Blind Source Separation on Brain Imaging Data

机译:包括信号强度可提高脑成像数据盲源分离的性能

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摘要

When analyzing brain imaging data, blind source separation (BSS) techniques critically depend on the level of dimensional reduction. If the reduction level is too slight, the BSS model would be overfitted and become unavailable. Thus, the reduction level must be set relatively heavy. This approach risks discarding useful information and crucially limits the performance of BSS techniques. In this study, a new BSS method that can work well even at a slight reduction level is presented. We proposed the concept of “signal intensity” which measures the significance of the source. Only picking the sources with significant intensity, the new method can avoid the overfitted solutions which are nonexistent artifacts. This approach enables the reduction level to be set slight and retains more useful dimensions in the preliminary reduction. Comparisons between the new and conventional algorithms were performed on both simulated and real data.
机译:在分析大脑成像数据时,盲源分离(BSS)技术主要取决于尺寸缩减的程度。如果减少级别太小,则BSS模型将过拟合并变得不可用。因此,降低水平必须设置得相对较大。这种方法冒着丢弃有用信息的风险,并严重限制了BSS技术的性能。在这项研究中,提出了一种新的BSS方法,该方法即使在稍有降低的水平下也能很好地工作。我们提出了“信号强度”的概念,该概念衡量了信号源的重要性。这种新方法只需要选择强度很高的光源,就可以避免过度拟合的解决方案,这些解决方案是不存在的伪像。这种方法可以将缩小级别设置得很小,并在初步缩小中保留更多有用的尺寸。新算法和常规算法之间的比较是在模拟数据和真实数据上进行的。

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