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Controlling False Discovery Rate in Signal Space for Transformation-Invariant Thresholding of Statistical Maps

机译:控制信号空间中的错误发现率以实现统计图变换不变阈值

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Thresholding statistical maps with appropriate correction of multiple testing remains a critical and challenging problem in brain mapping. Since the false discovery rate (FDR) criterion was introduced to the neuroimaging community a decade ago, various improvements have been proposed. However, a highly desirable feature, transformation invariance, has not been adequately addressed, especially for voxel-based FDR. Thresholding applied after spatial transformation is not necessarily equivalent to transformation applied after thresholding in the original space. We find this problem closely related to another important issue: spatial correlation of signals. A Gaussian random vector-valued image after normalization is a random map from a Euclidean space to a high-dimension unit-sphere. Instead of defining the FDR measure in the image's Euclidean space, we define it in the signals' hyper-spherical space whose measure not only reflects the intrinsic "volume" of signals' randomness but also keeps invariant under images' spatial transformation. Experiments with synthetic and real images demonstrate that our method achieves transformation invariance and significantly minimizes the bias introduced by the choice of template images.
机译:阈值统计图以及多次测试的适当校正仍然是脑图绘制中的关键和挑战性问题。自从十年前将错误发现率(FDR)标准引入神经影像社区以来,已经提出了各种改进措施。但是,特别是对于基于体素的FDR,尚未充分解决高度期望的特征,即变换不变性。在空间变换后应用的阈值不一定等于在原始空间中进行阈值处理后的变换。我们发现这个问题与另一个重要问题密切相关:信号的空间相关性。归一化后的高斯随机矢量值图像是从欧几里得空间到高维单位球的随机映射。我们没有在图像的欧几里得空间中定义FDR度量,而是在信号的超球形空间中定义了FDR度量,该度量不仅反映了信号随机性的内在“量”,而且在图像的空间变换下保持不变。用合成图像和真实图像进行的实验表明,我们的方法实现了变换不变性,并极大地减少了因选择模板图像而引起的偏差。

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