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Assessment of Bias in Experimentally Measured Diffusion Tensor Imaging Parameters Using SIMEX

机译:使用SIMEX评估实验测量的扩散张量成像参数的偏差

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摘要

Diffusion tensor imaging (DTI) enables in vivo investigation of tissue cytoarchitecture through parameter contrasts sensitive to water diffusion barriers at the micrometer level. Parameters are derived through an estimation process which is susceptible to noise and artifacts. Estimated parameters (e.g., fractional anisotropy) exhibit both variability and bias relative to the true parameter value estimated from a hypothetical noise-free acquisition. Herein, we present the use of the SIMulation and EXtrapolation (SIMEX) approach for post hoc assessment of bias in a massively-univariate imaging setting and evaluate the potential of a SIMEX-based bias correction. Using simulated data with known truth models, spatially varying FA bias error maps are evaluated on two independent and highly differentiated case studies. The stability of SIMEX and its distributional properties are further evaluated on 42 empirical DTI datasets. Using gradient sub-sampling, an empirical experiment with a known true outcome is designed and SIMEX performance is compared to the original estimator. With this approach, we find SIMEX bias estimates to be highly accurate offering significant reductions in parameter bias for individual datasets and greater accuracy in averaged population-based estimates.
机译:扩散张量成像(DTI)能够通过对微尺水平的水扩散屏障敏感的参数对比进行组织细胞建筑的体内调查。参数通过易受噪声和伪影的估计过程来导出。估计参数(例如,分数各向异性)表现出相对于从假设无噪声采集估计的真实参数值的可变性和偏差。这里,我们介绍了在大型单变量成像设置中偏置偏置后的模拟和外推(SIMEX)方法的用途,并评估基于SIMEX的偏差校正的潜力。使用具有已知真实模型的模拟数据,在两个独立和高度差异化的案例研究中评估空间变化的FA偏置错误映射。在42个经验DTI数据集上进一步评估SIMEX的稳定性及其分布性能。使用梯度子采样,设计了具有已知真正结果的经验实验,并将SIMEX性能与原始估算器进行了比较。通过这种方法,我们发现SIMEX偏见估计值高度准确地为各个数据集的参数偏差显着减少,以及对基于人口的平均估计的更高准确性。

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