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首页> 外文期刊>Journal of Neuroscience Methods >Bootstrap resampling method to estimate confidence intervals of activation-induced CBF changes using laser Doppler imaging.
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Bootstrap resampling method to estimate confidence intervals of activation-induced CBF changes using laser Doppler imaging.

机译:引导重采样方法使用激光多普勒成像估计活化引起的脑血流变化的置信区间。

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摘要

Laser Doppler imaging (LDI) signal and noise characteristics can vary significantly depending upon the underlying vascular caliber. Further, noise characteristics are not constant over time (non-stationary) and can vary during resting and activated conditions in a typical experiment. Since only a limited number of images can be acquired in a single run, concatenation of data from similar experimental trials becomes necessary which can induce further variation in temporal noise due to instrumental response. In conventional statistical analysis methods such as cross-correlation, a fixed significance threshold is generally used (for the entire image) to detect activation assuming constant noise over time and a normal distribution. As a consequence, statistical significance can become strong or weak due to temporal differences in baseline LD noise, which can possibly deviate from a normal distribution. The main emphasis of this study was the application of bootstrap resampling in conjunction with cross-correlation to estimate the confidence intervals on a pixel-by-pixel basis to avoid distributional specifications on the additive measurement error leading to reliable whisker activation-induced CBF changes. At a 95% confidence level, bootstrap resampling followed by confidence intervals for the correlation coefficient distribution increased the number of active pixels by almost 45% when compared to conventional cross-correlation. These pixels were mostly confined to areas with intermediate and large baseline LD flux with considerable deviation from normality. It is suggested that confidence intervals of the bootstrap estimates can lead to unbiased detection of CBF change in the cerebral cortex, particularly in regions with large temporal variation in noise and low CNR.
机译:激光多普勒成像(LDI)信号和噪声特性可能会因基础血管的口径而有很大差异。此外,噪声特性在一段时间内不是恒定的(非平稳的),并且在典型实验中的静止和激活条件下会发生变化。由于一次只能获取有限数量的图像,因此必须进行来自类似实验试验的数据连接,这可能会由于仪器响应而引起时间噪声的进一步变化。在诸如互相关之类的常规统计分析方法中,通常使用固定的显着性阈值(对于整个图像)来检测激活,假设随时间推移噪声恒定且呈正态分布。结果,由于基线LD噪声的时间差异(可能偏离正态分布),统计显着性可能变强。这项研究的主要重点是自举重采样结合互相关的应用,以逐像素为基础估计置信区间,从而避免了导致可信赖的晶须活化引起的CBF变化的附加测量误差的分布规范。与传统的互相关相比,在95%的置信度水平下,自举重采样以及相关系数分布的置信区间使有效像素的数量增加了近45%。这些像素主要限于基线LD通量中等和较大的区域,与正常值有相当大的偏差。建议引导程序估计的置信区间可以导致对大脑皮层中CBF变化的无偏检测,尤其是在噪声中的时间变化较大且CNR较低的区域。

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