Evaluating the effect of denoising submillimeter auditory fMRI data with NORDIC.

Imaging neuroscience (Cambridge, Mass.) Pub Date : 2024-08-14 eCollection Date: 2024-08-01 DOI:10.1162/imag_a_00270
Lonike K Faes, Agustin Lage-Castellanos, Giancarlo Valente, Zidan Yu, Martijn A Cloos, Luca Vizioli, Steen Moeller, Essa Yacoub, Federico De Martino
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Abstract

Functional magnetic resonance imaging (fMRI) has emerged as an essential tool for exploring human brain function. Submillimeter fMRI, in particular, has emerged as a tool to study mesoscopic computations. The inherently low signal-to-noise ratio (SNR) at submillimeter resolutions warrants the use of denoising approaches tailored at reducing thermal noise-the dominant contributing noise component in high-resolution fMRI. NOise Reduction with DIstribution Corrected Principal Component Analysis (NORDIC PCA) is one of such approaches, and has been benchmarked against other approaches in several applications. Here, we investigate the effects that two versions of NORDIC denoising have on auditory submillimeter data. While investigating auditory functional responses poses unique challenges, we anticipated NORDIC to have a positive impact on the data on the basis of previous applications. Our results show that NORDIC denoising improves the detection sensitivity and the reliability of estimates in submillimeter auditory fMRI data. These effects can be explained by the reduction of the noise-induced signal variability. However, we did observe a reduction in the average response amplitude (percent signal change) within regions of interest, which may suggest that a portion of the signal of interest, which could not be distinguished from general i.i.d. noise, was also removed. We conclude that, while evaluating the effects of the signal reduction induced by NORDIC may be necessary for each application, using NORDIC in high-resolution auditory fMRI studies may be advantageous because of the large reduction in variability of the estimated responses.

评价NORDIC对亚毫米级听觉fMRI数据去噪的效果。
功能磁共振成像(fMRI)已成为探索人脑功能的重要工具。亚毫米级 fMRI 尤其已成为研究介观计算的工具。亚毫米分辨率的信噪比(SNR)本身较低,因此需要使用专门的去噪方法来降低热噪声--高分辨率 fMRI 的主要噪声成分。用分布校正主成分分析法(NORDIC PCA)降噪就是此类方法之一,并已在多个应用中与其他方法进行了比较。在此,我们研究了两种版本的 NORDIC 去噪方法对听觉亚毫米波数据的影响。虽然调查听觉功能反应会带来独特的挑战,但根据以往的应用,我们预计 NORDIC 会对数据产生积极影响。我们的研究结果表明,NORDIC 去噪提高了亚毫米级听觉 fMRI 数据的检测灵敏度和估计值的可靠性。这些效果可以通过减少噪声引起的信号变异来解释。不过,我们确实观察到感兴趣区域内的平均响应振幅(信号变化百分比)有所降低,这可能表明一部分无法与一般 i.i.d. 噪声区分开来的感兴趣信号也被去除了。我们的结论是,虽然评估 NORDIC 所引起的信号减弱的效果可能对每种应用都是必要的,但在高分辨率听觉 fMRI 研究中使用 NORDIC 可能会有优势,因为它能大大降低估计反应的变异性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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