优化 fNIRS 的空间特异性和信号质量:概述提高实时应用可靠性的潜在挑战和可能方案

Franziska Klein
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摘要

光学脑成像方法功能性近红外光谱(fNIRS)是一种很有前途的实时应用工具,如神经反馈和脑机接口。它兼具空间特异性和移动性,因此特别适合临床使用,无论是在床边还是在病人家中。尽管 fNIRS 具有这些优势,但要优化其实时应用,还需要仔细关注两个关键方面:确保良好的空间特异性和保持较高的信号质量。虽然 fNIRS 可检测大脑皮层表层区域,但持续可靠地定位特定感兴趣区域却具有挑战性,尤其是在需要重复测量的研究中。帽子放置位置的变化加上有限的解剖信息可能会进一步降低精确度。此外,在实时情况下保持良好的信号质量以确保其反映真实的潜在大脑活动也很重要。然而,fNIRS 信号很容易受到大脑和脑外系统噪声以及运动伪影的污染。因此,不充分的实时预处理会导致系统在噪声而非大脑活动的基础上运行。这篇综述文章旨在帮助推动基于 fNIRS 的实时应用取得进展。文章强调了提高空间特异性和信号质量的潜在挑战,讨论了克服这些挑战的可能方案,并探讨了与实时应用相关的进一步考虑因素。通过讨论这些主题,文章旨在帮助改进未来实时研究的规划和执行,从而提高其可靠性和可重复性。
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Optimizing spatial specificity and signal quality in fNIRS: an overview of potential challenges and possible options for improving the reliability of real-time applications
The optical brain imaging method functional near-infrared spectroscopy (fNIRS) is a promising tool for real-time applications such as neurofeedback and brain-computer interfaces. Its combination of spatial specificity and mobility makes it particularly attractive for clinical use, both at the bedside and in patients' homes. Despite these advantages, optimizing fNIRS for real-time use requires careful attention to two key aspects: ensuring good spatial specificity and maintaining high signal quality. While fNIRS detects superficial cortical brain regions, consistently and reliably targeting specific regions of interest can be challenging, particularly in studies that require repeated measurements. Variations in cap placement coupled with limited anatomical information may further reduce this accuracy. Furthermore, it is important to maintain good signal quality in real-time contexts to ensure that they reflect the true underlying brain activity. However, fNIRS signals are susceptible to contamination by cerebral and extracerebral systemic noise as well as motion artifacts. Insufficient real-time preprocessing can therefore cause the system to run on noise instead of brain activity. The aim of this review article is to help advance the progress of fNIRS-based real-time applications. It highlights the potential challenges in improving spatial specificity and signal quality, discusses possible options to overcome these challenges, and addresses further considerations relevant to real-time applications. By addressing these topics, the article aims to help improve the planning and execution of future real-time studies, thereby increasing their reliability and repeatability.
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