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A method for discriminating systemic and cortical hemodynamic changes by time domain fNIRS

机译:通过时域fNIRS判别全身和皮层血流动力学变化的方法

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Functional near-infrared spectroscopy (fNIRS) is a non-invasive optical technique able to measure hemodynamic response in the brain cortex. Among the different approaches the fNIRS can be based on, the time resolved one allows a straightforward relationship between the photon detection time and its path within the medium, improving the discrimination of the information content relative to the different layers the tissues are composed of. Thus absorption and scattering properties of the probed tissue can be estimated, and from them the oxy- and deoxy-hemoglobin concentration. However, an open issue in the optical imaging studies is still the accuracy in separating the superficial hemodynamic changes from those happening in deeper regions of the head and more likely involving the cerebral cortex. In fact a crucial point is the precise estimate of the time dependent pathlength spent by photons within the perturbed medium. A novel method for the calculus of the absorption properties in time domain fNIRS, based on a refined computation of photon pathlength in multilayered media, is proposed. The method takes into account the non-ideality of the measurement system (its instrument response function) and the heterogeneous structure of the head. The better accuracy in computing the optical pathlength can improve the NIRS data analysis, especially for the deeper layer. Simulations and preliminary analysis on in vivo data have been performed to validate the method and are here presented.
机译:功能性近红外光谱(fNIRS)是一种非侵入性光学技术,能够测量大脑皮层的血液动力学反应。在fNIRS可以基于的不同方法中,时间分辨可以在光子检测时间与其在介质中的路径之间建立一种直接的关系,从而改善了信息内容相对于组成组织的不同层的辨别力。因此,可以估计所探测组织的吸收和散射特性,并据此估算出氧合和脱氧血红蛋白的浓度。然而,光学成像研究中尚待解决的问题仍然是,如何将浅表血流动力学变化与头部深部区域更可能涉及大脑皮层的变化区分开来。实际上,关键一点是精确估计受扰动的介质中光子所花费的时间相关路径长度。提出了一种基于精细计算多层介质中光子路径长度的时域fNIRS吸收特性计算方法。该方法考虑了测量系统的非理想性(其仪器响应功能)和头部的异构结构。计算光程长度的精度更高,可以改善NIRS数据分析,尤其是对于较深的层。已经对体内数据进行了模拟和初步分析以验证该方法,并在此处介绍。

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