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基于双探测器的脑血氧有效信号提取算法。

Effective Signal Extraction Algorithm for Cerebral Blood Oxygen Based on Dual Detectors.

机构信息

School of Optical-Electrical and Computer Engineering, University of Shanghai for Science and Technology, Shanghai 200020, China.

出版信息

Sensors (Basel). 2024 Mar 12;24(6):1820. doi: 10.3390/s24061820.

Abstract

Functional near-infrared spectroscopy (fNIRS) can dynamically respond to the relevant state of brain activity based on the hemodynamic information of brain tissue. The cerebral cortex and gray matter are the main regions reflecting brain activity. As they are far from the scalp surface, the accuracy of brain activity detection will be significantly affected by a series of physiological activities. In this paper, an effective algorithm for extracting brain activity information is designed based on the measurement method of dual detectors so as to obtain real brain activity information. The principle of this algorithm is to take the measurement results of short-distance channels as reference signals to eliminate the physiological interference information in the measurement results of long-distance channels. In this paper, the performance of the proposed method is tested using both simulated and measured signals and compared with the extraction results of EEMD-RLS, RLS and fast-ICA, and their extraction effects are quantified by correlation coefficient (R), root-mean-square error (RMSE), and mean absolute error (MAE). The test results show that even under low SNR conditions, the proposed method can still effectively suppress physiological interference and improve the detection accuracy of brain activity signals.

摘要

功能近红外光谱(fNIRS)可以根据脑组织的血液动力学信息,动态响应大脑活动的相关状态。大脑皮层和灰质是反映大脑活动的主要区域。由于它们远离头皮表面,大脑活动检测的准确性会受到一系列生理活动的显著影响。本文基于双探测器的测量方法,设计了一种有效的脑活动信息提取算法,以获得真实的脑活动信息。该算法的原理是将短距离通道的测量结果作为参考信号,消除长距离通道测量结果中的生理干扰信息。本文采用模拟和实测信号对所提方法的性能进行了测试,并与 EEMD-RLS、RLS 和 fast-ICA 的提取结果进行了比较,通过相关系数(R)、均方根误差(RMSE)和平均绝对误差(MAE)对其提取效果进行了量化。测试结果表明,即使在低 SNR 条件下,该方法仍能有效抑制生理干扰,提高脑活动信号的检测精度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3e30/10974257/5933e7bea294/sensors-24-01820-g001.jpg

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