功能近红外光谱
脑电图
计算机科学
级联
干扰(通信)
人工智能
大脑活动与冥想
模式识别(心理学)
机器学习
语音识别
神经科学
认知
工程类
心理学
计算机网络
频道(广播)
化学工程
前额叶皮质
作者
Mariusz Pelc,Dariusz Mikołajewski,Tuukka Ruotsalo,Luis A. Leiva,Adam Sudoł,Edward Jacek Gorzelańczyk,Adam Łysiak,Aleksandra Kawala-Sterniuk
标识
DOI:10.1109/paee59932.2023.10244522
摘要
This paper presents a preliminary study on the use of machine learning-based methods to select the appropriate parameters of cascade filters in the analysis of brain signals recorded using functional infrared spectroscopy (fNIRS), which shows the level of oxygenation in the brain and, unlike EEG signals (showing electrical brain activity), are less prone to potential interference, disturbances or artifacts occurrence.
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