基于脑电数据和人工神经网络的混淆程度分类

Claire Receli M. Reñosa, Dr. Argel A. Bandala, Dr. Ryan Rhay P. Vicerra
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引用次数: 9

摘要

本研究的目的是创建一个人工神经网络(ANN),该网络可以使用脑电图(EEG)数据,更具体地说,使用所有脑电波频率的功率谱,对一个人的困惑程度进行分类。这可以帮助人们理解大脑中存在的复杂机制,包括每个特定的脑电波信号在一个人的大脑中形成不同的认知活动(如困惑和工作量)中所起的作用。这项研究被归类为认知-情感状态研究,灵感来自于它目前可能应用于不同的现有社会领域,如教育和游戏行业。本研究使用的数据集处理和解释的处理平台为Microsoft Excel和MATLAB软件,采用适合脑电数据分类和人工神经网络建模的基于频率的分析和标准平均方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Classification of Confusion Level Using EEG Data and Artificial Neural Networks
the purpose of this study is to create an artificial neural network (ANN) that can classify a person’s level of confusion using Electroencephalography (EEG) data, more specifically, using the power spectrum of all the brain wave frequencies. This could help people in understanding the complicated mechanisms present in the brain, including the role that each specific brain wave signal plays in the formation of different cognitive activities in one’s mind such as confusion and workload. This study is categorized as a cognitive-affective state research, inspired by its current possible application to different existing societal fields such as education and gaming industries. The processing platforms used to process and interpret the dataset used in this research are Microsoft Excel and MATLAB software, applying frequency-based analysis and standard averaging methods fit for EEG data classification and artificial neural network modeling.
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