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A system identification approach to determining listening attention from EEG signals

机译:一种从脑电信号确定听觉注意力的系统识别方法

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We still have very little knowledge about how our brains decouple different sound sources, which is known as solving the cocktail party problem. Several approaches; including ERP, time-frequency analysis and, more recently, regression and stimulus reconstruction approaches; have been suggested for solving this problem. In this work, we study the problem of correlating of EEG signals to different sets of sound sources with the goal of identifying the single source to which the listener is attending. Here, we propose a method for finding the number of parameters needed in a regression model to avoid overlearning, which is necessary for determining the attended sound source with high confidence in order to solve the cocktail party problem.
机译:关于大脑如何分离不同的声源,我们仍然知之甚少,这被称为解决鸡尾酒会问题。几种方法;包括ERP,时频分析以及最近的回归和刺激重建方法;已经提出解决该问题的建议。在这项工作中,我们研究了将EEG信号与不同声源集相关联的问题,目的是识别收听者正在参加的单个声源。在此,我们提出了一种用于找到回归模型中需要避免过度学习的参数数量的方法,这对于确定出席会议的声源具有很高的置信度是解决鸡尾酒会问题所必需的。

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