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Cognitive Depression Detection Methodology Using EEG Signal Analysis

机译:使用EEG信号分析认知抑制检测方法

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This paper illustrates a new method for depression detection using EEG recordings of a subject. It is meant to be used as a computerised aid by psychiatrists to provide objective and accurate diagnosis of a patient. First, data from the occipital and parietal regions of the brain is extracted and different channels are fused to form one wave. Then DFT, using FFT, is applied on the occipito-parietal wave to perform spectral analysis and the fundamental is selected from the spectrum. The fundamental is the wave with the maximum amplitude in the spectrum. Then classification of the subject is made based on the frequency of the fundamental using rule-based classifier. Detailed analysis of the output has been carried out. It has been noted that lower frequency of the fundamental tends to show hypoactivation of the lobes. Moreover, low-frequency characteristics have also been observed in depressed subjects. In this research, 37.5% of the subjects showed Major Depressive Disorder (MDD) and in all 80% of the subjects showed some form of depression.
机译:本文说明了使用受试者的EEG记录的抑郁检测方法。它意味着精神科医生用作计算机化援助,以提供对患者的客观和准确的诊断。首先,提取来自大脑的枕骨和顶部区域的数据,并融合不同的通道以形成一个波。然后,使用FFT的DFT应用于咽喉浪潮以进行光谱分析,并且从频谱中选择基础。基本的是频谱中最大幅度的波浪。然后基于基于规则的分类器的基本频率进行主题的分类。对输出进行了详细分析。已经注意到,较低的基本频率趋于显示裂片的低疗法。此外,在凹陷的受试者中也已经观察到低频特性。在这项研究中,37.5%的受试者表现出重大的抑郁症(MDD),并且在所有80%的受试者中显示出某种形式的抑郁症。

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