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Fuzzy Classification-Based Control of Wheelchair Using EEG Data to Assist People with Disabilities

机译:基于模糊分类的轮椅控制使用EEG数据来帮助残疾人

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Electroencephalography (EEG) will play an intelligent role our life: especially EEG based health diagnosis of brain disorder and Brain-Computer Interface (BCI) are growing areas of research. However, these approaches fall extremely short when attempting to design an automatic detection system and to use the same in BCI framework. The situation becomes even more difficult when the measurement system is being designed for a ubiquitous application for supporting people with disabilities, in which the patient is not confined to the hospital and the device is attached to him/her externally while the person is involved in daily chores. This paper presents a classification technique for one such system which is being built by the same team. Hence the presented work covers the initial findings related to some of the brain conditions in different scenarios that can be monitored in this setting and the detection system can produce control signals for the wheel chair movements that can be conveyed. Due to the compact nature of such systems, the detection and classification techniques have to be extremely simple in order to be stored in the small memory of the microcontroller of the ubiquitous system. The paper presents one such technique which is based on Fuzzy classifications of the EEG data using certain statistical features from the signal.
机译:脑电图(EEG)将发挥聪明的作用,我们的生活:特别是脑病的脑病和大脑界面的健康诊断(BCI)正在增长的研究领域。然而,当尝试设计自动检测系统并在BCI框架中使用相同时,这些方法会非常短。当测量系统正在设计用于支持残疾人的普遍存在的应用程序时,这种情况变得更加困难,其中患者未被限制在医院,并且设备在每日涉及的时候家务。本文为一个由同一团队构建的一个这样的系统提供了一种分类技术。因此,所呈现的工作涵盖与在该​​设置中可以监视的不同场景中的一些大脑条件相关的初始发现,并且检测系统可以产生可以传送的轮椅移动的控制信号。由于这种系统的紧凑性,检测和分类技术必须非常简单,以便存储在普遍存在的系统的微控制器的小存储器中。本文介绍了一种基于EEG数据的模糊分类,使用来自信号的某些统计特征。

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