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myBrain: a novel EEG embedded system for epilepsy monitoring

机译:myBrain:一种用于癫痫监测的新型EEG嵌入式系统

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The World Health Organisation has pointed that a successful health care delivery, requires effective medical devices as tools for prevention, diagnosis, treatment and rehabilitation. Several studies have concluded that longer monitoring periods and outpatient settings might increase diagnosis accuracy and success rate of treatment selection. The long-term monitoring of epileptic patients through electroencephalography (EEG) has been considered a powerful tool to improve the diagnosis, disease classification, and treatment of patients with such condition. This work presents the development of a wireless and wearable EEG acquisition platform suitable for both long-term and short-term monitoring in inpatient and outpatient settings. The developed platform features 32 passive dry electrodes, analogue-to-digital signal conversion with 24-bit resolution and a variable sampling frequency from 250?Hz to 1000?Hz per channel, embedded in a stand-alone module. A computer-on-module embedded system runs a Linux? operating system that rules the interface between two software frameworks, which interact to satisfy the real-time constraints of signal acquisition as well as parallel recording, processing and wireless data transmission. A textile structure was developed to accommodate all components. Platform performance was evaluated in terms of hardware, software and signal quality. The electrodes were characterised through electrochemical impedance spectroscopy and the operating system performance running an epileptic discrimination algorithm was evaluated. Signal quality was thoroughly assessed in two different approaches: playback of EEG reference signals and benchmarking with a clinical-grade EEG system in alpha-wave replacement and steady-state visual evoked potential paradigms. The proposed platform seems to efficiently monitor epileptic patients in both inpatient and outpatient settings and paves the way to new ambulatory clinical regimens as well as non-clinical EEG applications.
机译:世界卫生组织指出,成功的医疗保健,需要有效的医疗设备作为预防,诊断,治疗和康复的工具。一些研究得出结论认为,监测期更长,门诊环境可能会增加诊断准确性和治疗选择的成功率。通过脑电图(EEG)的癫痫患者的长期监测被认为是改善诊断,疾病分类和患者此类病症的患者的强大工具。这项工作介绍了在住院和门诊设置中适用于长期和短期监控的无线和可穿戴的EEG采集平台的开发。开发平台具有32个被动干电极,模拟到数字信号转换,具有24位分辨率,可变采样频率从250ΩHz到1000?Hz,每个通道,嵌入在独立模块中。模块上嵌入式系统运行Linux?在两个软件框架之间统治接口的操作系统,它交互以满足信号采集的实时约束以及并行记录,处理和无线数据传输。开发了一种纺织结构以适应所有组件。在硬件,软件和信号质量方面评估平台性能。通过电化学阻抗光谱表征电极,并评估运行癫痫辨别算法的操作系统性能。信号质量以两种不同的方法进行彻底评估:eEG参考信号的播放和用临床级EEG系统在α波更换和稳态视觉诱发潜在范式中的基准测试。该拟议平台似乎有效地监测癫痫患者,包括住院患者和门诊环境,并铺平了新的动态临床方案以及非临床EEG应用。

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