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Toward a fully integrated wireless wearable EEG-NIRS bimodal acquisition system

机译:迈向完全集成的无线可穿戴式EEG-NIRS双峰采集系统

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摘要

Interactions between neuronal electrical activity and regional changes in microcirculation are assumed to play a major role in physiological brain activity and the development of pathological disorders, but have been poorly elucidated to date. There is a need for advanced diagnostic tools to investigate the relationships between these two physiological processes. Approach. To meet these needs, a wireless wearable system has been developed, which combines a near infrared spectroscopy (NIRS) system using light emitting diodes (LEDs) as a light source and silicon photodiodes as a detector with an integrated electroencephalography (EEG) system. Main results. The main advantages over currently available devices are miniaturization and integration of a real-time electrical and hemodynamic activity monitor into one wearable device. For patient distributed monitoring and creating a body-area network, up to seven same devices can be connected to a single base station (PC) synchronously. Each node presents enhanced portability due to the wireless communication and highly integrated components resulting in a small, lightweight signal acquisition device. Further progress includes the individual control of LEDs output to automatically or interactively adjust emitted light to the actual local situation online, the use of silicon photodiodes with a safe low-voltage power supply, and an integrated three dimensional accelerometer for movement detection for the identification of motion artifacts. Significance. The device was tested and validated using our enhanced EEG-NIRS tissue mimicking fluid phantom for sensitivity mapping. Typical somatotopic electrical evoked potential experiments were performed to verify clinical applicability.
机译:假定神经元电活动与微循环区域变化之间的相互作用在生理性脑活动和病理性疾病的发展中起着重要作用,但迄今为止尚未得到很好的阐明。需要高级诊断工具来研究这两个生理过程之间的关系。方法。为了满足这些需求,已经开发了一种无线可穿戴系统,该系统将使用发光二极管(LED)作为光源和将硅光电二极管用作检测器的近红外光谱(NIRS)系统与集成的脑电图(EEG)系统相结合。主要结果。相对于当前可用设备的主要优点是将实时电和血液动力学活动监控器小型化并将其集成到一个可穿戴设备中。为了对患者进行分布式监视和创建体域网络,最多可以将七个相同的设备同步连接到单个基站(PC)。由于无线通信和高度集成的组件,每个节点都呈现出增强的可移植性,从而形成了一个小型,轻便的信号采集设备。进一步的进展包括对LED输出的单独控制,以自动地或交互式地在线调整发射光以适应实际的实际情况,使用带有安全低压电源的硅光电二极管,以及用于运动检测的集成三维加速度计,以识别电磁场。运动伪影。意义。使用我们的增强型EEG-NIRS组织模仿液体体模对灵敏度图进行了测试和验证。进行了典型的体位电诱发电位实验以验证临床适用性。

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  • 来源
    《Journal of neural engineering》 |2013年第5期|056001.1-056001.11|共11页
  • 作者单位

    GRAMFC - Inserm U1105, UFR of Medicine of University of Picardie Jules Verne, F-80036 Amiens, France;

    GRAMFC - Inserm U1105, UFR of Medicine of University of Picardie Jules Verne, F-80036 Amiens, France;

    GRAMFC - Inserm U1105, UFR of Medicine of University of Picardie Jules Verne, F-80036 Amiens, France,Faculty of Electrical Engineering, K. N. Toosi University of Technology 16315-1355, Tehran, Iran;

    GRAMFC - Inserm U1105, UFR of Medicine of University of Picardie Jules Verne, F-80036 Amiens, France,GRAMFC - Inserm U1105, EFSN Pediatrique, North Hospital, F-80056 Amiens, France;

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