Laboratoire de l'Intégration du Matériau au Système (IMS), University of Bordeaux, Bordeaux INP, CNRS UMR 5218, F-33400 Talence, France.
Signalisation et physiopathologie cardiovasculaire, INSERM S-1180, University of Paris Sud, F-92296 Châtenay-Malabry, France.
Sensors (Basel). 2018 Jun 30;18(7):2099. doi: 10.3390/s18072099.
Enhanced understanding and control of electrophysiology mechanisms are increasingly being hailed as key knowledge in the fields of modern biology and medicine. As more and more excitable cell mechanics are being investigated and exploited, the need for flexible electrophysiology setups becomes apparent. With that aim, we designed Multimed, which is a versatile hardware platform for the real-time recording and processing of biosignals. Digital processing in Multimed is an arrangement of generic processing units from a custom library. These can freely be rearranged to match the needs of the application. Embedded onto a Field Programmable Gate Array (FPGA), these modules utilize full-hardware signal processing to lower processing latency. It achieves constant latency, and sub-millisecond processing and decision-making on 64 channels. The FPGA core processing unit makes Multimed suitable as either a reconfigurable electrophysiology system or a prototyping platform for VLSI implantable medical devices. It is specifically designed for open- and closed-loop experiments and provides consistent feedback rules, well within biological microseconds timeframes. This paper presents the specifications and architecture of the Multimed system, then details the biosignal processing algorithms and their digital implementation. Finally, three applications utilizing Multimed in neuroscience and diabetes research are described. They demonstrate the system’s configurability, its multi-channel, real-time processing, and its feedback control capabilities.
电生理学机制的理解和控制得到了增强,这被越来越多地誉为现代生物学和医学领域的关键知识。随着越来越多的可兴奋细胞力学被研究和利用,对灵活的电生理设置的需求变得明显。为此,我们设计了 Multimed,这是一个用于生物信号实时记录和处理的多功能硬件平台。Multimed 中的数字处理是从自定义库中排列通用处理单元的一种安排。这些可以自由重新排列,以满足应用的需求。这些模块被嵌入到现场可编程门阵列 (FPGA) 中,利用全硬件信号处理来降低处理延迟。它可以实现 64 个通道的恒定延迟、亚毫秒级的处理和决策。FPGA 核心处理单元使 Multimed 适合作为可重新配置的电生理学系统或用于 VLSI 植入式医疗设备的原型平台。它专门为开环和闭环实验设计,提供一致的反馈规则,完全在生物微秒时间范围内。本文介绍了 Multimed 系统的规格和架构,然后详细介绍了生物信号处理算法及其数字实现。最后,描述了三个利用 Multimed 在神经科学和糖尿病研究中的应用。它们展示了系统的可配置性、多通道实时处理和反馈控制能力。