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A scalable and efficient digital signal processing system for real time biological spike detection

机译:用于实时生物峰值检测的可扩展且高效的数字信号处理系统

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The design of computing systems able to process data from electrophysiology experiments in real-time is required by biological applications where feedback stimulation of cells could depend on their current activities. From algorithm to hardware implementations, these closed loop systems are specific to cell types, culture size and analog acquisition system properties. Consequently, developing digital processing systems for biological experimentation is time consuming and could become a limiting factor for research in neuroscience. Model-based methodologies for hardware architecture generation is currently investigated in video and signal processing domains because they drastically reduce the development time of hardware prototypes and improve the design flexibility with low over-cost in comparison with handmade designs. In this article, we evaluate the interests and the drawbacks of these model-based methodologies for electrophysiological applications and compare them with previous handmade design.
机译:生物应用需要能够实时处理来自电生理实验数据的计算系统的设计,在这些应用中,细胞的反馈刺激可能取决于它们当前的活动。从算法到硬件实现,这些闭环系统特定于细胞类型,培养物大小和模拟采集系统属性。因此,开发用于生物实验的数字处理系统非常耗时,并且可能成为神经科学研究的限制因素。目前,在视频和信号处理领域研究基于模型的硬件体系结构生成方法,因为与手工设计相比,它们大大减少了硬件原型的开发时间,并以较低的超额成本提高了设计灵活性。在本文中,我们评估了这些基于模型的方法在电生理学应用中的利弊,并将其与以前的手工设计进行了比较。

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