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An Unsupervised Method for On-Chip Neural Spike Detection in Multi-Electrode Recording Systems

机译:在多电极记录系统的片上神经棘波检测无监督方法

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摘要

Emerging multi-electrode-based brain-machine interfaces (BMIs) and large multi-electrode arrays used in in vitro experiments, enable recording of single neuron’s activity on multiple electrodes and allow for an in-depth investigation of neural preparations, even at a sub-cellular level. However, the use of these devices entails stringent area and power consumption constraints for the signal-processing hardware units. In addition, the high autonomy of these units and an ability to automatically adapt to changes in the recorded neural preparations is required. Implementing spike detection in close proximity to recording electrodes offers the advantage of reducing the transmission data bandwidth. By eliminating the need of transmitting the full, redundant recordings of neural activity and by transmitting only the spike waveforms or spike times, significant power savings can be achieved in the majority of cases. Here, we present a low-complexity, unsupervised, adaptable, real-time spike-detection method targeting multi-electrode recording devices and compare this method to other spike-detection methods with regard to complexity and performance.
机译:新兴的基于多电极的脑机接口(BMI)和用于体外实验的大型多电极阵列,可以记录单个神经元在多个电极上的活动,并允许深入研究神经制剂,即使在亚-细胞水平。然而,这些设备的使用对信号处理硬件单元带来了严格的面积和功耗约束。另外,需要这些单元的高度自主性以及自动适应所记录的神经准备的变化的能力。在靠近记录电极的地方实施尖峰检测具有减少传输数据带宽的优点。通过消除传输完整,冗余的神经活动记录的需要,以及仅传输尖峰波形或尖峰时间,在大多数情况下,可以节省大量功率。在这里,我们提出了一种针对多电极记录设备的低复杂度,无监督,适应性强的实时尖峰检测方法,并就复杂性和性能将这种方法与其他尖峰检测方法进行了比较。

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