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A power efficient frequency shaping neural recorder with automatic bandwidth adjustment

机译:具有自动带宽调整的功率高效频率整形神经记录器

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This paper presents a frequency-shaping (FS) neural recorder with automatic bandwidth adjustment. The proposed recorder inherently attenuates electrode offset and motion artifacts, compresses neural data dynamic range by 4.5-bit, and achieves a 3 pF input impedance to better support chronic recording experiments. A major drawback of an FS recorder is larger input referred noise due to noise aliasing and reduced gain at low frequencies. In this work, we have proposed a multi-phase sampling and processing technique which can 10 times reduce the noise. In addition, a neural spike processor operating at a low duty cycle has been integrated, where the processing results are feedback to the analog frontend: when the channel contains no/little spike activities, the recorder bandwidth is automatically reduced to record local field potentials (LFPs) only. The bandwidth reduction enables substantial power saving for that channel (4 times in the current implementation). The bandwidth is then automatically restored back to 8 kHz once spikes are detected from the spiking probability map. A prototyping chip has been fabricated in a 0.13 μm CMOS process. When measured at a 80 kHz sampling clock and 1.0 V supply, the recorder achieves a 3 pF input capacitance, 2.2 μV input noise for recording spikes, and 15 μW/ch power for amplifiers, filters, multiplexer, analog-to-digital converter (ADC), and digital filters combined. Empirical studies on in-vivo recordings from monkeys show that over 70% of channels do not contain detectable spikes, suggesting an averaged recording power reduction by 50% to 7.5 μW/ch.
机译:本文介绍了具有自动带宽调整的频率整形(FS)神经记录器。所提出的记录器本身衰减电极偏移和运动伪像,通过4.5位压缩神经数据动态范围,并实现3个PF输入阻抗,以更好地支持慢性记录实验。由于噪声混叠,并且在低频下降低增益,FS录音机的主要缺点是更大的输入引用噪声。在这项工作中,我们提出了一种多相采样和处理技术,可以减少10倍的噪声。此外,在低占空比上运行的神经尖峰处理器已经集成,其中处理结果是模拟前端的反馈:当通道包含没有/小的尖峰活动时,记录器带宽被自动减少以记录本地现场电位( LFPS)仅限。带宽减少可实现该频道的大量省电(在当前实现中的4次)。然后,一旦从尖峰概率图检测到尖峰,带宽将自动恢复到8kHz。原型化芯片已在0.13μmCMOS工艺中制造。当在80 kHz采样时钟和1.0 V供电时测量时,记录器实现3个PF输入电容,2.2μV用于记录尖峰的输入噪声,以及用于放大器,滤波器,多路复用器,模数转换机的15μW/ CH电源( ADC)和数码过滤器组合。来自猴子的体内录音的实证研究表明,超过70%的通道不含可检测的尖峰,表明平均记录功率降低50%至7.5μW/ CH。

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