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Real-time data compression of neural spikes

机译:神经峰值的实时数据压缩

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This paper presents an analysis of the effectiveness of delta compression (DC) with additional entropy encoding, referred to as modified delta compression (MDC), as real-time compression scheme for neural spikes. Neural data compression which does not result in major distortion of the data is an attractive option to lower the transmitter power consumption. Since a lossy compression will result in a potentially undesirable loss of information the above mentioned compression scheme is analyzed regarding its ability to preserve the spike sorting relevant information content of the neural signals. Our analysis shows that MDC with thresholding is suitable for the compression of low-noise synthetic neural spike signals, but that its performance significantly degrades in the presence of higher noise levels or with recorded neural signals. In our simulations, the lossless MDC scheme achieves a mean compression rate of 2 without signal distortion. An example circuit realization for the compression of 100 channels synthesized in a 180 nm CMOS technology occupies a chip area of 0.72 mm and consumes 0.97 mW of power. Based on these results, it was found that the MDC scheme is capable of lowering the overall power consumption when the utilized wireless transmitters consume more than 121 pJ/bit which applies to most state of the art transmitter implementations.
机译:本文介绍了对带有附加熵编码的增量压缩(DC)的有效性的分析,该编码称为改进的增量压缩(MDC),是神经峰值的实时压缩方案。不会导致数据严重失真的神经数据压缩是降低发射器功耗的诱人选择。由于有损压缩将导致潜在的不希望有的信息丢失,因此对上述压缩方案保留其保留神经信号的尖峰排序相关信息内容的能力进行了分析。我们的分析表明,带阈值的MDC适合压缩低噪声合成神经尖峰信号,但是在存在较高噪声水平或记录了神经信号的情况下,其性能会大大降低。在我们的仿真中,无损MDC方案实现了平均压缩率为2,而没有信号失真。用于压缩以180 nm CMOS技术合成的100个通道的示例电路实现占用0.72 mm的芯片面积,并消耗0.97 mW的功率。基于这些结果,发现当所利用的无线发射机消耗的功率大于121pJ /位时,MDC方案能够降低总功耗,这适用于大多数现有技术的发射机实现。

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