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A wavelet-based compression for neural recording system

机译:神经记录系统的基于小波的压缩

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The power consumption of implanted multichannel system is dominated by the wireless transmission and as such can be significantly reduced by using on-chip data compressor. This paper proposes a wavelet-based data compressor suitable for multichannel implanted neural recording systems implemented as a System-on-a-Chip (SoC). Proposed algorithm exploits energy compactness features of DWT and self similarity across different scales to classify neural recordings as spike and non spike areas. Resulting DWT coefficients after dead-zone scalar quantization are encoded with a novel dedicated entropy encoder optimized for a very low entropy condition. To reduce power dissipation of the chip we apply distributed arithmetic to implement DWT, which reduces number of multiplications down to zero.
机译:植入的多通道系统的功耗由无线传输主导,并且通过使用片上数据压缩机可以显着降低。本文提出了一种基于小波的数据压缩机,适用于实现作为芯片系统(SOC)的多通道植入的神经记录系统。所提出的算法利用不同尺度的DWT和自我相似性的能量紧凑性特征,将神经记录分类为尖峰和非峰值区域。导致死区标量化后的DWT系数用针对非常低的熵条件优化的新型专用熵编码器进行编码。为了降低芯片的功耗,我们将分布式算法应用于实现DWT,这将乘法数缩短为零。

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