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A Scalable Wavelet Transform VLSI Architecture for Real-Time Signal Processing in High-Density Intra-Cortical Implants

机译:用于高密度皮层内植入物实时信号处理的可扩展小波变换VLSI架构

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This paper describes an area and power-efficient VLSI approach for implementing the discrete wavelet transform on streaming multielectrode neurophysiological data in real time. The VLSI implementation is based on the lifting scheme for wavelet computation using the symmlet4 basis with quantized coefficients and integer fixed-point data precision to minimize hardware demands. The proposed design is driven by the need to compress neural signals recorded with high-density microelectrode arrays implanted in the cortex prior to data telemetry. Our results indicate that signal integrity is not compromised by quantization down to 5-bit filter coefficient and 10-bit data precision at intermediate stages. Furthermore, results from analog simulation and modeling show that a hardware-minimized computational core executing filter steps sequentially is advantageous over the pipeline approach commonly used in DWT implementations. The design is compared to that of a B-spline approach that minimizes the number of multipliers at the expense of increasing the number of adders. The performance demonstrates that in vivo real-time DWT computation is feasible prior to data telemetry, permitting large savings in bandwidth requirements and communication costs given the severe limitations on size, energy consumption and power dissipation of an implantable device.
机译:本文描述了一种面积和功率效率极高的VLSI方法,用于实时对流式多电极神经生理学数据进行离散小波变换。 VLSI的实现基于使用symmlet4的小波计算的提升方案,具有量化系数和整数定点数据精度,以最大程度地降低硬件需求。由于在数据遥测之前需要压缩用植入皮质中的高密度微电极阵列记录的神经信号,因此提出了设计方案。我们的结果表明,在中间级低至5位​​滤波器系数和10位数据精度的量化不会损害信号完整性。此外,模拟仿真和建模的结果表明,顺序执行过滤器步骤的硬件最小化计算核心优于DWT实现中通常使用的流水线方法。该设计与B样条方法的设计进行了比较,后者以增加加法器数量为代价,将乘法器的数量减至最少。该性能表明,在进行数据遥测之前,体内实时DWT计算是可行的,考虑到可植入设备的尺寸,能耗和功耗的严格限制,可以大大节省带宽需求和通信成本。

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