Direct Digital Wavelet Synthesis for Embedded Biomedical Microsystems

Lieuwe B. Leene, T. Constandinou
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Abstract

This paper presents a compact direct digital wavelet synthesizer for extracting phase and amplitude data from cortical recordings using a feed-forward recurrent digital oscillator. These measurements are essential for accurately decoding local-field - potentials in selected frequency bands. Current systems extensively to rely large digital cores to efficiently perform Fourier or wavelet transforms which is not viable for many implants. The proposed system dynamically controls oscillation to generate frequency selective quadrature wavelets instead of using memory intensive sinusoid/cordic look-up-tables while retaining robust digital operation. A MachXO3LF Lattice FPGA is used to present the results for a 16 bit implementation. This configuration requires 401 registers combined with 283 logic elements and also accommodates real-time reconfigurability to allow ultra-low-power sensors to perform spectroscopy with high-fidelity.
嵌入式生物医学微系统的直接数字小波合成
本文提出了一种紧凑的直接数字小波合成器,用于使用前馈循环数字振荡器从皮质记录中提取相位和幅度数据。这些测量对于准确解码选定频段的局部场电位是必不可少的。目前的系统广泛依赖大型数字核来有效地执行傅里叶或小波变换,这对于许多植入物来说是不可行的。该系统动态控制振荡产生频率选择性正交小波,而不是使用内存密集型的正弦/正弦查找表,同时保持稳健的数字操作。一个MachXO3LF晶格FPGA被用来呈现16位实现的结果。这种配置需要401个寄存器与283个逻辑元件相结合,并且还适应实时可重构性,以允许超低功耗传感器以高保真度执行光谱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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