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Analog VLSI Implementations of Auditory Wavelet Transforms Using Switched-Capacitor Circuits

机译:使用开关电容器电路的听觉小波变换的模拟VLSI实现

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摘要

A general scheme for the VLSI implementation of auditory wavelet transforms is proposed using switched-capacitor (SC) circuits. SC circuits are well suited for this application since the dilation constant across different scales of the transform can be precisely implemented and controlled by both capacitor ratios and the clock frequency. The hardware implementations are made possible by several new circuit designs. Specifically, extremely area-efficient designs are presented to implement very large time-constant filters such as those used to process speech and other acoustic signals. the designs employ a new charge differencing technique to reduce significantly the capacitance spread ratios needed in the filter banks. Also, a new sum-gain amplifier (SGA-SI) is designed which permits several inputs to be sampled with the same phase. The proposed circuits have been fabricated using a 1 m CMOS double-poly process. Preliminary data and performance measures of the circuits are very encouraging and are presented. Two possible architectures for implementing the wavelet transform are discussed and compared: parallel and cascade filter banks. Responses of both filter banks are simulated using SWITCAP-II. Finally, we shall also briefly discuss the utility, from an implementation point of view, of decomposing the transfer functions of the filter banks into rational form using a recently-developed wavelet system (WS) technique.
机译:使用开关电容器(SC)电路提出了听觉小波变换的VLSI实现的通用方案。 SC电路非常适合此应用,因为可以通过电容器比率和时钟频率两者精确地实现和控制跨变换不同尺度的膨胀常数。几种新的电路设计使硬件实现成为可能。具体而言,提出了面积效率极高的设计,以实现非常大的时间常数滤波器,例如用于处理语音和其他声音信号的滤波器。该设计采用了一种新的电荷差分技术,以显着降低滤波器组所需的电容扩展比。另外,设计了一种新的总和增益放大器(SGA-SI),该放大器允许以相同的相位对多个输入进行采样。所提出的电路已使用1 m CMOS双多晶硅工艺制造。电路的初步数据和性能指标令人鼓舞,并已提出。讨论并比较了两种实现小波变换的可能架构:并行和级联滤波器组。使用SWITCAP-II模拟两个滤波器组的响应。最后,我们还将从实现的角度简要讨论使用最新开发的小波系统(WS)技术将滤波器组的传递函数分解为合理形式的效用。

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