用于减轻技术干扰的δ - σ模数转换器中的非线性基于秩的模拟环路滤波器

A. V. Nikitin, R. Davidchack
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引用次数: 5

摘要

由于在任何给定频率下,线性滤波器对噪声和感兴趣信号的影响都是成比例的,所以当线性滤波器用于抑制感兴趣通带外的干扰时,所得到的信号质量仅受总功率和频谱组成的影响,而不受干扰信号的幅度分布类型的影响。因此,无论噪声类型如何,线性滤波器都不能提高通带信噪比。另一方面,非线性滤波器具有不成比例地影响具有不同时间和/或振幅结构的信号的能力,并且它可以降低信号通带中非高斯干扰的频谱密度,而不会显着影响感兴趣的信号。因此,信号质量可以得到比线性滤波器所能达到的更好的改善。这种非高斯噪声(尤其是脉冲噪声)可能来自多种自然和人为现象。具体来说,技术噪声是影响通信和数据采集系统的一种普遍存在且日益增长的有害干扰源,并且这种噪声可能超过热噪声。虽然技术噪声的非高斯性质为非线性滤波提供了有效缓解的机会,但目前最先进的方法在模数转换后在数字领域采用这种滤波。在这种转换过程中,信号带宽被减小,这大大降低了后续降噪技术的有效性。在本文中,我们关注脉冲噪声抑制,并提出将模拟输入信号的脉冲噪声滤波纳入ΔΣ模数转换器(adc)的环路滤波器中。因此,这种adc将模数转换与模拟非线性秩滤波相结合,能够减轻各种类型的带内非高斯噪声和干扰,包括宽带脉冲干扰。所提出的方法的一个重要性质是,虽然一般来说是非线性的,但所提出的adc在很大程度上是线性的。它们仅间歇性地表现出非线性行为,以响应噪声异常值,从而避免了通常与非线性信号处理相关的有害影响,例如不稳定性和互调失真。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nonlinear rank-based analog loop filters in delta-sigma analog-to-digital converters for mitigation of technogenic interference
Since at any given frequency a linear filter affects both the noise and the signal of interest proportionally, when a linear filter is used to suppress the interference outside of the passband of interest the resulting signal quality is affected only by the total power and spectral composition, but not by the type of the amplitude distribution of the interfering signal. Thus a linear filter cannot improve the passband signal-to-noise ratio, regardless of the type of noise. On the other hand, a nonlinear filter has the ability to disproportionately affect signals with different temporal and/or amplitude structures, and it may reduce the spectral density of non-Gaussian interferences in the signal passband without significantly affecting the signal of interest. As a result, the signal quality can be improved in excess of that achievable by a linear filter. Such non-Gaussian (and, in particular, impulsive) noise can originate from a multitude of natural and technogenic (man-made) phenomena. The technogenic noise specifically is a ubiquitous and growing source of harmful interference affecting communication and data acquisition systems, and such noise may dominate over the thermal noise. While the non-Gaussian nature of technogenic noise provides an opportunity for its effective mitigation by nonlinear filtering, current state-of-the-art approaches employ such filtering in the digital domain, after analog-to-digital conversion. In the process of such conversion, the signal bandwidth is reduced, which substantially diminishes the effectiveness of the subsequent noise removal techniques. In this paper, we focus on impulsive noise mitigation, and propose to incorporate impulsive noise filtering of the analog input signal into loop filters of ΔΣ analog-to-digital converters (ADCs). Such ADCs thus combine analog-to-digital conversion with analog nonlinear rank filtering, enabling mitigation of various types of in-band non-Gaussian noise and interference, including broadband impulsive interference. An important property of the presented approach is that, while being nonlinear in general, the proposed ADCs largely behave linearly. They exhibit nonlinear behavior only intermittently, in response to noise outliers, thus avoiding the detrimental effects, such as instabilities and intermodulation distortions, often associated with nonlinear signal processing.
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