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Adaptive Characterization of Jitter Noise in Sampled High-Speed Signals

机译:采样高速信号中抖动噪声的自适应表征

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摘要

We estimate the root-mean-square (RMS) value of timing jitter noise in simulated signals similar to measured high-speed sampled signals. The simulated signals are contaminated by additive noise, timing jitter noise, and time shift errors. Before estimating the RMS value of the jitter noise, we align the signals (unless there are no time shift errors) based on estimates of the relative shifts from cross-correlation analysis. We compute the mean and sample variance of the aligned signals based on repeated measurements at each time sample. We estimate the derivative of the noise-free signal based, in part, on a regression spline fit to the average of the aligned signals. Our initial estimate of the RMS value of the jitter noise depends on estimated derivatives and sample variances at time samples where the magnitude of the estimated derivative exceeds a selected threshold. This initial estimate is generally biased. Using a parametric bootstrap approach, we adaptively adjust this initial estimate of the RMS value of the jitter noise based on an estimate of this bias. We apply our method to real data collected at NIST. We study how results depend on the derivative threshold.
机译:我们估计模拟信号中与测量的高速采样信号相似的时序抖动噪声的均方根(RMS)值。模拟信号被附加噪声,定时抖动噪声和时移误差所污染。在估算抖动噪声的RMS值之前,我们根据互相关分析的相对偏移估算来对齐信号(除非没有时间偏移误差)。我们基于每个时间样本的重复测量来计算对齐信号的均值和样本方差。我们部分地基于拟合对齐信号平均值的回归样条估计无噪声信号的导数。我们对抖动噪声的RMS值的初始估计取决于估计的导数和时间样本中的样本方差,其中估计的导数的幅度超过选定的阈值。该初始估算通常存在偏差。使用参数自举方法,我们基于该偏差的估计值来自适应地调整抖动噪声RMS值的初始估计值。我们将我们的方法应用于NIST收集的真实数据。我们研究结果如何取决于导数阈值。

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