基于小波的自适应信号去抖

N. Testoni, N. Speciale, A. Ridolfi, C. Pouzat
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引用次数: 3

摘要

在任何混合信号系统中,采样通常都是一个关键步骤。高速模数转换器的采样抖动限制了这些系统的整体性能,在采样信号中引入了信号相关噪声。在大多数环境中,减少采样时钟抖动是可取的,但是在某些情况下,设计者被迫引入或处理这种不希望的噪声效应。这项工作描述了一种基于多分辨率分析(MRA)的创新算法,该算法允许在时钟抖动不可避免的环境中恢复原始的无抖动采样信号。我们利用了一种新的通用信号模型和小波域的均方差估计,从而产生了一种以完全可预计算的重标矩阵为中心的自适应小波重标技术。该技术已成功地应用于其他领域,如细胞外记录(ER)信号去噪,因为它可以显示这个问题可以重新表述为信号抖动问题。
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Adaptive wavelet-based signal dejittering
Sampling is commonly retained as a critical step in any mixed-signal system. High-speed analog-to-digital converter sampling jitter limits all-over performance of these systems introducing a signal dependent noise in the sampled signal. In most environments it is desirable to reduce sampling clock jitter, however there are cases where designers are forced to introduce or cope with this undesirable noise effect. This work describes an innovative algorithm based on multiresolution analysis (MRA) which allows for the recovery of the original unjittered sampled signal in environments where clock jitter is unavoidable. We make use of a new versatile signal model and an MSE estimation in the wavelet domain which lead to an adaptive wavelet rescaling technique centered around a fully precalculable rescaling matrix. This technique has been successfully applied to other fields, like extracellular recording (ER) signal denoising, since it can be shown this problem can be reformulated into a signal dejittering problem.
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