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Space/spatial-frequency analysis based filtering

机译:基于空间/空间频率分析的滤波

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摘要

Space-invariant filtering of signals that overlap with noise in both space and frequency can be inefficient. However, the signal and noise may be well separated in the joint space/spatial-frequency domain. Then, it is possible to benefit from the application of space/spatial frequency approaches. Processing based on these approaches can outperform space or frequency invariant-based methods. To this aim the concept of nonstationary space-varying filtering is introduced in this paper as an extension of the time-varying filtering concept. The filtering definitions are based on statistical averages, although the filtering should commonly be applied knowing only a single noisy signal realization. The procedures that can produce good estimates of quantities crucial for efficient filtering, based on a single noisy signal realization, are considered. Special attention has been paid to the region of support estimation and cross-term effects removal. The efficiency of the proposed space/spatial-frequency filtering concept is tested on the signal forms inspired by the interferograms in optics, including real images as disturbances. Examples demonstrate the superiority of the proposed filtering over the space-invariant one for the considered type of signals and noise.
机译:对在空间和频率上均与噪声重叠的信号进行空间不变滤波可能效率不高。但是,信号和噪声在联合空间/空间频域中可能会很好地分开。这样,就有可能受益于空间/空间频率方法的应用。基于这些方法的处理可以胜过基于空间或频率不变性的方法。为此,本文引入了非平稳时变滤波的概念,作为时变滤波概念的扩展。滤波定义基于统计平均值,尽管通常应仅在知道单个噪声信号实现的情况下应用滤波。考虑了可以基于单个噪声信号实现来产生对有效滤波至关重要的数量的良好估计的过程。已经特别注意了支持估算和去除跨期影响的区域。所提出的空间/空间频率滤波概念的效率在光学干涉图激发的信号形式上进行了测试,其中包括作为干扰的真实图像。实例证明,对于所考虑的信号和噪声类型,建议的滤波优于空间不变的滤波。

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