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首页> 外文期刊>IEEE Transactions on Information Theory >Universal Denoising of Discrete-Time Continuous-Amplitude Signals
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Universal Denoising of Discrete-Time Continuous-Amplitude Signals

机译:离散时间连续幅度信号的通用去噪

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摘要

We consider the problem of reconstructing a discrete-time signal (sequence) with continuous-valued components corrupted by a known memoryless channel. When performance is measured using a per-symbol loss function satisfying mild regularity conditions, we develop a sequence of denoisers that, although independent of the distribution of the underlying “clean” sequence, is universally optimal in the limit of large sequence length. This sequence of denoisers is universal in the sense of performing as well as any sliding-window denoising scheme which may be optimized for the underlying clean signal. Our results are initially developed in a “semi-stochastic” setting, where the noiseless signal is an unknown individual sequence, and the only source of randomness is due to the channel noise. It is subsequently shown that in the fully stochastic setting, where the noiseless sequence is a stationary stochastic process, our schemes universally attain optimum performance. The proposed schemes draw from nonparametric density estimation techniques and are practically implementable. We demonstrate efficacy of the proposed schemes in denoising Gray-scale images in the conventional additive white Gaussian noise (AWGN) setting, with additional promising results for less conventional noise distributions.
机译:我们考虑重建一个离散时间信号(序列)的问题,该信号具有被已知的无记忆通道破坏的连续值分量。当使用满足轻度规律性条件的每个符号损失函数来衡量性能时,我们开发了一系列降噪器,尽管它们独立于底层“干净”序列的分布,但在大序列长度的限制中普遍是最佳的。该降噪器序列在执行以及任何可针对底层清洁信号进行优化的滑动窗口降噪方案的意义上是通用的。我们的结果最初是在“半随机”设置中开发的,其中无噪声信号是未知的单个序列,而唯一的随机性源是由于信道噪声引起的。随后表明,在完全随机的环境中,其中无噪声序列是平稳的随机过程,我们的方案普遍获得了最佳性能。所提出的方案来自非参数密度估计技术,并且实际上是可实施的。我们证明了在传统的加性白高斯噪声(AWGN)设置中提出的方案在对灰度图像进行降噪方面的功效,以及针对不太常规的噪声分布的其他有希望的结果。

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