Deconvolution of sparse spike trains accounting for wavelet phase shifts and colored noise

F. Champagnat, J. Idier, G. Demoment
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引用次数: 18

Abstract

The problem of the restoration of spiky sequences when the usual convolution model is corrupted by nonstationary wavelet phase-shifts is addressed. To this end, an extended convolution model driven by a Bernoulli-Gaussian (BG)-like process is introduced. This setting lends itself to easy extension of algorithms designed for BG deconvolution. A comparison of practical results obtained with this new method and BG deconvolution is provided. Numerical experiments indicate an increased robustness compared with standard BG methods.<>
考虑小波相移和彩色噪声的稀疏尖峰串的反卷积
研究了通常的卷积模型被非平稳小波相移破坏后的尖序列恢复问题。为此,引入了一种由类伯努利-高斯过程驱动的扩展卷积模型。这种设置使其易于扩展为BG反褶积设计的算法。并将该方法与BG反褶积的实际结果进行了比较。数值实验表明,与标准BG方法相比,该方法具有更强的鲁棒性。
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