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Fitting instead of annihilation: Improved recovery of noisy FRI signals

机译:拟合而不是an没:改善了嘈杂的FRI信号的恢复

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Recently, classical sampling theory has been broadened to include a class of non-bandlimited signals that possess finite rate of innovation (FRI). In this paper we consider the reconstruction of a periodic stream of Diracs from noisy samples. We demonstrate that its noiseless FRI samples can be represented as a ratio of two polynomials. Using this structure as a model, we propose recovering the FRI signal using a model fitting approach rather than an annihilation method. We present an algorithm that fits this model to the noisy samples and demonstrate that it has low computation cost and is more reliable than two state-of-the-art methods.
机译:最近,经典采样理论已经扩展到包括一类具有有限创新率(FRI)的非带限信号。在本文中,我们考虑从噪声样本中重建狄拉克斯的周期性流。我们证明了它的无噪声FRI样本可以表示为两个多项式的比率。使用这种结构作为模型,我们建议使用模型拟合方法而不是an灭方法来恢复FRI信号。我们提出了一种适合该模型以适应噪声样本的算法,并证明了该算法具有较低的计算成本,并且比两种最新方法更可靠。

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