Abstract
AbstractResolution probability is the most important indicator for signal parameter estimator, including estimating time delay, and joint Doppler shift and time delay. In order to get high-resolution probability, some procedures have been suggested such as compressed sensing. Based on the signal’s sparsity, compressed sensing has been used to estimate signal parameters in recent research. After solving ℓ0 norm Optimization problem, the methods would achieve high resolution. These methods all require high SNR. In order to improve the performance in low SNR, a novel implementation is proposed in this paper. We give a sparsity representation for the generalized matched filter output, or ambiguity function, while the former methods utilized the sparsity representation for channel response in time domain. By deconvolving the generalized matched filter output, 2-dimension estimation for Doppler shift and time delay would be gotten by greedy method, optimization method based on relaxation, or Bayesian method. Simulation demonstrates our method has better performance in low SNR than the method by the channel sparsity representation.
Funder
Youth Innovation Promotion Association of the Chinese Academy of Sciences
Publisher
Springer Science and Business Media LLC
Reference23 articles.
1. S. F. Cotter, B. D. Rao, Sparse channel estimation via matching pursuit with application to equalization. IEEE Trans. Commun.50:, 374–377 (2002).
2. G. Z. Karabulut, A. Yongacoglu, in Proceedings of IEEE Vehicular Technology Conference. Sparse channel estimation using orthogonal matching pursuit algorithm, (2004).
3. C. R. Berger, Sparse channel estimation for multicarrier underwater acoustic communication: from subspace methods to compressed sensin. IEEE Trans. Signal Process.58:, 1708–1721 (2010).
4. C. Zheng, G. Li, Liu Y., Subspace weighted 2,1 minimization for sparse signal recovery. EURASIP J. Adv. Signal Process.98:, 1–11 (2012).
5. L. Yan, P. Addabbo, C. Hao, D. Orlando, A. Farina, New ECCM techniques against noise-like and/or coherent interferers. IEEE Trans. Aerosp. Electron. Syst.56(2), 1172–1188 (2020).
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