An Improved Toeplitz Approximation Method for Coherent DOA Estimation in Impulsive Noise Environments
Abstract
:1. Introduction
2. Preliminaries
2.1. Signal Model of Coherent DOA Estimation
2.2. α-Stable Distribution Noise Model
3. Methodology
3.1. CEGC
3.2. Proposed Method
- Step 1:
- Use the array received signal matrix (6) as input to construct the pseudo-covariance matrix, based on (20) and (21).
- Step 2:
- Perform Toeplitz approximation on based on (22) and (23) to construct a Toeplitz matrix, .
- Step 3:
- Construct a modified matrix, based on (24).
- Step 4:
- Perform the EVD of to obtain the eigenvectors, , corresponding to the noise subspace.
- Step 5:
- Calculate the spatial spectrum function (26) and search K largest peaks to estimate the DOA of coherent sources.
4. Simulation
4.1. Spatial Spectrums Comparison
4.2. Experiment Results vs. GSNRs
4.3. Experiment Results vs. Characteristic Exponents α
4.4. Experiment Results vs. Number of Snapshots
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Data Availability Statement
Conflicts of Interest
References
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Simulations | DOA (Degree) | GSNR (dB) | α | Number of Snapshots |
---|---|---|---|---|
4.1 | 0 | 1.3 | 500 | |
4.2 | 1.3 | 500 | ||
4.3 | 0 | 500 | ||
4.4 | 0 | 1.3 |
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Dai, J.; Qiu, T.; Luan, S.; Tian, Q.; Zhang, J. An Improved Toeplitz Approximation Method for Coherent DOA Estimation in Impulsive Noise Environments. Entropy 2023, 25, 960. https://doi.org/10.3390/e25060960
Dai J, Qiu T, Luan S, Tian Q, Zhang J. An Improved Toeplitz Approximation Method for Coherent DOA Estimation in Impulsive Noise Environments. Entropy. 2023; 25(6):960. https://doi.org/10.3390/e25060960
Chicago/Turabian StyleDai, Jiang’an, Tianshuang Qiu, Shengyang Luan, Quan Tian, and Jiacheng Zhang. 2023. "An Improved Toeplitz Approximation Method for Coherent DOA Estimation in Impulsive Noise Environments" Entropy 25, no. 6: 960. https://doi.org/10.3390/e25060960