Mismatched estimation of non-symmetric rank-one matrices corrupted by structured noise
Fu T, Liu Y, Barbier J, Mondelli M, Liang S, Hou T. 2023. Mismatched estimation of non-symmetric rank-one matrices corrupted by structured noise. Proceedings of 2023 IEEE International Symposium on Information Theory. ISIT: IEEE International Symposium on Information Theory, 1178–1183.
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https://doi.org/10.48550/arXiv.2302.03306
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Conference Paper
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Author
Fu, Teng;
Liu, YuHao;
Barbier, Jean;
Mondelli, MarcoISTA ;
Liang, ShanSuo;
Hou, TianQi
Corresponding author has ISTA affiliation
Department
Abstract
We study the performance of a Bayesian statistician who estimates a rank-one signal corrupted by non-symmetric rotationally invariant noise with a generic distribution of singular values. As the signal-to-noise ratio and the noise structure are unknown, a Gaussian setup is incorrectly assumed. We derive the exact analytic expression for the error of the mismatched Bayes estimator and also provide the analysis of an approximate message passing (AMP) algorithm. The first result exploits the asymptotic behavior of spherical integrals for rectangular matrices and of low-rank matrix perturbations; the second one relies on the design and analysis of an auxiliary AMP. The numerical experiments show that there is a performance gap between the AMP and Bayes estimators, which is due to the incorrect estimation of the signal norm.
Publishing Year
Date Published
2023-06-30
Proceedings Title
Proceedings of 2023 IEEE International Symposium on Information Theory
Publisher
IEEE
Page
1178-1183
Conference
ISIT: IEEE International Symposium on Information Theory
Conference Location
Taipei, Taiwan
Conference Date
2023-06-25 – 2023-06-30
ISBN
eISSN
IST-REx-ID
Cite this
Fu T, Liu Y, Barbier J, Mondelli M, Liang S, Hou T. Mismatched estimation of non-symmetric rank-one matrices corrupted by structured noise. In: Proceedings of 2023 IEEE International Symposium on Information Theory. IEEE; 2023:1178-1183. doi:10.1109/isit54713.2023.10206671
Fu, T., Liu, Y., Barbier, J., Mondelli, M., Liang, S., & Hou, T. (2023). Mismatched estimation of non-symmetric rank-one matrices corrupted by structured noise. In Proceedings of 2023 IEEE International Symposium on Information Theory (pp. 1178–1183). Taipei, Taiwan: IEEE. https://doi.org/10.1109/isit54713.2023.10206671
Fu, Teng, YuHao Liu, Jean Barbier, Marco Mondelli, ShanSuo Liang, and TianQi Hou. “Mismatched Estimation of Non-Symmetric Rank-One Matrices Corrupted by Structured Noise.” In Proceedings of 2023 IEEE International Symposium on Information Theory, 1178–83. IEEE, 2023. https://doi.org/10.1109/isit54713.2023.10206671.
T. Fu, Y. Liu, J. Barbier, M. Mondelli, S. Liang, and T. Hou, “Mismatched estimation of non-symmetric rank-one matrices corrupted by structured noise,” in Proceedings of 2023 IEEE International Symposium on Information Theory, Taipei, Taiwan, 2023, pp. 1178–1183.
Fu T, Liu Y, Barbier J, Mondelli M, Liang S, Hou T. 2023. Mismatched estimation of non-symmetric rank-one matrices corrupted by structured noise. Proceedings of 2023 IEEE International Symposium on Information Theory. ISIT: IEEE International Symposium on Information Theory, 1178–1183.
Fu, Teng, et al. “Mismatched Estimation of Non-Symmetric Rank-One Matrices Corrupted by Structured Noise.” Proceedings of 2023 IEEE International Symposium on Information Theory, IEEE, 2023, pp. 1178–83, doi:10.1109/isit54713.2023.10206671.
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arXiv 2302.03306