Estimation of fluctuating power spectral density across a sensor array
Pahalson, Cornelius A.D. and Weiss, Stephan and Clarke, Timothy and Deeks, Julian L. and Williams, Duncan P.; Thalmayer, Angelika S. and Lubke, Maximilian, eds. (2025) Estimation of fluctuating power spectral density across a sensor array. In: WSA 2025 - Proceedings of the 28th International Workshop on Smart Antennas. WSA 2025 - Proceedings of the 28th International Workshop on Smart Antennas . IEEE, DEU, pp. 7-12. ISBN 9798350392685 (https://doi.org/10.1109/WSA65299.2025.11202804)
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Abstract
In this paper, we address the challenge of estimating the power spectral density of noise tied to a single source measured at an array of sensors. The purpose is to identify windows of opportunity when the noise possesses sufficiently low power to potentially observe weaker signals in the environment. The scenario is formulated via basis expansion models, which then define the time-varying ground truth power spectral densities. We compare this to a number of estimation methods based on data. This includes an averaged periodogram — the Welch method — as a baseline. We also apply a space-time covariance matrix estimation approach, where the matrix is perturbed since the estimate is based on finite data; a first advantage of this method is achieved by optimally limiting the lag support based on a recently proposed method; a second advantage is gained by performing a rank one approximation via an analytic eigenvalue decomposition. We discuss some of the relevant theoretical background, and demonstrate in examples and simulations how the number of sensors and some of the parameters of the basis expansion model influence the results.
ORCID iDs
Pahalson, Cornelius A.D., Weiss, Stephan
ORCID: https://orcid.org/0000-0002-3486-7206, Clarke, Timothy, Deeks, Julian L. and Williams, Duncan P.;
Thalmayer, Angelika S. and Lubke, Maximilian
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Item type: Book Section ID code: 93744 Dates: DateEvent24 October 2025Published18 August 2025AcceptedSubjects: Technology > Electrical engineering. Electronics Nuclear engineering
Technology > Electrical engineering. Electronics Nuclear engineering > TelecommunicationDepartment: Faculty of Engineering > Electronic and Electrical Engineering
Technology and Innovation Centre > Sensors and Asset ManagementDepositing user: Pure Administrator Date deposited: 07 Aug 2025 14:29 Last modified: 10 Aug 2026 07:44 Related URLs: URI: https://strathprints.strath.ac.uk/id/eprint/93744
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