2D signal estimation for sparse distributed target photon counting data

In this study, we explore the utilization of penalized likelihood estimation for the analysis of sparse photon counting data obtained from distributed target lidar systems. Specifically, we adapt the Poisson Total Variation processing technique to cater to this application. By assuming a Poisson noise model for the photon count observations, our approach yields denoised estimates of backscatter photon flux and related parameters. This facilitates the processing of raw photon counting signals with exceptionally high temporal and range resolutions (demonstrated here to 50 Hz and 75 cm resolutions), including data acquired through time-correlated single photon counting, without significant sacrifice of resolution. Through examination involving both simulated and real-world 2D atmospheric data, our method consistently demonstrates superior accuracy in signal recovery compared to the conventional histogram-based approach commonly employed in distributed target lidar applications.

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Author Hayman, Matthew
Stillwell, Robert A.
Carnes, Joshua
Kirchhoff, G. J.
Spuler, Scott M.
Thayer, J. P.
Publisher UCAR/NCAR - Library
Publication Date 2024-05-06T00:00:00
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Topic Category geoscientificInformation
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Metadata Date 2025-07-10T20:02:16.910300
Metadata Record Identifier edu.ucar.opensky::articles:27333
Metadata Language eng; USA
Suggested Citation Hayman, Matthew, Stillwell, Robert A., Carnes, Joshua, Kirchhoff, G. J., Spuler, Scott M., Thayer, J. P.. (2024). 2D signal estimation for sparse distributed target photon counting data. UCAR/NCAR - Library. https://n2t.org/ark:/85065/d7zs31r5. Accessed 11 August 2025.

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