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Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations

Publication ,  Journal Article
Marais, WJ; Holz, RE; Hu, YH; Kuehn, RE; Eloranta, EE; Willett, RM
Published in: Applied Optics
October 10, 2016

Atmospheric lidar observations provide a unique capability to directly observe the vertical column of cloud and aerosol scattering properties. Detector and solar-background noise, however, hinder the ability of lidar systems to provide reliable backscatter and extinction cross-section estimates. Standard methods for solving this inverse problem are most effective with high signal-to-noise ratio observations that are only available at low resolution in uniform scenes. This paper describes a novel method for solving the inverse problem with high-resolution, lower signal-to-noise ratio observations that are effective in non-uniform scenes. The novelty is twofold. First, the inferences of the backscatter and extinction are applied to images, whereas current lidar algorithms only use the information content of single profiles. Hence, the latent spatial and temporal information in noisy images are utilized to infer the cross-sections. Second, the noise associated with photon-counting lidar observations can be modeled using a Poisson distribution, and state-of-the-art tools for solving Poisson inverse problems are adapted to the atmospheric lidar problem. It is demonstrated through photon-counting high spectral resolution lidar (HSRL) simulations that the proposed algorithm yields inverted backscatter and extinction cross-sections (per unit volume) with smaller mean squared error values at higher spatial and temporal resolutions, compared to the standard approach. Two case studies of real experimental data are also provided where the proposed algorithm is applied on HSRL observations and the inverted backscatter and extinction cross-sections are compared against the standard approach.

Published In

Applied Optics

DOI

EISSN

2155-3165

ISSN

1559-128X

Publication Date

October 10, 2016

Volume

55

Issue

29

Start / End Page

8316 / 8334

Related Subject Headings

  • Optics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics
 

Citation

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Marais, W. J., Holz, R. E., Hu, Y. H., Kuehn, R. E., Eloranta, E. E., & Willett, R. M. (2016). Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations. Applied Optics, 55(29), 8316–8334. https://doi.org/10.1364/AO.55.008316
Marais, W. J., R. E. Holz, Y. H. Hu, R. E. Kuehn, E. E. Eloranta, and R. M. Willett. “Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations.” Applied Optics 55, no. 29 (October 10, 2016): 8316–34. https://doi.org/10.1364/AO.55.008316.
Marais WJ, Holz RE, Hu YH, Kuehn RE, Eloranta EE, Willett RM. Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations. Applied Optics. 2016 Oct 10;55(29):8316–34.
Marais, W. J., et al. “Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations.” Applied Optics, vol. 55, no. 29, Oct. 2016, pp. 8316–34. Scopus, doi:10.1364/AO.55.008316.
Marais WJ, Holz RE, Hu YH, Kuehn RE, Eloranta EE, Willett RM. Approach to simultaneously denoise and invert backscatter and extinction from photon-limited atmospheric lidar observations. Applied Optics. 2016 Oct 10;55(29):8316–8334.
Journal cover image

Published In

Applied Optics

DOI

EISSN

2155-3165

ISSN

1559-128X

Publication Date

October 10, 2016

Volume

55

Issue

29

Start / End Page

8316 / 8334

Related Subject Headings

  • Optics
  • 5102 Atomic, molecular and optical physics
  • 4008 Electrical engineering
  • 0913 Mechanical Engineering
  • 0906 Electrical and Electronic Engineering
  • 0205 Optical Physics