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

机译:从光子受限的大气激光雷达观测中同时消噪,反向散射和消光的方法

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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. (C) 2016 Optical Society of America
机译:大气激光雷达观测提供了独特的功能,可以直接观测云的垂直列和气溶胶的散射特性。然而,探测器和太阳本底噪声阻碍了激光雷达系统提供可靠的反向散射和消光截面估计的能力。解决此反问题的标准方法对高信噪比的观测最为有效,而高信噪比的观测仅在低分辨率下才能在统一场景中使用。本文介绍了一种新方法,该方法可通过高分辨率,低信噪比观测值解决反问题,该方法在非均匀场景中有效。新颖性是双重的。首先,将反向散射和消光的推断应用于图像,而当前的激光雷达算法仅使用单个配置文件的信息内容。因此,噪声图像中的潜在空间和时间信息被用来推断横截面。其次,可以使用泊松分布对与光子计数激光雷达观测相关的噪声进行建模,并且用于解决泊松反问题的最新工具适用于大气激光雷达问题。通过光子计数高光谱分辨率激光雷达(HSRL)仿真证明,与标准方法相比,所提出的算法在较高的时空分辨率下可产生反向反向散射和消光截面(每单位体积),均方误差值更小。还提供了两个实际实验数据的案例研究,其中将所提出的算法应用于HSRL观测,并将反向散射和消光截面与标准方法进行了比较。 (C)2016美国眼镜学会

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