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Optimization of linear signal processing in photon counting lidar using Poisson thinning

机译:使用泊松减薄计算LIDAR的光子线性信号处理优化

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Photon counting lidar signals generally require smoothing to suppress random noise. While the process of reducing the resolution of the profile reduces random errors, it can also create systematic errors due to the smearing of high gradient signals. The balance between random and systematic errors is generally scene dependent and difficult to find, because errors caused by blurring are generally not analytically quantified. In this work, we introduce the use of Poisson thinning, which allows optimal selection of filter parameters for a particular scene based on quantitative evaluation criteria. Implementation of the optimization step is relatively simple and computationally inexpensive for most photon counting lidar processing. (C) 2020 Optical Society of America
机译:光子计数LIDAR信号通常需要平滑以抑制随机噪声。 虽然减少了轮廓分辨率的过程减少了随机误差,但由于高梯度信号的涂抹,它也可以创建系统误差。 随机和系统误差之间的平衡通常是依赖的场景且难以找到的,因为通常没有模糊引起的错误通常没有分析量化。 在这项工作中,我们介绍了泊松变薄的使用,这允许基于定量评估标准对特定场景进行最佳选择。 对于大多数光子计数LIDAR处理来实现优化步骤的实现相对简单和计算地廉价。 (c)2020美国光学学会

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