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Automated polarization-discrimination technique to minimize lidar-detected skylight background noise

机译:自动化偏振辨别技术,以最小化激光雷达检测到的天窗背景噪声

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Recently, there has been significant interest in lidar signal-to-noise ratio (SNR) improvements, particularly for lidar daytime operations. Previously, we devised in the remote sensing laboratory at the City College of New York a polarization discrimination technique to maximize lidar detected SNR taking advantage of the natural polarization properties of scattered skylight radiation to track and minimize detected sky background signal (BGS). This tracking technique was achieved by rotating, manually, a combination of polarizer and analyzer on both the lidar transmitter and receiver subsystems, respectively. The polarization orientation at which the minimum BGS occurs, follows the solar azimuth angle, even for high aerosol loading. This has been confirmed, in our previous work, both theoretically, assuming single scattering theory, and experimentally. In this paper, a design to automate the polarization discrimination technique by real time tracking of the azimuth angle to attain the minimum BGS is presented. We introduce a feedback control system to track the minimum BGS by rotating the detector analyzer and the transmission polarizer simultaneously to maximize the SNR and attainable lidar ranges, thus achieving the same results as would be done manually. Analytical results for New York City are summarized and an approach for applying the proposed design globally is investigated.
机译:最近,LIDAR信噪比(SNR)改进具有显着兴趣,特别是对于LIDAR日间操作。此前,我们设计在纽约市遥感实验室的偏光辨别技术中,以最大化激光雷达检测到的SNR,利用散射天窗辐射的自然偏振特性来追踪和最小化检测到的天空背景信号(BGS)。该跟踪技术通过分别在LIDAR发射器和接收器子系统上的偏振器和分析器的组合来实现。即使用于高气溶胶载荷,也遵循太阳能方位角的最小BGS的偏振取向。在我们以前的工作中,这已经证实,假设单一散射理论和实验。本文介绍了一种通过实时跟踪自动化偏振辨别技术的设计,以实现达到最小BGS的方位角。我们介绍一种反馈控制系统来通过同时旋转检测器分析器和传输偏振器来跟踪最小BGS以最大化SNR和可达到的LIDAR范围,从而实现与手动完成相同的结果。纽约市的分析结果总结了,并调查了全球拟议设计的应用方法。

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