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Simulation and Modeling of Return Waveforms from a Ladar Beam Footprint in USU LadarSIM

机译:在USU LadarSIM中从激光束足迹返回波形的仿真和建模

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摘要

Ladar systems are an emerging technology with applications in many fields. Consequently, simulations for these systems have become a valuable tool in the improvement of existing systems and the development of new ones. This paper discusses the theory and issues involved in reliably modeling the return waveform of a ladar beam footprint in the Utah State University LadarSIM simulation software. Emphasis is placed on modeling system-level effects that allow an investigation of engineering tradeoffs in preliminary designs, and validation of behaviors in fabricated designs. Efforts have been made to decrease the necessary computation time while still maintaining a usable model. A full waveform simulation is implemented that models optical signals received on detector followed by electronic signals and discriminators commonly encountered in contemporary direct-detection ladar systems. Waveforms are modeled using a novel hexagonal sampling process applied across the ladar beam footprint. Each sample is weighted using a Gaussian spatial profile for a well formed laser footprint. Model fidelity is also improved by using a bidirectional reflectance distribution function (BRDF) for target reflectance. Once photons are converted to electrons, waveform processing is used to detect first, last or multiple return pulses. The detection methods discussed in this paper are a threshold detection method, a constant fraction method, and a derivative zero-crossing method. Various detection phenomena, such as range error, walk error, drop outs and false alarms, can be studied using these detection methods.
机译:激光雷达系统是一种新兴技术,在许多领域都有应用。因此,这些系统的仿真已成为改进现有系统和开发新系统的宝贵工具。本文讨论了在犹他州立大学LadarSIM仿真软件中可靠地建模激光束足迹的返回波形的理论和问题。重点放在建模系统级效果上,该效果允许调查初步设计中的工程折衷,并验证装配式设计中的行为。已努力减少必要的计算时间,同时仍保持可用的模型。实施了完整的波形仿真,该模型对在检测器上接收到的光信号进行建模,然后对在现代直接检测激光系统中常见的电子信号和鉴别器进行建模。使用跨激光束覆盖区应用的新型六边形采样过程对波形建模。使用高斯空间轮廓对每个样品进行加权,以获得良好形成的激光足迹。通过将双向反射率分布函数(BRDF)用于目标反射率,还可以提高模型保真度。一旦将光子转换为电子,就可以使用波形处理来检测第一个,最后一个或多个返回脉冲。本文讨论的检测方法是阈值检测方法,恒定分数方法和导数过零方法。可以使用这些检测方法来研究各种检测现象,例如距离错误,步行错误,掉落和错误警报。

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