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Sampling of Time-Resolved Full-Waveform LIDAR Signals at Sub-Nyquist Rates

机译:次奈奎斯特速率下的时间分辨全波形激光雷达信号采样

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Third-generation full-waveform (FW) light detection and ranging (LIDAR) systems collect time-resolved 1-D signals generated by laser pulses reflected off of intercepted objects. From these signals, scene depth profiles along each pulse path can be readily constructed. By emitting a series of pulses toward a scene using a predefined scanning pattern and with the appropriate sampling and processing, an image-like depth map can be generated. Unfortunately, massive amounts of data are typically acquired to achieve acceptable depth and spatial resolutions. The sampling systems acquiring this data, however, seldom take into account the underlying low-dimensional structure generally present in FW signals and, consequently, they sample very inefficiently. Our main goal and focus here is to develop efficient sampling models and processes to collect individual time-resolved FW LIDAR signals. Specifically, we study sub-Nyquist sampling of the continuous-time LIDAR FW reflected pulses, considering two different sampling mechanisms: 1) modeling FW signals as short-duration pulses with multiple band-limited echoes; and 2) modeling them as signals with finite rates of innovation.
机译:第三代全波形(FW)光检测和测距(LIDAR)系统收集时间分辨的一维信号,该信号是由被拦截物体反射回来的激光脉冲产生的。根据这些信号,可以轻松构建沿每个脉冲路径的景深轮廓。通过使用预定义的扫描模式以及适当的采样和处理向场景发射一系列脉冲,可以生成类似图像的深度图。不幸的是,通常需要获取大量数据才能达到可接受的深度和空间分辨率。但是,获取此数据的采样系统很少考虑到FW信号中通常存在的底层低维结构,因此它们的采样效率非常低。我们这里的主要目标和重点是开发有效的采样模型和过程,以收集单独的时间分辨的FW LIDAR信号。具体来说,我们研究连续时间激光雷达FW反射脉冲的亚奈奎斯特采样,考虑两种不同的采样机制:1)将FW信号建模为具有多个带限回波的短时脉冲; 2)将其建模为具有有限创新率的信号。

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