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Ultrawideband coherent noise lidar range-Doppler imaging and signal processing by use of spatial-spectral holography in inhomogeneously broadened absorbers

机译:超宽带相干噪声激光雷达范围-在不均匀加宽的吸收器中使用空间光谱全息术进行多普勒成像和信号处理

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摘要

We introduce a new approach to coherent lidar range-Doppler sensing by utilizing random-noise illuminating waveforms and a quantum-optical, parallel sensor based on spatial-spectral holography (SSH) in a cryogenically cooled inhomogeneously broadened absorber (IBA) crystal. Interference between a reference signal and the lidar return in the spectrally selective absorption band of the IBA is used to sense the lidar returns and perform the front-end range-correlation signal processing. Modulating the reference by an array of Doppler compensating frequency shifts enables multichannel Doppler filtering. This SSH sensor performs much of the postdetection signal processing, increases the lidar system sensitivity through range-correlation gain before detection, and is capable of not only Doppler processing but also parallel multibeam reception using the high-spatial resolution of the IBA crystals. This approach permits the use of ultrawideband, high-power, random-noise, cw lasers as ranging waveforms in lidar systems instead of highly stabilized, injection-seeded, and amplified pulsed or modulated laser sources as required by most conventional coherent lidar systems. The capabilities of the IBA media for many tens of gigahertz bandwidth and resolution in the 30-300 kHz regime, while using either a pseudo-noise-coded waveform or just a high-power, noisy laser with a broad linewidth (e.g., a truly random noise lidar) may enable a new generation of improved lidar sensors and processors. Preliminary experimental demonstrations of lidar ranging and simulation on range-Doppler processing are presented.
机译:我们引入了一种新的相干激光雷达距离多普勒传感方法,该方法利用了在低温冷却的非均匀加宽吸收体(IBA)晶体中利用随机噪声照明波形和基于空间光谱全息(SSH)的量子光学并行传感器。 IBA的光谱选择吸收带中的参考信号和激光雷达返回信号之间的干扰用于感应激光雷达返回信号并执行前端范围相关信号处理。通过多普勒补偿频移阵列调制参考,可以进行多通道多普勒滤波。该SSH传感器执行检测后的大部分信号处理,通过检测前的距离相关增益来提高激光雷达系统的灵敏度,并且不仅能够使用IBA晶体的高空间分辨率进行多普勒处理,而且还能够进行并行多波束接收。这种方法允许将超宽带,高功率,随机噪声,连续波激光器用作激光雷达系统中的测距波形,而不是大多数传统相干激光雷达系统所需的高度稳定,注入种子和放大的脉冲或调制激光源。 IBA介质在30-300 kHz范围内具有数十兆赫兹带宽和分辨率的功能,同时使用伪噪声编码波形或仅使用宽线宽的高功率噪声激光器(例如,随机噪声激光雷达)可以实现新一代改进的激光雷达传感器和处理器。给出了激光雷达测距和距离多普勒处理模拟的初步实验演示。

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