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相干激光测距中的散斑相位噪声:基本精度限制

Speckle phase noise in coherent laser ranging: fundamental precision limitations.

作者信息

Baumann Esther, Deschênes Jean-Daniel, Giorgetta Fabrizio R, Swann William C, Coddington Ian, Newbury Nathan R

出版信息

Opt Lett. 2014 Aug 15;39(16):4776-9. doi: 10.1364/OL.39.004776.

Abstract

Frequency-modulated continuous-wave laser detection and ranging (FMCW LADAR) measures the range to a surface through coherent detection of the backscattered light from a frequency-swept laser source. The ultimate limit to the range precision of FMCW LADAR, or any coherent LADAR, to a diffusely scattering surface will be determined by the unavoidable speckle phase noise. Here, we demonstrate the two main manifestations of this limit. First, frequency-dependent speckle phase noise leads to a non-Gaussian range distribution having outliers that approach the system range resolution, regardless of the signal-to-noise ratio. These outliers are reduced only through improved range resolution (i.e., higher optical bandwidths). Second, if the range is measured during a continuous lateral scan across a surface, the spatial pattern of speckle phase is converted to frequency noise, which leads to additional excess range uncertainty. We explore these two effects and show that laboratory results agree with analytical expressions and numerical simulations. We also show that at 1 THz optical bandwidth, range precisions below 10 μm are achievable regardless of these effects.

摘要

调频连续波激光探测与测距(FMCW LADAR)通过对扫频激光源背向散射光的相干探测来测量到表面的距离。FMCW LADAR或任何相干LADAR对漫散射表面的距离精度的最终极限将由不可避免的散斑相位噪声决定。在此,我们展示了这个极限的两个主要表现形式。首先,频率相关的散斑相位噪声导致非高斯距离分布,存在接近系统距离分辨率的异常值,而与信噪比无关。这些异常值只有通过提高距离分辨率(即更高的光学带宽)才能减少。其次,如果在对表面进行连续横向扫描期间测量距离,散斑相位的空间模式会转换为频率噪声,这会导致额外的多余距离不确定性。我们探讨了这两种效应,并表明实验室结果与解析表达式和数值模拟一致。我们还表明,在1太赫兹光学带宽下,无论这些效应如何,都可以实现低于10微米的距离精度。

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