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Sparse coprime sensing with multidimensional lattice arrays

机译:多维晶格阵列的稀疏互质感

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Consider two uniform samplers operating simultaneously on a signal, with sample spacings MT and NT where M and N are coprime integers, and T has time or space dimension. It can be shown that the difference coarray of this pair of sampling arrays has elements at all integer multiples of T, regardless of how large M and N are. This implies that any application which depends only on second order statistics, such as angle of arrival estimation, beamforming, and multiple frequency detection, can be carried out at high resolution with the help of sparse sampling arrays. One manifestation is that two sensor arrays withM and N sensors can actually identify O(MN) independent sources. This paper extends these results to the case of multidimensional signals. The multidimensional sampling arrays operate on a lattice geometry. The coarray of such a system is studied. Even though the two lattice arrays are sparse (with respect to the integer grid), the coarray contains all integer vectors. It is also shown how to achieve the effect of a high resolution multidimensional DFT filter bank by combining coprime low resolution filter banks.
机译:考虑两个均一的采样器同时对一个信号进行操作,采样间隔为MT和NT,其中M和N为互质整数,T为时间或空间维数。可以证明,这对采样阵列的差分协阵列在T的所有整数倍处都具有元素,而与M和N的大小无关。这意味着,仅依赖于二阶统计量的任何应用(例如到达角估计,波束成形和多频检测)都可以在稀疏采样阵列的帮助下以高分辨率进行。一种体现是两个带有M和N个传感器的传感器阵列实际上可以识别O(MN)独立的源。本文将这些结果扩展到多维信号的情况。多维采样阵列在晶格几何上运行。研究了这种系统的协同阵列。即使两个晶格数组是稀疏的(相对于整数网格),协数组也包含所有整数向量。还显示了如何通过组合互质低分辨率滤波器组来实现高分辨率多维DFT滤波器组的效果。

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