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Compressed sensing using a non-uniformly sampled range-azimuth dictionary

机译:使用非均匀采样的距离-方位角字典进行压缩感测

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FM-bats are known to be able to sense the environment by echolocation. In this paper, assuming the objects in the environment can be characterized by a sparse representation of the echoes in range and azimuth, a compressed sensing algorithm using a range-azimuth dictionary is proposed. The monaural and binaural range-azimuth dictionaries are constructed from measurements collected with a bionic sonar system consisting of one emitter and two receivers fitted with a 3-D printed replica of a real bats external ears. To estimate the range and azimuth of a target, the L1-minimization method is used. Since the high coherence in azimuth templates could cause ambiguity in azimuth estimation, the use of a non-uniform sampled dictionary is investigated. The non-uniform sampling is derived from the coherence between different azimuth templates in the dictionary. The non-uniformly sampled monaural and binaural dictionaries are used to process the echoes collected from a real brick-wall. Results indicate that strong echoes can be correctly localized both in azimuth and range by all three dictionaries, but for weak, highly overlapping echoes, both monaural dictionaries have problems interpreting these echo signals correctly. In addition to missing many of the real brick seams they also generate many false reconstructed objects, but constructing a binaural dictionary the results can be improved significantly.
机译:众所周知,FM蝙蝠能够通过回声定位来感知环境。本文假设环境中的物体可以用距离和方位的回波的稀疏表示来表征,提出了一种使用距离方位字典的压缩感知算法。单耳和双耳距离方位词典是根据使用仿生声纳系统收集的测量结果构建的,该系统由一个发射器和两个接收器组成,这些接收器配有真实蝙蝠外耳的3D打印副本。为了估计目标的范围和方位角,使用了L1最小化方法。由于方位模板中的高相干性可能导致方位估计中的歧义,因此研究了非均匀采样字典的使用。非均匀采样是根据字典中不同方位模板之间的相干性得出的。非均匀采样的单声道和双声道词典用于处理从真实砖墙收集的回声。结果表明,所有三个字典都可以在方位角和范围内正确定位强回声,但是对于弱,高度重叠的回声,两个单声道字典都存在正确解释这些回声信号的问题。除了丢失许多真实的砖缝之外,它们还生成许多错误的重建对象,但构建双耳词典后,结果可以得到显着改善。

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