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基于分布式优化的压缩合成孔径声纳成像

Compressive synthetic aperture sonar imaging with distributed optimization.

作者信息

Xenaki Angeliki, Pailhas Yan

机构信息

Centre for Maritime Research and Experimentation, Science and Technology Organization-NATO, La Spezia, 19126, Italy.

出版信息

J Acoust Soc Am. 2019 Sep;146(3):1839. doi: 10.1121/1.5126862.

Abstract

Synthetic aperture sonar (SAS) provides high-resolution acoustic imaging by processing coherently the backscattered acoustic signal recorded over consecutive pings. Traditionally, object detection and classification tasks rely on high-resolution seafloor mapping achieved with widebeam, broadband SAS systems. However, aspect- or frequency-specific information is crucial for improving the performance of automatic target recognition algorithms. For example, low frequencies can be partly transmitted through objects or penetrate the seafloor providing information about internal structure and buried objects, while multiple views provide information about the object's shape and dimensions. Sub-band and limited-view processing, though, degrades the SAS resolution. In this paper, SAS imaging is formulated as an ℓ-norm regularized least-squares optimization problem which improves the resolution by promoting a parsimonious representation of the data. The optimization problem is solved in a distributed and computationally efficient way with an algorithm based on the alternating direction method of multipliers. The resulting SAS image is the consensus outcome of collaborative filtering of the data from each ping. The potential of the proposed method for high-resolution, narrowband, and limited-aspect SAS imaging is demonstrated with simulated and experimental data.

摘要

合成孔径声纳(SAS)通过对连续发射脉冲记录的反向散射声信号进行相干处理,提供高分辨率声学成像。传统上,目标检测和分类任务依赖于使用宽波束、宽带SAS系统实现的高分辨率海底测绘。然而,特定方位或频率的信息对于提高自动目标识别算法的性能至关重要。例如,低频可以部分穿透物体或穿透海底,提供有关内部结构和埋藏物体的信息,而多个视角则提供有关物体形状和尺寸的信息。不过,子带和有限视角处理会降低SAS分辨率。在本文中,SAS成像被表述为一个ℓ范数正则化最小二乘优化问题,通过促进数据的简洁表示来提高分辨率。该优化问题通过一种基于乘子交替方向法的算法以分布式且计算高效的方式求解。所得的SAS图像是每个发射脉冲数据协同滤波的一致结果。通过模拟和实验数据证明了所提方法用于高分辨率、窄带和有限视角SAS成像的潜力。

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