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Defect Detection from 3D Ultrasonic Measurements Using Matrix-free Sparse Recovery Algorithms

机译:使用无矩阵稀疏恢复算法从3D超声测量中进行缺陷检测

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摘要

In this paper, we propose an efficient matrix-free algorithm to reconstruct locations and size of flaws in a specimen from volumetric ultrasound data by means of a native 3D Sparse Signal Recovery scheme using Orthogonal Matching Pursuit (OMP). The efficiency of the proposed approach is achieved in two ways. First, we formulate the dictionary matrix as a block multilevel Toeplitz matrix to minimize redundancy and thus memory consumption. Second, we exploit this specific structure in the dictionary to speed up the correlation step in OMP, which is implemented matrix-free. We compare our method to state-of-the-art, namely 3D Synthetic Aperture Focusing Technique, and show that it delivers a visually comparable performance, while it gains the additional freedom to use further methods such as Compressed Sensing.
机译:在本文中,我们提出了一种有效的无矩阵算法,该算法通过使用正交匹配追踪(OMP)的本机3D稀疏信号恢复方案,从体积超声数据中重建样本中缺陷的位置和大小。所提出的方法的效率是通过两种方式实现的。首先,我们将字典矩阵公式化为块多级Toeplitz矩阵,以最大程度地减少冗余,从而最大程度地减少内存消耗。其次,我们利用字典中的这种特定结构来加快OMP中的相关步骤,而OMP是无矩阵实现的。我们将我们的方法与最先进的方法(即3D合成孔径聚焦技术)进行了比较,并表明它提供了视觉上可比的性能,同时又获得了使用诸如压缩感测之类的其他方法的额外自由度。

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