IEEE Trans Ultrason Ferroelectr Freq Control. 2011 Jan;58(1):244-8. doi: 10.1109/TUFFC.2011.1792.
Guided wave imaging techniques employed for structural health monitoring (SHM) can be computationally demanding, especially for adaptive techniques such as minimum variance distortionless response (MVDR) imaging, which requires a matrix inversion for each pixel calculation. Instantaneous windowing has been shown in previous work to improve guided wave imaging performance. The use of instantaneous windowing has the additional benefit of significantly reducing the computational requirements of image generation. This paper derives a formulation for MVDR imaging using instantaneous windowing and shows that the matrix inversion associated with MVDR imaging can be optimized, reducing the computational complexity to that of conventional delay-and-sum imaging algorithms. Additionally, a vectorized approach is presented for implementing guided wave imaging algorithms, including delay-and-sum imaging, in matrix-based software packages. The improvements in computational efficiency are quantified by measuring computation time for different array sizes, windowing assumptions, and imaging methods.
导波成像技术在结构健康监测(SHM)中得到了广泛应用,但这些技术通常计算量较大,尤其是在最小方差无失真响应(MVDR)成像等自适应技术中,因为每个像素的计算都需要进行矩阵求逆。在之前的研究中已经表明,瞬时窗技术可以提高导波成像的性能。瞬时窗技术的另一个优点是可以显著降低图像生成的计算需求。本文推导了一种使用瞬时窗的 MVDR 成像公式,并表明可以对与 MVDR 成像相关的矩阵求逆进行优化,从而将计算复杂度降低到传统的延迟和求和成像算法的水平。此外,本文还提出了一种基于向量的方法,用于在基于矩阵的软件包中实现导波成像算法,包括延迟和求和成像。通过测量不同阵列大小、窗函数假设和成像方法的计算时间,对计算效率的提高进行了量化。