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A k-space method for acoustic propagation using coupled first-order equations in three dimensions

机译:使用三维空间耦合一阶方程的声波传播k空间方法

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摘要

A previously described two-dimensional k-space method for large-scale calculation of acoustic wave propagation in tissues is extended to three dimensions. The three-dimensional method contains all of the two-dimensional method features that allow accurate and stable calculation of propagation. These features are spectral calculation of spatial derivatives, temporal correction that produces exact propagation in a homogeneous medium, staggered spatial and temporal grids, and a perfectly matched boundary layer. Spectral evaluation of spatial derivatives is accomplished using a fast Fourier transform in three dimensions. This computational bottleneck requires all-to-all communication; execution time in a parallel implementation is therefore sensitive to node interconnect latency and bandwidth. Accuracy of the three-dimensional method is evaluated through comparisons with exact solutions for media having spherical inhomogeneities. Large-scale calculations in three dimensions were performed by distributing the nearly 50 variables per voxel that are used to implement the method over a cluster of computers. Two computer clusters used to evaluate method accuracy are compared. Comparisons of k-space calculations with exact methods including absorption highlight the need to model accurately the medium dispersion relationships, especially in large-scale media. Accurately modeled media allow the k-space method to calculate acoustic propagation in tissues over hundreds of wavelengths.
机译:用于组织中的声波传播的大规模计算的先前描述的二维k空间方法被扩展到三个维度。三维方法包含所有二维方法功能,可进行准确而稳定的传播计算。这些功能包括空间导数的频谱计算,在均质介质中产生精确传播的时间校正,交错的空间和时间网格以及完美匹配的边界层。使用三维快速傅里叶变换可完成空间导数的光谱评估。这个计算瓶颈需要全面沟通。因此,并行实现中的执行时间对节点互连延迟和带宽很敏感。通过与具有球形不均匀性的介质的精确解进行比较,来评估三维方法的准确性。通过在每个计算机像素上分布将近50个变量来进行三维三维计算,这些变量用于在计算机集群上实现该方法。比较了用于评估方法准确性的两个计算机集群。将k空间计算与包括吸收在内的精确方法进行比较,突出显示了需要精确建模介质色散关系的需求,尤其是在大规模介质中。精确建模的介质允许k空间方法计算数百个波长在组织中的声传播。

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