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Time-domain spectral-element ultrasound waveform tomography using a stochastic quasi-Newton method

机译:随机准牛顿法的时域频谱元素超声波形层析成像

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Waveform inversion for ultrasound computed tomography (USCT) is a promising imaging technique for breast cancer screening. However, the improved spatial resolution and the ability to constrain multiple parameters simultaneously demand substantial computational resources for the recurring simulations of the wave equation. Hence, it is crucial to use fast and accurate methods for numerical wave propagation, on the one hand, and to keep the number of required simulations as small as possible, on the other hand. We present an efficient strategy for acoustic waveform inversion that combines (ⅰ) a spectral-element continuous Galerkin method for solving the wave equation, (ⅱ) conforming hexahedral mesh generation to discretize the scanning device, (ⅲ) a randomized descent method based on mini-batches to reduce the computational cost for misfit and gradient computations, and (ⅳ) a trust-region method using a quasi-Newton approximation of the Hessian to iteratively solve the inverse problem. This approach combines ideas and state-of-the-art methods from global-scale seismology, large-scale nonlinear optimization, and machine learning. Numerical examples for a synthetic phantom demonstrate the efficiency of the discretization, the effectiveness of the mini-batch approximation and the robustness of the trust-region method to reconstruct the acoustic properties of breast tissue with partial information.
机译:超声计算机断层扫描(USCT)的波形反转是一种有前途的乳腺癌筛查成像技术。但是,提高的空间分辨率和约束多个参数的能力同时需要大量的计算资源用于波动方程的重复模拟。因此,至关重要的是,一方面要使用快速,准确的方法进行数值波传播,另一方面要使所需的仿真次数尽可能少。我们提出了一种有效的声波波形反演策略,该方法结合了(ⅰ)求解频谱波动方程的频谱元素连续Galerkin方法,(ⅱ)符合六面体网格生成以离散化扫描设备,(ⅲ)基于mini的随机下降方法分批处理以减少失配和梯度计算的计算成本,以及(ⅳ)使用Hessian的拟牛顿逼近来迭代求解反问题的信赖域方法。这种方法结合了全球地震学,大规模非线性优化和机器学习的思想和最新方法。合成体模的数值示例证明了离散化的效率,小批量逼近的有效性以及信任区方法的健壮性,该信任区方法可利用部分信息来重建乳腺组织的声学特性。

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