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Ultrasound waveform tomography using wave-energy-based preconditioning

机译:基于波能的预处理超声波波形断层扫描

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Ultrasound waveform tomography using the conjugate gradient method produces images with different qualities in different regions of the imaging domain, partly because the ultrasound wave energy is dominant around transducer elements. In addition, this uneven distribution of the wave energy slows down the convergence of the inversion. Using the Hessian matrix to scale the gradients in waveform inversion can reduce the artifacts caused by the geometrical spreading and the defocusing effect resulting from the incomplete data coverage. However, it is computationally expensive to calculate the Hessian matrix. We develop a new ultrasound waveform tomography method that weights the gradient with the ultrasound wave energies of the forward and backward propagation wavefields. Our new method balances the wave energy distribution throughout the entire imaging domain. This method scales the gradients using the square root of the wave energy of forward propagated wavefields from sources and that of backpropagated synthetic wavefields from receivers. We numerically demonstrate that this new ultrasound waveform tomography method improves sound-speed reconstructions of breast tumors and accelerates the convergence of ultrasound waveform tomography.
机译:使用共轭梯度方法的超声波波形断层扫描在成像域的不同区域中产生具有不同品质的图像,部分地是因为超声波能量在换能器元件周围主要显着。此外,波能的这种不均匀分布减慢了反转的收敛性。使用Hessian矩阵来缩放波形反转中的梯度可以减少由几何扩展引起的伪像以及由不完全数据覆盖产生的散焦效果。但是,计算Hessian矩阵是计算昂贵的昂贵。我们开发了一种新的超声波波形断层扫描方法,将梯度加重前向和向后传播波浪的超声波能量。我们的新方法平衡了整个成像域中的波能量分布。该方法使用来自源的前向传播的波场的波浪能量的平方根和来自接收器的背部agaging的合成波面的平方根缩放梯度。我们在数值上证明了这种新的超声波断层扫描方法改善了乳腺肿瘤的声速重建,并加速了超声波波形断层扫描的收敛性。

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