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Image reconstruction of multi-channel photoacoustic and laser-ultrasound data using reverse-time migration

机译:使用相反时间迁移的多通道光声和激光超声数据的图像重构

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We propose a new reconstruction algorithm for photoacoustic and laser-ultrasound imaging based on reverse-time migration (RTM), a time reversal imaging algorithm originally developed for exploration seismology. RTM inherently handles strong velocity heterogeneity and complex propagation paths. A successful RTM analysis with appropriate handling of boundary conditions results in enhanced signal-to-noise, accurately located structures, and minimal artifacts. A laser-ultrasound experiment begins with a source wavefield generated at the surface that propagates through the sample. Acoustic scatterers in the propagation path give rise to a scattered wavefield, which travels to the surface and is recorded by acoustic detectors. To reconstruct the laser-ultrasound image, a synthetic source function is forward propagated and cross-correlated with the time-reversed and back-propagated recorded (scattered) wavefield to image the scatterers at the correct location. Conversely, photoacoustic waves are generated by chromophores within the sample and propagate "one-way" to the detection surface. We utilize the velocity model validated by the laser-ultrasound reconstruction to accurately reconstruct the photoacoustic image with RTM. This approach is first validated with simulations, where inclusions behave both as a photoacoustic source and an acoustic scatterer. Subsequently, we demonstrate the capabilities of RTM with tissue phantom experiments using an all-optical, multi-channel acquisition geometry.
机译:我们提出了一种基于反向时间迁移(RTM)的光声和激光超声成像的新重建算法,这是一种最初为勘探地震学开发的时间反转成像算法。 RTM固有地处理强速异质性和复杂的传播路径。具有适当处理边界条件的成功RTM分析导致增强的信噪比,准确定位的结构和最小的伪影。激光超声实验开始于在通过样品传播的表面处产生的源波面。传播路径中的声散射器导致散射的波场,其行进到表面并被声学检测器记录。为了重建激光超声图像,将合成源函数正向传播并与时间反转和背部传播的记录(散射)波场进行交叉,以将散射器图像在正确的位置图像。相反,光声波由样品内的发色团产生,并将“单向”传播到检测表面。我们利用激光超声重建验证的速度模型来准确地重建具有RTM的光声图像。该方法首先用仿真验证,其中夹杂物表现为光声源和声学散射体。随后,我们展示了使用全光,多通道采集几何与组织幻像实验的RTM的能力。

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