首页> 外文会议>Conference on Biomedical Thermoacoustics, Optoacoustics, and Acousto-optics; 20080120-23; San Jose,CA(US) >Photoacoustic Tomography of Heterogenous Media Using a Model-Based Time Reversal Method
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Photoacoustic Tomography of Heterogenous Media Using a Model-Based Time Reversal Method

机译:基于模型的时间反转方法在异质介质上的光声层析成像

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In photoacoustic (also called optoacoustic or thermoacoustic) tomography acoustic pressure waves are generated by illumination of a semitransparent sample with pulsed electromagnetic radiation. Subsequently the waves propagate toward the detection surface enclosing the sample. The inverse problem consists of reconstructing the initial pressure sources from those measurements. By combining the high spatial resolution of ultrasonic imaging with the high contrast of optical imaging it offers new potentials in medical diagnostics. In certain applications of photoacoustic imaging one has to deal with media with spatially varying sound velocity, e.g. bones in soft tissue. These inhomogeneities have a strong influence on the propagation of photoacoustically generated sound waves. Image reconstruction without any compensation of this effect leads to a poor image quality. It is therefore essential to develop reconstruction algorithms that take spatially varying sound velocity into account and are able to reveal small structures in acoustically heterogeneous media. A model-based time reversal reconstruction method is presented that is capable of reconstructing the initial pressure distribution despite variations of sound speed. This reconstruction method calculates the time reversed field directly with a second order embedded boundary method by retransmitting the measured pressure on the detector positions in reversed temporal order. With numerical simulations the effect of heterogenous media on sound propagation and the consequences for image reconstruction without compensation are shown. It is demonstrated how time reversal can lead to a correct reconstruction if the distribution of sound speed is known. Corresponding experiments with phantoms consisting of areas with spatially varying sound velocity are carried out and the algorithm is applied to the measured signals.
机译:在光声(也称为光声或热声)层析成像中,声压波是通过用脉冲电磁辐射照射半透明样品产生的。随后,波向包围样品的检测表面传播。反问题包括根据这些测量值重建初始压力源。通过将超声成像的高空间分辨率与光学成像的高对比度相结合,它为医学诊断提供了新的潜力。在光声成像的某些应用中,必须处理声速在空间上变化的介质,例如声速。软组织中的骨头。这些不均匀性对光声产生的声波的传播有很大的影响。没有对此效果的任何补偿的图像重建导致较差的图像质量。因此,至关重要的是要开发一种重构算法,该算法应考虑到空间变化的声速并能够揭示异质介质中的小结构。提出了一种基于模型的时间逆向重建方法,该方法能够在声速变化的情况下重建初始压力分布。该重建方法通过以逆时间顺序重新传输检测器位置上的测得压力,直接通过二阶嵌入边界方法计算时间反向场。通过数值模拟,显示了异质媒体对声音传播的影响以及图像在没有补偿的情况下重建的后果。它证明了如果知道声速的分布,时间倒转将如何导致正确的重建。进行了相应的模拟实验,该模拟实验由声速在空间上变化的区域组成,并将该算法应用于所测信号。

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