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Real-time ultrasound image reconstruction as an inverse problem on a GPU

机译:实时超声图像重建作为GPU上的逆问题

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Ultrasonic image reconstruction methods based on inverse problems have been shown to produce sharp, high-quality images using more information about the acquisition process in its processing. This improved reconstruction has high computational cost, usually requiring to solve large systems and making real-time imaging very difficult. Parallelizing the reconstruction using graphics processing units (GPU) can significantly accelerate this processing, but the amount of memory needed by current system models is high for current GPU capacity. This paper presents a new system model to halve this memory requirement; it exploits the symmetry of the point spread functions (PSF) of the system matrix that occurs when symmetric transducers are used for acquisition. In this case, only one of the two symmetric PSFs needs to be stored; the other function is produced by reordering the stored one. Thus, we can reconstruct ultrasound images that are twice as large, making real-time reconstruction on a GPU possible for this application.
机译:基于逆问题的超声图像重建方法已经显示出使用关于其处理中采集过程的更多信息产生尖锐的高质量图像。这种改进的重建具有高计算成本,通常需要解决大型系统并使实时成像非常困难。使用图形处理单元(GPU)并行化重建可以显着加速该处理,但电流系统模型所需的内存量高,对于当前的GPU容量很高。本文介绍了一个新的系统模型,以减半这个内存要求;它利用当对称传感器用于采集时发生的系统矩阵的点传播功能(PSF)的对称性。在这种情况下,只需要存储两个对称PSF中的一个;通过重新排序存储的另一个功能来生产。因此,我们可以重建两倍大的超声图像,使得该应用的GPU上的实时重建。

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