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Real-time realization of adaptive dynamic quadrature demodulation on a gpu-based ultrasound imaging system

机译:基于GPU的超声成像系统的自适应动态正交解调实时实现

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In medical ultrasound imaging, the frequency- and depth-dependent attenuation causes the degradation in signal-to-noise ratio (SNR) in quadrature demodulation (QDM). To improve SNR, the adaptive dynamic QDM (ADQDM) method based on a 2nd-order autoregressive (AR) spectral estimation was previously proposed. However, due to its high computational requirements, it is challenging to implement the ADQDM in real time. In this paper, the optimal realization of ADQDM on a GPU-based ultrasound imaging system is presented. To efficiently implement the method, the image is divided into multiple zones, and the center frequency of a receive signal at each zone is independently estimated by using the 2nd-order AR model. The estimated center frequencies are used for dynamic quadrature demodulation. This method was incorporated on the Compute Unified Device Architecture (CUDA) platform and throughputs were measured using a NVIDIA's GTX-560Ti GPU chip. The evaluation was conducted with the beamformed 6144×256 pixel radio-frequency (RF) data which were captured by a commercial ultrasound scanner from the liver of a volunteer. The total execution time for ADQDM is 3.44 ms, which indicates that it can be implemented in real time on a GPU-based medical ultrasound system.
机译:在医学超声成像中,频率和深度依赖性衰减导致信噪比(SNR)中的正交解调(QDM)中的劣化。为了改善SNR,先前提出了基于2nd阶自适应(AR)光谱估计的自适应动态QDM(ADQDM)方法。然而,由于其高计算要求,实时实施ADQDM充满挑战。本文提出了基于GPU的超声成像系统的ADQDM的最佳实现。为了有效地实现该方法,将图像分成多个区域,并且通过使用2nd阶AR模型独立地估计每个区域的接收信号的中心频率。估计的中心频率用于动态正交解调。该方法并入到计算统一设备架构(CUDA)平台上,使用NVIDIA的GTX-560TI GPU芯片测量吞吐量。评估是用比较的6144×256像素射频(RF)数据进行,该射频(RF)数据由来自志愿者的肝脏捕获的商业超声扫描仪。 ADQDM的总执行时间为3.44毫秒,表示它可以在基于GPU的医疗超声系统上实时实现。

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