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An autoregressive model-based method for contrast agent detection in ultrasound radiofrequency images.

机译:一种基于自回归模型的超声射频图像中造影剂检测方法。

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摘要

This paper presents a spectral autoregressive method dedicated to the detection of ultrasound contrast agents (USCA) from radiofrequency (rf) data. The method is based on second-order autoregressive (AR) modeling of the rf signal. Contrast agents induce a second harmonic, which may be efficiently detected through the AR spectrum using the magnitude of the second AR spectral peak (SM2). In contrast to multipulse methods that process two or more rf frames, our method processes a single rf frame. The method is tested by numerical simulation and on in vitro data for contrast agent concentrations ranging from 10(3) to 50 x 10(3) bubbles/ml (2 x 10(-6) to 10(-4) volumic concentration) and mechanical index (MI) ranging from 0.1 to 0.36. The results show that the proposed parameter SM2 enables one to detect correctly the contrast agent, in particular at low concentration and MI (the minimum difference in SM2 between tissue and USCA is 10 dB). Furthermore, the in-vitro data demonstrates that an adapted smoothing technique reduces the variability of SM2 and provides accurate and stable segmentation of the contrast agent perfusion region.
机译:本文提出了一种频谱自回归方法,专用于从射频(rf)数据中检测超声造影剂(USCA)。该方法基于射频信号的二阶自回归(AR)建模。造影剂会感应出二次谐波,可以使用第二个AR光谱峰(SM2)的幅度通过AR光谱进行有效检测。与处理两个或多个rf帧的多脉冲方法相反,我们的方法处理一个rf帧。该方法通过数值模拟和体外数据测试,造影剂浓度范围为10(3)至50 x 10(3)气泡/ ml(2 x 10(-6)至10(-4)体积浓度),机械指数(MI)在0.1到0.36之间。结果表明,提出的参数SM2使人们能够正确检测造影剂,尤其是在低浓度和MI时(组织和USCA之间的SM2最小差为10 dB)。此外,体外数据表明,采用合适的平滑技术可减少SM2的变异性,并提供造影剂灌注区域的准确和稳定的分割。

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