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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Passive Cavitation Mapping by Cavitation Source Localization From Aperture-Domain Signals—Part I: Theory and Validation Through Simulations
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Passive Cavitation Mapping by Cavitation Source Localization From Aperture-Domain Signals—Part I: Theory and Validation Through Simulations

机译:来自光圈域信号的空化源定位的被动空化映射 - 第一部分:通过模拟理论和验证

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摘要

Passive cavitation mapping (PCM) algorithms for diagnostic ultrasound arrays based on time exposure acoustics (TEA) exhibit poor axial resolution, which is in part due to the diffraction-limited point spread function of the imaging system and poor rejection by the delay-and-sum beamformer. In this article, we adapt a method for speed of sound estimation to be utilized as a cavitation source localization (CSL) approach. This method utilizes a hyperbolic fit to the arrival times of the cavitation signals in the aperture domain, and the coefficients of the fit are related to the position of the cavitation source. Wavefronts exhibiting poor fit to the hyperbolic function are corrected to yield improved sourcelocalization. We demonstrate through simulations that this method is capable of accurate estimation of the origin of coherent spherical waves radiating fromcavitation/pointsources. The average localization-error from simulated microbubble sources was 0.12 +/- 0.12mm (0.15 +/- 0.14 lambda(0) for a 1.78-MHz transmit frequency). In simulations of two simultaneous cavitation sources, the proposed technique had an average localization error of 0.2mm (0.23 lambda(0)), whereas conventionalTEAhad an average localization error of 0.81mm (0.97 lambda(0)). The reconstructed PCM-CSL image showed a significant improvement in resolution compared with the PCM-TEA approach.
机译:基于时间曝光声学(TEA)的诊断超声阵列的被动空化映射(PCM)算法表现出较差的轴向分辨率,其部分是由于成像系统的衍射限制点传播功能和延迟抑制不良 - 和 - 总和波束形成器。在本文中,我们适应用于用于空化源定位(CSL)方法的声音估计速度的方法。该方法利用孔径域中的空化信号的到达时间来利用双曲线,并且拟合系数与空化源的位置有关。校正表现出差的波前率为双曲函数,以产生改善的Sourceclocalization。我们通过模拟证明该方法能够精确地估计辐射从挖掘/点的相干球形波的起源。模拟微泡源的平均定位误差为0.12 +/- 0.12mm(0.15 +/- 0.14λ(0),用于1.78MHz发射频率)。在两个同时空化源的仿真中,所提出的技术的平均定位误差为0.2mm(0.23λ(0)),而常规点为0.81mm的平均分子化误差(0.97λ(0))。与PCM-TEA方法相比,重建的PCM-CSL图像显示出分辨率的显着改善。

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