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Phase-dependent dual-frequency contrast imaging

机译:相位相关双频对比度成像

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Subharmonic imaging technique has been shown to provide a higher contrast-to-tissue ratio (CTR) at the cost of relatively low signal intensity from ultrasound contrast agents (UCAs). In this study, we propose a method of dual-frequency excitation to enhance the power of subharmonic component. Dual-frequency excitation pulse is an amplitude-modulated wave which consists of two sinusoids with frequencies of f1 and f2. The f2 at twice of UCAS resonance frequency is adopted to generate subharmonic component, and f1 is included to enhance the high-order nonlinearity of UCAs. In our previous study, the resulting envelope component (f1-f2) of dual-frequency excitation can serve as a driving force to excite the nonlinear response of UCAs. The second (f1-f2) and third-order (f2-(f1-f2)) nonlinear components related to envelope component would coincide with f2/2 if a proper set of f1 and f2 are selected. We further optimize the subharmonic generation by tuning the phase between second and third-order component. To evaluate the performance of proposed method on CTRs improvement, a speckle-generating flow phantom was constructed in in-vitro experiments. The results show that the CTRs of dual-frequency insonation change periodically with the phase, leading to a difference up to 10 dB between the maximal and minimal CTR. All the phase cases of dual-frequency insonation have higher CTRs than those of traditional subharmonic imaging method. The results show that the phase optimization is an important factor in subharmonic imaging with dual-frequency excitation. The echo produced from the envelope component seems to be specific for UCAs, so the proposed method has the potential in improving SNR and CTR of traditional subharmonic imaging.
机译:亚谐波成像技术已显示出以来自超声造影剂(UCA)的相对较低的信号强度为代价提供更高的组织对比度(CTR)。在这项研究中,我们提出了一种双频激励方法来增强次谐波分量的功率。双频激励脉冲是一个调幅波,由两个正弦波组成,频率分别为f 1 和f 2 。采用UCAS共振频率两倍的f 2 产生次谐波分量,并包含f1以增强UCA的高阶非线性。在我们之前的研究中,双频激励的合成包络分量(f 1 -f 2 )可以用作激发UCA非线性响应的驱动力。第二(f 1 -f 2 )和三阶(f 2 -(f 1 -f 2 ))如果适当地设置了f 1 和f 2的集合,则与包络分量有关的非线性分量将与f 2 / 2一致被选中。通过调整二阶和三阶分量之间的相位,我们进一步优化了次谐波的产生。为了评估所提出的方法对CTR改善的性能,在体外实验中构建了产生斑点的流动体模。结果表明,双频共振的CTR随相位周期性变化,从而导致最大CTR和最小CTR之间的差异高达10 dB。与传统的次谐波成像方法相比,双频声波的所有相位情况的CTR都更高。结果表明,相位优化是双频激励下次谐波成像的重要因素。从包络分量产生的回波似乎是UCA特有的,因此,所提出的方法具有改善传统次谐波成像的SNR和CTR的潜力。

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