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Comparison of analytical and numerical approaches for CT-based aberration correction in transcranial passive acoustic imaging

机译:经颅无源声学成像中基于CT像差校正的分析方法和数值方法的比较

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摘要

Computed tomography (CT)-based aberration corrections are employed in transcranial ultrasound both for therapy and imaging. In this study, analytical and numerical approaches for calculating aberration corrections based on CT data were compared, with a particular focus on their application to transcranial passive imaging. Two models were investigated: a three-dimensional full-wave numerical model [Connor and Hynynen, IEEE Trans. Biomed. Eng. >51, 1693–1706 (2004)] based on the Westervelt equation, and an analytical method [Clement and Hynynen, Ultrasound Med. Biol. >28, 617–624 (2002)] similar to that currently employed by commercial brain therapy systems. Trans-skull time delay corrections calculated from each model were applied to data acquired by a sparse hemispherical (30 cm diameter) receiver array (128 piezoceramic discs: 2.5 mm diameter, 612 kHz center frequency) passively listening through ex vivo human skullcaps (n = 4) to emissions from a narrow-band, fixed source emitter (1 mm diameter, 516 kHz center frequency). Measurements were taken at various locations within the cranial cavity by moving the source around the field using a three-axis positioning system. Images generated through passive beamforming using CT-based skull corrections were compared with those obtained through an invasive source-based approach, as well as images formed without skull corrections, using the main lobe volume, positional shift, peak sidelobe ratio, and image signal-to-noise ratio as metrics for image quality. For each CT-based model, corrections achieved by allowing for heterogeneous skull acoustical parameters in simulation outperformed the corresponding case where homogeneous parameters were assumed. Of the CT-based methods investigated, the full-wave model provided the best imaging results at the cost of computational complexity. These results highlight the importance of accurately modeling trans-skull propagation when calculating CT-based aberration corrections. Although presented in an imaging context, our results may also be applicable to the problem of transmit focusing through the skull.
机译:基于计算机断层扫描(CT)的像差校正在经颅超声检查中用于治疗和成像。在这项研究中,比较了基于CT数据计算像差校正的分析方法和数值方法,特别关注了它们在经颅被动成像中的应用。研究了两个模型:三维全波数值模型[Connor和Hynynen,IEEE Trans。生物医学。 。 > 51 ,1693-1706年(2004年)]和一种分析方法[Clement and Hynynen,Ultrasound Med。生物学> 28 ,第617–624页(2002年)],类似于商业脑部治疗系统目前采用的方法。从每个模型计算出的跨头骨时间延迟校正应用于通过稀疏半球形(直径为30 cm)接收器阵列(128个压电陶瓷圆盘:直径为2.5 mm,中心频率为612 kHz)获得的数据,通过体外人类头盖骨被动收听(n = 4)从窄带固定源发射器发射(直径1 mm,中心频率516 kHz)。通过使用三轴定位系统在野外移动源,在颅腔内的各个位置进行测量。使用主瓣体积,位置偏移,峰值旁瓣比和图像信号-将通过使用基于CT的颅骨校正的被动波束成形生成的图像与通过基于侵入源的方法获得的图像以及未经颅骨校正的图像进行比较。信噪比作为衡量图像质量的指标。对于每个基于CT的模型,通过在仿真中考虑异构颅骨声学参数而获得的校正效果均好于假定均质参数的相应情况。在研究的基于CT的方法中,全波模型以计算复杂性为代价提供了最佳的成像结果。这些结果凸显了在计算基于CT的像差校正时准确建模跨头骨传播的重要性。尽管是在成像环境中提出的,但我们的结果也可能适用于通过颅骨进行透射聚焦的问题。

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  • 年(卷),期 -1(61),1
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  • 页码 23–36
  • 总页数 20
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