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Rapid full-wave phase aberration correction method for transcranial high-intensity focused ultrasound therapies

机译:经颅高强度聚焦超声治疗的全波相位像差快速校正方法

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Background Non-invasive high-intensity focused ultrasound (HIFU) can be used to treat a variety of disorders, including those in the brain. However, the differences in acoustic properties between the skull and the surrounding soft tissue cause aberrations in the path of the ultrasonic beam, hindering or preventing treatment. Methods We present a method for correcting these aberrations that is fast, full-wave, and allows for corrections at multiple treatment locations. The method is simulation-based: an acoustic model is built based on high-resolution CT scans, and simulations are performed using the hybrid angular spectrum (HAS) method to determine the phases needed for correction. Results Computation of corrections for clinically applicable resolutions can be achieved in approximately 15?min. Experimental results with a plastic model designed to mimic the aberrations caused by the skull show that the method can recover 95?% of the peak pressure obtained using hydrophone-based time-reversal methods. Testing using an ex vivo human skull flap resulted in recovering up to 70?% of the peak pressure at the focus and 61?% when steering (representing, respectively, a 1.52- and 1.19-fold increase in the peak pressure over the uncorrected case). Additionally, combining the phase correction method with rapid HAS simulations allows evaluation of such treatment metrics as the effect of misregistration on resulting pressure levels. Conclusions The method presented here is able to rapidly compute phases required to improve ultrasound focusing through the skull at multiple treatment locations. Combining phase correction with rapid simulation techniques allows for evaluation of various treatment metrics such as the effect of steering on pressure levels. Since the method computes 3D pressure patterns, it may also be suitable for predicting off-focus hot spots during treatments—a primary concern for transcranial HIFU. Additionally, the plastic-skull method presented here may be a useful tool in evaluating the effectiveness of phase correction methods.
机译:背景技术非侵入性高强度聚焦超声(HIFU)可用于治疗多种疾病,包括脑部疾病。但是,颅骨与周围软组织之间声学特性的差异会导致超声波束路径中的像差,从而阻碍或阻止治疗。方法我们提供了一种快速,全波校正这些像差的方法,并且可以在多个治疗位置进行校正。该方法基于仿真:基于高分辨率CT扫描建立声学模型,并使用混合角谱(HAS)方法执行仿真以确定校正所需的相位。结果可在大约15分钟的时间内完成针对临床适用分辨率的校正计算。设计用于模拟头骨造成的像差的塑性模型的实验结果表明,该方法可以恢复使用基于水听器的时间反转方法获得的峰值压力的95%。使用离体人类颅骨皮瓣进行的测试可以使焦点处的峰值压力恢复高达70%的压力,转向时可恢复至61%的峰值压力(分别代表未矫正病例的峰值压力增加1.52倍和1.19倍)。此外,将相位校正方法与快速的HAS仿真相结合,可以评估诸如重合不当对最终压力水平的影响之类的治疗指标。结论本文介绍的方法能够快速计算出改善多个部位的颅骨超声聚焦所需的相位。将相位校正与快速仿真技术相结合,可以评估各种治疗指标,例如转向对压力水平的影响。由于该方法可计算3D压力模式,因此它也可能适合预测治疗期间的离焦热点,这是经颅HIFU的主要问题。此外,这里介绍的塑料头骨方法可能是评估相位校正方法有效性的有用工具。

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