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本文引用的文献

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Multi-frequency characterization of the speed of sound and attenuation coefficient for longitudinal transmission of freshly excised human skulls.对新鲜离体人颅骨纵向传输声速和衰减系数的多频特性进行了研究。
Phys Med Biol. 2011 Jan 7;56(1):219-50. doi: 10.1088/0031-9155/56/1/014. Epub 2010 Dec 9.
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Modeling power law absorption and dispersion for acoustic propagation using the fractional Laplacian.使用分数阶拉普拉斯算子对声波传播的幂律吸收和色散进行建模。
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Future potential of MRI-guided focused ultrasound brain surgery.MRI 引导聚焦超声脑外科手术的未来潜力。
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Transcranial magnetic resonance imaging- guided focused ultrasound surgery of brain tumors: initial findings in 3 patients.经颅磁共振引导聚焦超声手术治疗脑肿瘤:3 例初步结果。
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High-intensity focused ultrasound for noninvasive functional neurosurgery.高强度聚焦超声用于无创功能性神经外科手术。
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Transcranial ultrasonic therapy based on time reversal of acoustically induced cavitation bubble signature.基于声致空化气泡信号反转的经颅超声治疗。
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A k-space method for acoustic propagation using coupled first-order equations in three dimensions.一种用于声学传播的三维耦合一阶方程k空间方法。
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MRI-guided focused ultrasound surgery.磁共振成像引导聚焦超声手术
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In vitro and in vivo brain ablation created by high-intensity focused ultrasound and monitored by MRI.高强度聚焦超声造成的体外和体内脑消融,并通过磁共振成像进行监测。
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Non-invasive transcranial ultrasound therapy based on a 3D CT scan: protocol validation and in vitro results.基于三维CT扫描的无创经颅超声治疗:方案验证及体外实验结果
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基于 k 空间方法的经颅超声时反束聚焦。

Time-reversal transcranial ultrasound beam focusing using a k-space method.

机构信息

Department of Mechanical and Aerospace Engineering, North Carolina State University Raleigh, NC 27695, USA.

出版信息

Phys Med Biol. 2012 Feb 21;57(4):901-17. doi: 10.1088/0031-9155/57/4/901. Epub 2012 Jan 31.

DOI:10.1088/0031-9155/57/4/901
PMID:22290477
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3366238/
Abstract

This paper proposes the use of a k-space method to obtain the correction for transcranial ultrasound beam focusing. Mirroring past approaches, a synthetic point source at the focal point is numerically excited, and propagated through the skull, using acoustic properties acquired from registered computed tomography of the skull being studied. The received data outside the skull contain the correction information and can be phase conjugated (time reversed) and then physically generated to achieve a tight focusing inside the skull, by assuming quasi-plane transmission where shear waves are not present or their contribution can be neglected. Compared with the conventional finite-difference time-domain method for wave propagation simulation, it will be shown that the k-space method is significantly more accurate even for a relatively coarse spatial resolution, leading to a dramatically reduced computation time. Both numerical simulations and experiments conducted on an ex vivo human skull demonstrate that precise focusing can be realized using the k-space method with a spatial resolution as low as only 2.56 grid points per wavelength, thus allowing treatment planning computation on the order of minutes.

摘要

本文提出了一种利用 k 空间方法获得经颅超声束聚焦校正的方法。效仿过去的方法,在焦点处数值激发模拟点源,并通过颅骨传播,使用从颅骨的注册计算机断层扫描获得的声学特性。颅骨外的接收数据包含校正信息,可以进行相位共轭(时间反转),然后通过假设不存在切变波或可以忽略其贡献的准平面传输来实现颅骨内的紧密聚焦。与传统的用于波传播模拟的有限差分时域方法相比,即使对于相对粗糙的空间分辨率,也将表明 k 空间方法的准确性要高得多,从而大大减少了计算时间。在离体的人类颅骨上进行的数值模拟和实验表明,使用 k 空间方法可以实现精确的聚焦,空间分辨率低至仅每波长 2.56 个网格点,从而允许以分钟为单位进行治疗计划计算。