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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Pitch–catch phase aberration correction of multiple isoplanatic patches for 3-D transcranial ultrasound imaging
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Pitch–catch phase aberration correction of multiple isoplanatic patches for 3-D transcranial ultrasound imaging

机译:用于3-D经颅超声成像的多个等平面面片的音高-相位相位像差校正

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摘要

Having previously presented the ultrasound brain helmet, a system for simultaneous 3-D ultrasound imaging via both temporal bone acoustic windows, the scanning geometry of this system is utilized to allow each matrix array to serve as a correction source for the opposing array. Aberration is estimated using cross-correlation of RF channel signals, followed by least mean squares solution of the resulting overdetermined system. Delay maps are updated and real-time 3-D scanning resumes. A first attempt is made at using multiple arrival time maps to correct multiple unique aberrators within a single transcranial imaging volume, i.e., several isoplanatic patches. This adaptive imaging technique, which uses steered unfocused waves transmitted by the opposing, or beacon, array, updates the transmit and receive delays of 5 isoplanatic patches within a 64u000b0; x 64u000b0; volume. In phantom experiments, color flow voxels above a common threshold have also increased by an average of 92%, whereas color flow variance decreased by an average of 10%. This approach has been applied to both temporal acoustic windows of two human subjects, yielding increases in echo brightness in 5 isoplanatic patches with a mean value of 24.3 u000b1; 9.1%, suggesting that such a technique may be beneficial in the future for performing noninvasive 3-D color flow imaging of cerebrovascular disease, including stroke.
机译:先前已经介绍了超声脑头盔,这是一个通过两个颞骨声学窗口同时进行3D超声成像的系统,该系统的扫描几何形状用于允许每个矩阵阵列用作对置阵列的校正源。使用RF通道信号的互相关来估计像差,然后是所得超定系统的最小均方解。延迟图被更新,实时3D扫描恢复。首次尝试使用多个到达时间图来校正单个经颅成像体积内的多个独特像差,即几个等平面斑块。这种自适应成像技术使用了由相对的或信标阵列发射的转向非聚焦波,可以更新64u000b0内的5个等平面斑块的发射和接收延迟。 x 64u000b0;体积。在幻像实验中,高于公共阈值的色流体素也平均增加了92%,而色流方差平均减少了10%。该方法已应用于两个人类受试者的两个时间声学窗口,从而在5个等平面斑块中产生了回声亮度增加,平均值为24.3 u000b1。 9.1%,表明这种技术将来可能对执行包括脑卒中在内的脑血管疾病的非侵入性3-D彩色血流成像有益。

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