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Energy-based adaptive focusing of waves: application to noninvasive aberration correction of ultrasonic wavefields

机译:基于能量的波的自适应聚焦:在超声场非侵入像差校正中的应用

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摘要

An aberration correction method based on the maximization of the wave intensity at the focus of an emitting array is presented. The potential of this new adaptive focusing technique is investigated for ultrasonic focusing in biological tissues. The acoustic intensity is maximized noninvasively through direct measurement or indirect estimation of the beam energy at the focus for a series of spatially coded emissions. For ultrasonic waves, the acoustic energy at the desired focus can be indirectly estimated from the local displacements induced in tissues by the ultrasonic radiation force of the beam. Based on the measurement of these displacements, this method allows determination of the precise estimation of the phase and amplitude aberrations, and consequently the correction of aberrations along the beam travel path. The proof of concept is first performed experimentally using a large therapeutic array with strong electronic phase aberrations (up to 2<0;). Displacements induced by the ultrasonic radiation force at the desired focus are indirectly estimated using the time shift of backscattered echoes recorded on the array. The phase estimation is deduced accurately using a direct inversion algorithm which reduces the standard deviation of the phase distribution from <3; = 1.89 radian before correction to <3; = 0.53 radian following correction. The corrected beam focusing quality is verified using a needle hydrophone. The peak intensity obtained through the aberrator is found to be -7.69 dB below the reference intensity obtained without any aberration. Using the phase correction, a sharp focus is restored through the aberrator with a relative peak intensity of -0.89 dB. The technique is tested experimentally using a linear transmit/receive array through a real aberrating layer. The array is used to automatically correct its beam quality, as it both generates the radiation force with coded excitations and indirectly estimates the acoustic intensit-ny at the focus with speckle tracking. This technique could have important implications in the field of high-intensity focused ultrasound even in complex configurations such as transcranial, transcostal, or deep seated organs.
机译:提出了一种基于发射阵列焦点处的波强度最大化的像差校正方法。研究了这种新的自适应聚焦技术在生物组织中超声聚焦的潜力。通过对一系列空间编码发射的焦点处的束能量进行直接测量或间接估计,可以无创地最大化声强。对于超声波,可以根据由束的超声波辐射力在组织中引起的局部位移来间接估计所需焦点处的声能。基于这些位移的测量,该方法允许确定相位和振幅像差的精确估计,并因此确定沿光束传播路径的像差的校正。首先使用具有强电子相差(最大2 <0;)的大型治疗阵列通过实验进行概念验证。使用记录在阵列上的反向散射回波的时移,可以间接估算由超声波辐射力在所需焦点处引起的位移。使用直接反演算法可以准确地推断出相位估计值,该算法可将相位分布的标准偏差从<3减小; =校正为<3之前的1.89弧度; =更正后为0.53弧度。使用针式水听器验证校正后的光束聚焦质量。发现通过像差器获得的峰值强度比没有任何像差获得的参考强度低-7.69 dB。使用相位校正,可以通过像差器以-0.89 dB的相对峰值强度恢复清晰的聚焦。该技术已通过线性像差传输层/接收阵列通过实验进行了测试。该阵列用于自动校正其光束质量,因为它既可以通过编码激发来产生辐射力,又可以通过散斑跟踪来间接估计焦点处的声强。即使在复杂的结构(如经颅,肋间或深部器官)中,该技术在高强度聚焦超声领域也可能具有重要意义。

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