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使用二维电容式微机械超声换能器进行声学反向散射和有效散射体尺寸估计。

Acoustic backscatter and effective scatterer size estimates using a 2D CMUT transducer.

作者信息

Liu W, Zagzebski J A, Hall T J, Madsen E L, Varghese T, Kliewer M A, Panda S, Lowery C, Barnes S

机构信息

Department of Medical Physics, University of Wisconsin-Madison, 1300 University Avenue, 1530 MSC, Madison, WI 53706, USA.

出版信息

Phys Med Biol. 2008 Aug 7;53(15):4169-83. doi: 10.1088/0031-9155/53/15/011. Epub 2008 Jul 17.

Abstract

Compared to conventional piezoelectric transducers, new capacitive microfabricated ultrasonic transducer (CMUT) technology is expected to offer a broader bandwidth, higher resolution and advanced 3D/4D imaging inherent in a 2D array. For ultrasound scatterer size imaging, a broader frequency range provides more information on frequency-dependent backscatter, and therefore, generally more accurate size estimates. Elevational compounding, which can significantly reduce the large statistical fluctuations associated with parametric imaging, becomes readily available with a 2D array. In this work, we show phantom and in vivo breast tumor scatterer size image results using a prototype 2D CMUT transducer (9 MHz center frequency) attached to a clinical scanner. A uniform phantom with two 1 cm diameter spherical inclusions of slightly smaller scatterer size was submerged in oil and scanned by both the 2D CMUT and a conventional piezoelectric linear array transducer. The attenuation and scatterer sizes of the sample were estimated using a reference phantom method. RF correlation analysis was performed using the data acquired by both transducers. The 2D CMUT results indicate that at a 2 cm depth (near the transmit focus for both transducers) the correlation coefficient reduced to less than 1/e for 0.2 mm lateral or 0.25 mm elevational separation between acoustic scanlines. For the conventional array this level of decorrelation requires a 0.3 mm lateral or 0.75 mm elevational translation. Angular and/or elevational compounding is used to reduce the variance of scatterer size estimates. The 2D array transducer acquired RF signals from 140 planes over a 2.8 cm elevational direction. If no elevational compounding is used, the fractional standard deviation of the size estimates is about 12% of the mean size estimate for both the spherical inclusion and the background. Elevational compounding of 11 adjacent planes reduces it to 7% for both media. Using an experimentally estimated attenuation of 0.6 dB cm(-1) MHz(-1), scatterer size estimates for an in vivo breast tumor also demonstrate improvements using elevational compounding with data from the 2D CMUT transducer.

摘要

与传统的压电换能器相比,新型电容式微制造超声换能器(CMUT)技术有望提供更宽的带宽、更高的分辨率以及二维阵列固有的先进三维/四维成像能力。对于超声散射体尺寸成像而言,更宽的频率范围能提供更多与频率相关的后向散射信息,因此通常能得到更准确的尺寸估计。仰角复合成像可以显著减少与参数成像相关的较大统计波动,二维阵列能轻松实现这种成像方式。在这项工作中,我们展示了使用连接到临床扫描仪的原型二维CMUT换能器(中心频率9 MHz)获得的仿体和体内乳腺肿瘤散射体尺寸图像结果。一个均匀的仿体中含有两个直径为1 cm、散射体尺寸略小的球形内含物,将其浸没在油中,并用二维CMUT和传统压电线性阵列换能器进行扫描。使用参考仿体方法估计样品的衰减和散射体尺寸。对两个换能器采集的数据进行射频相关分析。二维CMUT的结果表明在2 cm深度处(两个换能器的发射焦点附近),当声扫描线之间的横向间距为0.2 mm或仰角间距为0.25 mm时,相关系数降至小于1/e。对于传统阵列,达到这种去相关水平需要横向平移0.3 mm或仰角平移0.75 mm。使用角度和/或仰角复合成像来减少散射体尺寸估计的方差。二维阵列换能器在2.8 cm的仰角方向上从140个平面采集射频信号。如果不使用仰角复合成像,对于球形内含物和背景,尺寸估计的分数标准偏差约为平均尺寸估计值的12%。对11个相邻平面进行仰角复合成像后,两种介质的该值均降至7%。使用实验估计的0.6 dB cm⁻¹ MHz⁻¹的衰减,利用二维CMUT换能器的数据进行仰角复合成像后,对体内乳腺肿瘤的散射体尺寸估计也显示出改善。

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