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基于反卷积的声电效应电流密度成像的三维重建解决方案:一项模拟研究。

A 3-D reconstruction solution to current density imaging based on acoustoelectric effect by deconvolution: a simulation study.

机构信息

School of Instrument Science and Engineering, Southeast University, Nanjing 210096, China.

出版信息

IEEE Trans Biomed Eng. 2013 May;60(5):1181-90. doi: 10.1109/TBME.2012.2228641. Epub 2012 Nov 21.

Abstract

Hybrid imaging modality combining ultrasound scanning and electrical current density imaging through the acoustoelectric (AE) effect may potentially provide solutions to imaging electrical activities and properties of biological tissues with high spatial resolution. In this study, a 3-D reconstruction solution to ultrasound current source density imaging (UCSDI) by means of Wiener deconvolution is proposed and evaluated through computer simulations. As compared to previous 2-D UCSDI problem, in a 3-D volume conductor with broadly distributed current density field, the AE signal becomes a 3-D convolution between the electric field and the acoustic field, and effective 3-D reconstruction algorithm has not been developed so far. In the proposed method, a 3-D ultrasound scanning is performed while the corresponding AE signals are collected from multiple electrode pairs attached on the surface of the imaging object. From the collected AE signals, the acoustic field and electric field were first decoupled by Wiener deconvolution. Then, the current density distribution was reconstructed by inverse projection. Our simulations using artificial current fields in homogeneous phantoms suggest that the proposed method is feasible and robust against noise. It is also shown that using the proposed method, it is feasible to reconstruct 3-D current density distribution in an inhomogeneous conductive medium.

摘要

通过声电(AE)效应将超声扫描与电流密度成像相结合的混合成像方式,可能为高空间分辨率成像生物组织的电活动和特性提供解决方案。在这项研究中,通过维纳反卷积提出并评估了一种用于超声电流密度成像(UCSDI)的 3-D 重建解决方案。与之前的 2-D UCSDI 问题相比,在电流密度场广泛分布的 3-D 容积导体中,AE 信号成为电场和声场之间的 3-D 卷积,并且迄今尚未开发出有效的 3-D 重建算法。在提出的方法中,进行 3-D 超声扫描,同时从附着在成像物体表面的多个电极对收集相应的 AE 信号。从收集的 AE 信号中,首先通过维纳反卷积解耦声场和电场。然后,通过逆投影重建电流密度分布。我们在均匀体模中使用人工电流场的模拟表明,该方法是可行的,并且对噪声具有鲁棒性。还表明,使用该方法可以在非均匀导电介质中重建 3-D 电流密度分布。

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