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Linearly constrained minimum variance spatial filtering for localization of conductivity changes in electrical impedance tomography

机译:线性约束最小方差空间滤波,用于电阻抗层析成像中电导率变化的定位

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We localize dynamic electrical conductivity changes and reconstruct their time evolution introducing the spatial filtering technique to electrical impedance tomography (EIT). More precisely, we use the unit-noise-gain constrained variation of the distortionless-response linearly constrained minimum variance spatial filter. We address the effects of interference and the use of zero gain constraints. The approach is successfully tested in simulated and real tank phantoms. We compute the position error and resolution to compare the localization performance of the proposed method with the one-step Gauss-Newton reconstruction with Laplacian prior. We also study the effects of sensor position errors. Our results show that EIT spatial filtering is useful for localizing conductivity changes of relatively small size and for estimating their time-courses. Some potential dynamic EIT applications such as acute ischemic stroke detection and neuronal activity localization may benefit from the higher resolution of spatial filters as compared to conventional tomographic reconstruction algorithms. Copyright (c) 2015 John Wiley & Sons, Ltd.
机译:我们定位动态电导率变化并重建其时间演化,将空间滤波技术引入电阻抗层析成像(EIT)。更准确地说,我们使用无失真响应线性约束最小方差空间滤波器的单位噪声增益约束变化。我们解决了干扰的影响以及零增益约束的使用。该方法已在模拟和真实坦克模型中成功测试。我们计算位置误差和分辨率,以将所提方法的定位性能与采用拉普拉斯先验的单步高斯-牛顿重建进行比较。我们还研究了传感器位置误差的影响。我们的结果表明,EIT空间滤波可用于定位相对较小尺寸的电导率变化并估算其时程。与传统的层析重建算法相比,某些潜在的动态EIT应用(例如急性缺血性卒中检测和神经元活动定位)可能会受益于空间过滤器的高分辨率。版权所有(c)2015 John Wiley&Sons,Ltd.

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