SOURCE CONSISTENCY ELECTRICAL IMPEDANCE TOMOGRAPHY

被引:8
作者
Zhang, Tingting [1 ]
Jang, Geuk Young [1 ]
Oh, Tong In [1 ]
Jeung, Kyung Woon [2 ]
Wi, Hun [3 ]
Woo, Eung Je [1 ]
机构
[1] Kyung Hee Univ, Dept Biomed Engn, Seoul, South Korea
[2] Chonnam Natl Univ Hosp, Dept Emergency Med, Gwangju, South Korea
[3] BiLab, Seoul, South Korea
关键词
electrical impedance tomography; source consistency; physiological functions; EIT;
D O I
10.1137/18M1225264
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
In electrical impedance tomography (EIT), multiple electrodes are attached around an imaging domain such as the human thorax to inject currents and measure induced boundary voltages. Using the measured boundary voltage data, cross-sectional images of an internal conductivity distribution are reconstructed. Taking advantage of its fast temporal resolution, time-difference EIT can be used for image-based monitoring of physiological functions such as lung ventilation and cardiac blood flow. Among numerous data collection protocols, we assume current injections and voltage measurements between adjacent pairs of electrodes. The measured voltage difference between the jth electrode pair subject to the current injection between the kth electrode pair, for example, changes with time and its time-series is called a voltage channel in this paper. Investigating shapes of voltage channels, a new technique called source consistency EIT (scEIT) is proposed to extract voltage channel data originating from a physiological function or source of interest. The proposed scEIT technique suggests each voltage channel can be expressed up to a scale factor and offset value from a single shape-reference voltage channel when there exists only one time-varying source. When multiple physiological sources exist to concurrently produce correspondingly different conductivity changes, measured voltage channels are influenced by all of the sources. Using the scEIT method, each voltage channel can be expressed as a weighted sum of multiple shape-reference voltage channels of the sources. The proposed scEIT technique is verified through numerical simulations and animal experiments. Future experimental studies of applying the scEIT technique to in vivo human experiments are proposed.
引用
收藏
页码:499 / 520
页数:22
相关论文
共 31 条
[1]   Electrical Impedance Tomography: Tissue Properties to Image Measures [J].
Adler, Andy ;
Boyle, Alistair .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2017, 64 (11) :2494-2504
[2]  
[Anonymous], 2002, PRINCIPAL COMPONENT
[3]  
[Anonymous], 2012, An Internet resource for the calculation of the dielectric properties of body tissues in the frequency range 10 Hz-100 GHz
[4]   Shape matching and object recognition using shape contexts [J].
Belongie, S ;
Malik, J ;
Puzicha, J .
IEEE TRANSACTIONS ON PATTERN ANALYSIS AND MACHINE INTELLIGENCE, 2002, 24 (04) :509-522
[5]   Electrical impedance tomography [J].
Borcea, L .
INVERSE PROBLEMS, 2002, 18 (06) :R99-R136
[6]  
Braun F, 2018, NONINVASIVE STROKE V
[7]   Accuracy and reliability of noninvasive stroke volume monitoring via ECG-gated 3D electrical impedance tomography in healthy volunteers [J].
Braun, Fabian ;
Proenca, Martin ;
Adler, Andy ;
Riedel, Thomas ;
Thiran, Jean-Philippe ;
Sola, Josep .
PLOS ONE, 2018, 13 (01)
[8]   BLOOD-FLOW IMAGING USING ELECTRICAL-IMPEDANCE TOMOGRAPHY [J].
BROWN, BH ;
LEATHARD, A ;
SINTON, A ;
MCARDLE, FJ ;
SMITH, RWM ;
BARBER, DC .
CLINICAL PHYSICS AND PHYSIOLOGICAL MEASUREMENT, 1992, 13 :175-179
[9]  
Calderon A.P., 1963, Outlines Joint Sympos. Partial Differential Equations (Novosibirsk, P303
[10]  
Calderon A. P., 1980, SEM NUM AN ITS APPL, P65