Design and preliminary evaluation of a portable device for the measurement of bioimpedance spectroscopy

被引:63
作者
Yang, Yuxiang [1 ]
Wang, Jue
Yu, Gang
Niu, Feilong
He, Ping
机构
[1] Xian Jiaotong Univ, Sch Life Sci & Technol, Educ Minist, Key Lab Biomed Informat Engn, Xian 710049, Peoples R China
[2] Wright State Univ, Dept Biomed Ind & Human Factors Engn, Dayton, OH 45435 USA
关键词
bioimpedance spectroscopy; magnitude ratio and phase-difference; detection method; gain-phase detector; three-reference calibration algorithm; sweep-frequency measurements;
D O I
10.1088/0967-3334/27/12/004
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Portable bioimpedance spectroscopy (BIS) devices are of great value for monitoring the pathological status of biological tissues in clinical and home environments. The two traditional techniques for measuring complex bioimpedance, the bridge method and quadrature demodulation method, are either time-consuming or often associated with high cost, high power consumption, and large board space, and therefore are not ideally suitable for designing a portable device for BIS measurement. This paper describes a novel design of a portable BIS device based on the magnitude-ratio and phase-difference detection method and its implementation using the newest generation of analog electronic products which greatly decrease the complexity of both hardware and software. In order to improve the accuracy of the device, a three-reference calibration algorithm was applied. Experimental sweep-frequency measurements on RC circuits were carried out to preliminarily evaluate the performances of the device. The results obtained by the device were found to be in good agreement with the results measured by a commercial impedance analyzer HP4194, with an overall mean error of 0.014% in magnitude and 0.136° in phase over a frequency range of 20 kHz to 1 MHz. © 2006 IOP Publishing Ltd.
引用
收藏
页码:1293 / 1310
页数:18
相关论文
共 26 条
[1]   Skin cancer identification using multifrequency electrical impedance -: A potential screening tool [J].
Åberg, P ;
Nicander, I ;
Hansson, J ;
Geladi, P ;
Holmgren, U ;
Ollmar, S .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2004, 51 (12) :2097-2102
[2]  
*AN DEV, 2002, AD8302 DAT SHEET
[3]  
*AN DEV, 2003, AD9833 DAT SHEET
[4]   IMPEDANCE SPECTROSCOPY OF HUMAN ERYTHROCYTES - SYSTEM CALIBRATION AND NONLINEAR MODELING [J].
BAO, JZ ;
DAVIS, CC ;
SCHMUKLER, RE .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1993, 40 (04) :364-378
[5]   A WIDE-BAND AC-COUPLED CURRENT SOURCE FOR ELECTRICAL-IMPEDANCE TOMOGRAPHY [J].
BRAGOS, R ;
ROSELL, J ;
RIU, P .
PHYSIOLOGICAL MEASUREMENT, 1994, 15 :A91-A99
[6]   Differential synchronous demodulator for modulating sensors and impedance measurements [J].
Casanella, R ;
Casas, O ;
Pallàs-Areny, R .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2005, 16 (08) :1637-1643
[7]  
COWLES J, 2001, ANALOG DIALOGUE, V35
[8]   A HIGH-OUTPUT IMPEDANCE CURRENT SOURCE [J].
DENYER, CW ;
LIDGEY, FJ ;
ZHU, QS ;
MCLEOD, CN .
PHYSIOLOGICAL MEASUREMENT, 1994, 15 :A79-A82
[9]   The electric resistivity of human tissues (100 Hz-10 MHz): a meta-analysis of review studies [J].
Faes, TJC ;
van der Meij, HA ;
de Munck, JC ;
Heethaar, RM .
PHYSIOLOGICAL MEASUREMENT, 1999, 20 (04) :R1-R10
[10]   Algorithm for tissue ischemia estimation based on electrical impedance spectroscopy [J].
Kun, S ;
Ristic, B ;
Peura, RA ;
Dunn, RM .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2003, 50 (12) :1352-1359