Title :
Error analysis of tissue resistivity measurement
Author :
Tsai, Jang-Zern ; Will, James A. ; Stelle, Scott Hubbard-Van ; Cao, Hong ; Tungjitkusolmun, Supan ; Choy, Young Bin ; Haemmerich, Dieter ; Vorperian, Vicken R. ; Webster, John G.
Author_Institution :
Dept. of Electr. & Comput. Eng., Wisconsin Univ., Madison, WI, USA
fDate :
5/1/2002 12:00:00 AM
Abstract :
We identified the error sources in a system for measuring tissue resistivity at eight frequencies from 1 Hz to 1 MHz using the four-terminal method. We expressed the measured resistivity with an analytical formula containing all error terms. We conducted practical error measurements with in-vivo and bench-top experiments. We averaged errors at all frequencies for all measurements. The standard deviations of error of the quantization error of the 8-bit digital oscilloscope with voltage averaging, the nonideality of the circuit, the in-vivo motion artifact and electrical interference combined to yield an error of ±1.19%. The dimension error in measuring the syringe tube for measuring the reference saline resistivity added ±1.32% error. The estimation of the working probe constant by interpolating a set of probe constants measured in reference saline solutions added ±0.48% error. The difference in the current magnitudes used during the probe calibration and that during the tissue resistivity measurement caused ±0.14% error. Variation of the electrode spacing, alignment, and electrode surface property due to the insertion of electrodes into the tissue caused ±0.61% error. We combined the above errors to yield an overall standard deviation error of the measured tissue resistivity of ±1.96%.
Keywords :
bioelectric phenomena; biological techniques; biological tissues; biomedical electrodes; biomedical electronics; electrical conductivity measurement; error analysis; measurement errors; probes; 1 Hz to 1 MHz; 8-bit digital oscilloscope; alignment; analytical formula; bench-top experiments; circuit nonideality; current magnitudes; dimension error; eight frequencies; electrical interference; electrode insertion; electrode spacing; electrode surface property; error analysis; error sources; four-terminal method; in-vivo experiments; in-vivo motion artifact; probe calibration; probe constants; quantization error; reference saline resistivity; reference saline solutions; standard deviations; syringe tube; tissue resistivity measurement; voltage averaging; working probe constant; Circuits; Conductivity measurement; Electrodes; Error analysis; Frequency measurement; Interference; Oscilloscopes; Probes; Quantization; Voltage; Animals; Anisotropy; Calibration; Electric Impedance; Electrocardiography; Electrodes; Equipment Design; Heart; Models, Cardiovascular; Models, Statistical; Reproducibility of Results; Swine;
Journal_Title :
Biomedical Engineering, IEEE Transactions on